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US20090071402A1 - Metal film vapor phase deposition method and vapor phase deposition apparatus - Google Patents

Metal film vapor phase deposition method and vapor phase deposition apparatus Download PDF

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US20090071402A1
US20090071402A1 US12/292,192 US29219208A US2009071402A1 US 20090071402 A1 US20090071402 A1 US 20090071402A1 US 29219208 A US29219208 A US 29219208A US 2009071402 A1 US2009071402 A1 US 2009071402A1
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gas
reactor vessel
purity copper
chlorine
copper
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US12/292,192
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Hitoshi Sakamoto
Naoki Yahata
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Canon Anelva Corp
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Canon Anelva Corp
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Publication of US20090071402A1 publication Critical patent/US20090071402A1/en
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    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C14/00Coating by vacuum evaporation, by sputtering or by ion implantation of the coating forming material
    • C23C14/22Coating by vacuum evaporation, by sputtering or by ion implantation of the coating forming material characterised by the process of coating
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C16/00Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes
    • C23C16/44Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating
    • C23C16/448Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating characterised by the method used for generating reactive gas streams, e.g. by evaporation or sublimation of precursor materials
    • C23C16/4488Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating characterised by the method used for generating reactive gas streams, e.g. by evaporation or sublimation of precursor materials by in situ generation of reactive gas by chemical or electrochemical reaction
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C16/00Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes
    • C23C16/06Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the deposition of metallic material
    • C23C16/08Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the deposition of metallic material from metal halides
    • C23C16/14Deposition of only one other metal element
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C16/00Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes
    • C23C16/44Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating
    • C23C16/448Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating characterised by the method used for generating reactive gas streams, e.g. by evaporation or sublimation of precursor materials

Definitions

  • the present invention relates to a copper film vapor phase deposition method and vapor phase deposition apparatus applied to, e.g., the formation of a wiring material film of a semiconductor device.
  • a thin copper (Cu) film used as a wiring material and the like is formed by physical film formation methods such as vacuum deposition, ion plating, and sputtering, and by chemical vapor deposition (CVD).
  • CVD chemical vapor deposition
  • CVD is generally extensively used because the method has superior surface covering properties.
  • a conventionally known copper film formation method using CVD uses a liquid organic copper complex such as copper.hexafluoroacetylacetonate.trimethylvinylsilane as a material.
  • Jpn. Pat. Appln. KOKAI Publication Nos. 4-72066, 4-74866, and 9-53177 disclose methods using organic metal complexes not containing fluorine as materials. These materials are sublimated, transported, and excited by heat, light, or plasma to form a copper film on the surface of a substrate to be processed.
  • a copper film vapor phase deposition method comprises the steps of exposing high-purity copper to a plasma of a gas containing chlorine gas to etch the high-purity copper, thereby generating active CuxCly, wherein x is 1 to 3, y is 1 to 3, gas, and
  • Another copper film vapor phase deposition method according to the present invention comprises the steps of
  • Still another copper film vapor phase deposition method according to the present invention comprises the steps of
  • the high-purity copper is preferably heated to 200 to 400° C.
  • the substrate is preferably heated to 100 to 200° C.
  • a copper film vapor phase deposition apparatus comprises
  • a gas supply pipe inserted into the reactor vessel to supply a gas containing chlorine gas or hydrogen chloride gas to the vicinity of the high-purity copper
  • plasma generating means for generating a plasma of chlorine or hydrogen chloride in the vicinity of the high-purity copper in the reactor vessel
  • exhausting means for exhausting a gas in the reactor vessel.
  • Another copper film vapor phase deposition apparatus comprises
  • a first gas supply pipe inserted into the reactor vessel to supply a gas containing chlorine to the vicinity of the high-purity copper
  • plasma generating means for generating a plasma of chlorine and hydrogen in the vicinity of the high-purity copper in the reactor vessel
  • exhausting means for exhausting a gas in the reactor vessel.
  • Each copper film vapor phase deposition apparatus preferably further comprises first temperature control means for controlling the temperature of the high-purity copper.
  • Each copper film vapor phase deposition apparatus preferably further comprises second temperature control means for controlling the temperature of the substrate.
  • FIG. 1 is a schematic view showing an embodiment of a copper film vapor phase deposition apparatus according to the present invention.
  • FIG. 2 is a schematic view showing another embodiment of the copper film vapor phase deposition apparatus according to the present invention.
  • FIG. 1 is a schematic view showing a copper film vapor phase deposition apparatus according to the first embodiment.
  • a second temperature control means e.g., a plate-like heating member 3 on which a substrate to be processed is placed is set.
  • High-purity copper e.g., high-purity copper plate 4 is set in the upper portion of the reactor vessel 2 so as to oppose the heating member 3 .
  • High-purity copper herein mentioned means that the purity of copper is 99.9% or more.
  • this high-purity copper need not be a plate but can be, e.g., a block.
  • a first temperature control means e.g., a heating/cooling member 5 is placed on the surface of the high-purity copper plate 4 away from the surface opposite to the heating member 3 .
  • a gas supply pipe 6 for supplying a gas containing chlorine gas (or a gas containing hydrogen chloride gas) is connected to an upper side wall of the reactor vessel 2 .
  • a flow rate controller 7 is inserted into that portion of the gas supply pipe 6 , which is positioned outside the reactor vessel 2 .
  • An RF coil 8 is wound around the upper side walls of the reactor vessel 2 .
  • An RF power supply 9 is connected to the RF coil 8 and applies an RF power of 13.56 MHz to this RF coil 8 .
  • This plasma generating means need not be an inductive coupling type plasma generator but can be a capacitive coupling type plasma generator.
  • the high-purity copper plate 4 is set in the upper portion of the reactor vessel 2 , and the heating member 3 on which a substrate 10 is to be placed and the exhaust member 1 are set in the lower portion of the reactor vessel 2 .
  • this vertical positional relationship can also be reversed.
  • a copper film formation method using the copper film vapor phase deposition apparatus shown in FIG. 1 will be explained below.
  • the substrate 10 is placed on the heating member 3 in the reactor vessel 2 .
  • the exhaust member 1 is operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • a gas containing chlorine (Cl2) is supplied into the reactor vessel 2 through the gas supply pipe 6 .
  • the flow rate of this chlorine-containing gas is controlled by the flow rate controller 7 inserted into the gas supply pipe 6 .
  • the temperature of the high-purity copper plate 4 placed in the upper portion of the reactor vessel 2 is controlled by the heating/cooling member 5 .
  • the RF power supply 9 applies an RF power of 13.56 MHz to the RF coil 8 , thereby generating chlorine plasma below and near the high-purity copper plate 4 in the reactor vessel 2 . If the temperature of the high-purity copper plate 4 excessively rises along with the generation of this chlorine plasma, the heating/cooling member 5 controls the high-purity copper plate 4 to a target temperature.
  • This CuxCly flux 11 is transported to the substrate 10 heated by the heating member 3 and precipitates a copper film 12 on the surface of the substrate 10 .
  • x and y of the CuxCly gas change in accordance with the temperature. For example, this reaction is represented by
  • Gases and etching products which do not participate in the reaction are exhausted by the exhaust member 1 .
  • the copper film has a thickness of 1 nm to 1 ⁇ m.
  • the gas containing chlorine (Cl2) it is possible to use, e.g., chlorine gas or a dilute gas which is formed by diluting chlorine gas with an inert gas such as helium or argon and which has a chlorine concentration of 50% or less.
  • Heating of the substrate 10 by the heating member 3 is preferably done at a temperature lower than the set temperature of the high-purity copper (e.g., high-purity copper plate) in order to obtain a practical copper film formation rate, thereby promoting adsorption of the CuxCly gas to the substrate surface.
  • the temperature of the high-purity copper is set at 200 to 400° C.
  • the temperature of the substrate is preferably set at, e.g., 100 to 200° C.
  • the temperature of the high-purity copper plate 4 By adjusting the temperature of the high-purity copper plate 4 within the range of 0 to 600° C. by the heating/cooling member 5 , it is possible to control the surface etching rate and etching form in the chlorine plasma atmosphere.
  • the lower-limit temperature is one at which chlorine gas does not cohere
  • the upper-limit temperature is one at which high-purity copper does not dissolve. That is, when the temperature is raised within the above temperature range, it is possible to increase the etching rate (CuxCly generation amount) and increase the copper film formation speed.
  • the temperature is favorably controlled within the range of 200 to 400° C. in order to prevent an abrupt etching reaction.
  • the pressure of the chlorine gas in the reactor vessel 2 is preferably controlled within the range of 0.1 to 10 Torr, in order to etch the high-purity copper plate at a practical rate in a vacuum atmosphere.
  • a gas containing inexpensive chlorine is supplied through the gas supply pipe 6 into the reactor vessel 2 in which the inexpensive high-purity copper (e.g., high-purity copper plate) 4 is placed.
  • the RF power supply 9 and the RF coil 8 generate chlorine plasma below and near the high-purity copper plate 4 in the reactor vessel 2 .
  • the high-purity copper plate 4 is etched by the excited chlorine and reacted to generate CuxCly gas.
  • This CuxCly flux 11 is transported to the substrate 10 to form the copper film 12 on the substrate 10 .
  • this first embodiment it is possible to independently adjust the temperature of high-purity copper, the pressure and flow rate of chlorine gas, and the temperature of a substrate to be processed. This can increase the degree of freedom of control parameters compared to film formation using the conventional sublimation method. As a consequence, a copper film containing no residual impurity such as carbon and having high film quality can be formed on a substrate with high reproducibility.
  • a copper film formation method according to the second embodiment will be explained below by using the copper film vapor phase deposition apparatus shown in FIG. 1 described above.
  • a substrate 10 to be processed is placed on a heating member 3 in a reactor vessel 2 .
  • An exhaust member 1 is operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • a gas containing hydrogen chloride (HCl) is supplied into the reactor vessel 2 through a gas supply pipe 6 .
  • the flow rate of this hydrogen chloride-containing gas is controlled by a flow rate controller 7 inserted into the gas supply pipe 6 .
  • the temperature of high-purity copper (e.g., high-purity copper plate) 4 placed in the upper portion of the reactor vessel 2 is controlled by a heating/cooling member 5 .
  • an RF power supply 9 applies an RF power of 13.56 MHz to an RF coil 8 , thereby generating hydrogen chloride plasma below and near the high-purity copper plate 4 in the reactor vessel 2 . If the temperature of the high-purity copper plate 4 excessively rises along with the generation of this hydrogen chloride plasma, the heating/cooling member 5 controls the high-purity copper plate 4 to a target temperature.
  • This CuxCly flux 11 is transported to the substrate 10 heated by the heating member 3 and precipitates a copper film 12 on the surface of the substrate 10 .
  • x and y of the CuxCly gas change in accordance with the temperature. For example, this reaction is represented by
  • Gases and etching products which do not participate in the reaction are exhausted by the exhaust member 1 .
  • the copper film has a thickness of 1 nm to 1 ⁇ m.
  • the gas containing hydrogen chloride (HCl) it is possible to use, e.g., hydrogen chloride gas or a dilute gas which is formed by diluting hydrogen chloride gas with an inert gas such as helium or argon and which has a chlorine concentration of 50% or less.
  • hydrogen chloride gas or a dilute gas which is formed by diluting hydrogen chloride gas with an inert gas such as helium or argon and which has a chlorine concentration of 50% or less.
  • Heating of the substrate 10 by the heating member 3 is preferably done at a temperature lower than the set temperature of the high-purity copper (e.g., high-purity copper plate) in order to obtain a practical copper film formation rate, thereby promoting adsorption of the CuxCly gas to the substrate surface.
  • the temperature of the high-purity copper is set at 200 to 400° C.
  • the temperature of the substrate is preferably set at, e.g., 100 to 200° C.
  • the temperature of the high-purity copper plate 4 By adjusting the temperature of the high-purity copper plate 4 within the range of 0 to 600° C. by the heating/cooling member 5 , it is possible to control the surface etching rate and etching form in the hydrogen chloride plasma atmosphere.
  • the lower-limit temperature is one at which chlorine gas does not cohere
  • the upper-limit temperature is one at which high-purity copper does not dissolve. That is, when the temperature is raised within the above temperature range, it is possible to increase the etching rate (CuxCly generation amount) and increase the copper film formation speed.
  • the temperature is favorably controlled within the range of 200 to 400° C. in order to prevent an abrupt increase of the etching reaction.
  • the pressure of the hydrogen chloride gas in the reactor vessel 2 is preferably controlled within the range of 0.1 to 10 Torr, in order to etch the high-purity copper plate at a practical rate in a vacuum atmosphere.
  • a gas containing inexpensive hydrogen chloride is supplied through the gas supply pipe 6 into the reactor vessel 2 in which the inexpensive high-purity copper (e.g., high-purity copper plate) 4 is placed.
  • the RF power supply 9 and the RF coil 8 generate hydrogen chloride plasma below and near the high-purity copper plate 4 in the reactor vessel 2 .
  • the high-purity copper plate 4 is etched by the excited hydrogen chloride and reacted to generate CuxCly gas.
  • This CuxCly flux 11 is transported to the substrate 10 to form the copper film 12 on the substrate 10 .
  • this second embodiment it is possible to independently adjust the temperature of high-purity copper, the pressure and flow rate of hydrogen chloride gas, and the temperature of a substrate to be processed. This can increase the degree of freedom of control parameters compared to film formation using the conventional sublimation method. As a consequence, a copper film containing no impurity such as carbon and having high film quality can be formed on a substrate with high reproducibility.
  • FIG. 2 is a schematic view showing a copper film vapor phase deposition apparatus according to the third embodiment.
  • the same reference numerals as in FIG. 1 denote the same parts in FIG. 2 , and a detailed description thereof will be omitted.
  • This vapor phase deposition apparatus includes a first gas supply pipe 13 connected to an upper side wall of a reactor vessel 2 to supply a gas containing chlorine, and a second gas supply pipe 14 connected to that upper side wall of the reactor vessel 2 , which is opposite to the first gas supply pipe 13 , to supply hydrogen.
  • Flow rate controllers 15 and 16 are inserted into these first and second gas supply pipes 13 and 14 , respectively.
  • high-purity copper e.g., high-purity copper plate
  • a heating member 3 on which a substrate 10 to be processed is placed and an exhaust member 1 are set in the lower portion of the reactor vessel 2 .
  • this vertical positional relationship can also be reversed.
  • the shape of the high-purity copper need not be a plate but can be, e.g., a block.
  • a copper film formation method using the copper film vapor phase deposition apparatus shown in FIG. 2 will be explained below.
  • the substrate 10 is placed on the heating member 3 in the reactor vessel 2 .
  • the exhaust member 1 is operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • a gas containing chlorine (Cl2) is supplied into the reactor vessel 2 through the first gas supply pipe 13
  • hydrogen is supplied into the reactor vessel 2 through the second gas supply pipe 14 .
  • the flow rates of these chlorine-containing gas and hydrogen are controlled by the flow rate controllers 15 and 16 inserted into the gas supply pipes 13 and 14 , respectively.
  • the temperature of the high-purity copper plate 4 placed in, e.g., the upper portion of the reactor vessel 2 is controlled by a heating/cooling member 5 .
  • an RF power supply 9 applies an RF power of 13.56 MHz to an RF coil 8 , thereby generating a plasma of chlorine+hydrogen below and near the high-purity copper plate 4 in the reactor vessel 2 . If the temperature of the high-purity copper plate 4 excessively rises along with the generation of this plasma of chlorine+hydrogen, the heating/cooling member 5 controls the high-purity copper plate 4 to a target temperature.
  • This flux 17 is transported to the substrate 10 heated by the heating member 3 and precipitates a copper film 12 on the surface of the substrate 10 .
  • x and y of the CuxCly gas change in accordance with the temperature.
  • Gases and etching products that do not participate in the reaction are exhausted by the exhaust member 1 .
  • the copper film has a thickness of 1 nm to 1 ⁇ m.
  • the gas containing chlorine (Cl2) it is possible to use, e.g., chlorine gas or a dilute gas which is formed by diluting chlorine gas with an inert gas such as helium or argon and which has a chlorine concentration of 50% or less.
  • Heating of the substrate 10 by the heating member 3 is preferably done at a temperature lower than the set temperature of the high-purity copper (e.g., high-purity copper plate) in order to obtain a practical copper film formation rate, thereby promoting adsorption of the CuxCly gas to the substrate surface.
  • the temperature of the high-purity copper is set at 200 to 400° C.
  • the temperature of the substrate is preferably set at, e.g., 100 to 200° C.
  • the temperature of the high-purity copper plate 4 By adjusting the temperature of the high-purity copper plate 4 within the range of 0 to 600° C. by the heating/cooling member 5 , it is possible to control the surface etching rate and etching form in the chlorine+hydrogen plasma atmosphere.
  • the lower-limit temperature is one at which chlorine gas does not cohere
  • the upper-limit temperature is one at which high-purity copper does not dissolve. That is, when the temperature is raised within the above temperature range, it is possible to increase the etching rate (CuxCly generation amount) and increase the copper film formation speed.
  • the temperature is favorably controlled within the range of 200 to 400° C. in order to prevent an abrupt increase of the etching reaction.
  • the pressure of the chlorine gas in the reactor vessel 2 is preferably controlled within the range of 0.1 to 10 Torr, in order to etch the high-purity copper plate at a practical rate in a vacuum atmosphere.
  • the pressure of the hydrogen gas in the reactor vessel 2 is preferably controlled within the range of 1 to 10 Torr, in order to efficiently precipitate (form) a copper film by reduction.
  • a gas containing inexpensive chlorine and hydrogen are supplied through the first and second gas supply pipes 13 and 14 into the reactor vessel 2 in which the inexpensive high-purity copper (e.g., high-purity copper plate) 4 is placed.
  • the RF power supply 9 and the RF coil 8 generate a plasma of chlorine and hydrogen below and near the high-purity copper plate 4 in the reactor vessel 2 .
  • Etching of the high-purity copper plate 4 by the excited chlorine and dissociation of hydrogen generate the flux 17 of CuxCly and H. This flux 17 is transported to the substrate 10 to form the copper film 12 on the substrate 10 .
  • this third embodiment it is possible to independently adjust the temperature of high-purity copper, the pressures and flow rates of chlorine gas and hydrogen, and the temperature of a substrate to be processed. This can increase the degree of freedom of control parameters compared to film formation using the conventional sublimation method. As a consequence, a copper film containing no residual impurity such as carbon and having high film quality can be formed on a substrate with high reproducibility.
  • a substrate 10 to be processed having a diameter of 300 mm was placed on a heating member 3 in a reactor vessel 2 and heated to 200° C.
  • An exhaust member 1 was operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • chlorine (Cl2) was supplied at a flow rate of 100 sccm into the reactor vessel 2 through a gas supply pipe 6 and a flow rate controller 7 .
  • the pressure of the chlorine in the reactor vessel 2 was 5 Torr.
  • the temperature of high-purity copper plate 4 set in the upper portion of the reactor vessel 2 was controlled to 300° C. by a heating/cooling member 5 .
  • an RF power of 13.56 MHz was applied from an RF power supply 9 to an RF coil 8 , thereby, generating chlorine plasma below and near the high-purity copper plate 4 in the reactor vessel 2 .
  • the high-purity copper plate 4 was etched by the excited chlorine and reacted to form CuxCly flux 11 , thereby precipitating a copper film 12 having a thickness of 500 nm on the surface of the substrate 10 . Gases and etching products which did not participate in the reaction were exhausted by the exhaust member 1 .
  • Example 1 a copper film was uniformly formed on the substrate at a rate of 100 nm/min and a variation of 3% or less. This copper film had characteristics equivalent to the resistivity of bulk copper.
  • a substrate 10 to be processed having a diameter of 300 mm was placed on a heating member 3 in a reactor vessel 2 and heated to 170° C.
  • An exhaust member 1 was operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • hydrogen chloride (HCl) was supplied at a flow rate of 100 sccm into the reactor vessel 2 through a gas supply pipe 6 and a flow rate controller 7 .
  • the pressure of the chlorine in the reactor vessel 2 was 5 Torr.
  • the temperature of high-purity copper plate 4 set in the upper portion of the reactor vessel 2 was controlled to 300° C. by a heating/cooling member 5 .
  • an RF power of 13.56 MHz was applied from an RF power supply 9 to an RF coil 8 , thereby generating hydrogen chloride plasma below and near the high-purity copper plate 4 in the reactor vessel 2 .
  • the high-purity copper plate 4 was etched by the excited hydrogen chloride and reacted to form CuxCly flux 11 , thereby precipitating a copper film 12 having a thickness of 500 nm on the surface of the substrate 10 . Gases and etching products which did not participate in the reaction were exhausted by the exhaust member 1 .
  • Example 2 a copper film was uniformly formed on the substrate at a rate of 100 nm/min and a variation of 3% or less. This copper film had characteristics equivalent to the resistivity of bulk copper.
  • a substrate 10 to be processed having a diameter of 300 mm was placed on a heating member 3 in a reactor vessel 2 and heated to 150° C.
  • An exhaust member 1 was operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • chlorine gas was supplied at a flow rate of 100 sccm into the reactor vessel 2 through a first gas supply pipe 13 and a flow rate controller 15 .
  • hydrogen was supplied at a flow rate of 500 sccm into the reactor vessel 2 through a second gas supply pipe 14 and a flow rate controller 16 .
  • the pressures of the chlorine gas and hydrogen in the reactor vessel 2 were 2.5 and 5 Torr, respectively.
  • the temperature of high-purity copper plate 4 set in the upper portion of the reactor vessel 2 was controlled to 300° C. by a heating/cooling member 5 .
  • this high-purity copper plate 4 After the temperature of this high-purity copper plate 4 was thus controlled, an RF power of 13.56 MHz was applied from an RF power supply 9 to an RF coil 8 , thereby generating a plasma of chlorine and hydrogen below and near the high-purity copper plate 4 in the reactor vessel 2 . Consequently, etching of the high-purity copper plate 4 by the excited chlorine and dissociation of hydrogen formed a flux 17 of CuxCly and H, thereby precipitating a copper film 12 having a thickness of 500 nm on the surface of the substrate 10 . Gases and etching products which did not participate in the reaction were exhausted by the exhaust member 1 .
  • Example 3 a copper film was uniformly formed on the substrate at a rate of 100 nm/min and a variation of 3% or less. This copper film had characteristics equivalent to the resistivity of bulk copper.
  • the present invention can provide a copper film vapor phase deposition method which can form, with high reproducibility, a copper film containing no residual impurity such as carbon and having high film quality, by using inexpensive high-purity copper and inexpensive chlorine, hydrogen chloride, or chlorine and hydrogen as source gases, and which is useful in, e.g., the formation of wiring material films of a semiconductor device and a liquid crystal display.
  • the present invention can provide a copper film vapor phase deposition apparatus capable of forming a copper film having the aforementioned characteristics.

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Abstract

A copper film vapor phase deposition method includes the steps of exposing high-purity copper to a plasma of a gas containing chlorine gas to etch the high-purity copper, thereby generating active CuxCly, wherein x is 1 to 3, y is 1 to 3, gas, and forming a copper film by transporting the CuxCly gas onto the surface of a substrate to be processed. By using inexpensive high-purity copper and inexpensive chlorine, hydrogen chloride, or chlorine and hydrogen as source gases, a copper film containing no residual impurity such as carbon and having high film quality can be formed with high reproducibility.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This application is a Divisional of co-pending application Ser. No. 10/183,512, filed on Jun. 28, 2002, the entire contents of which is hereby incorporated by reference and for which priority is claimed under 35 U.S.C. § 120, and which claims the benefit of priority from the prior Japanese Patent Applications No. 2001-241168, filed Aug. 8, 2001; and No. 2002-025975, filed Feb. 1, 2002, the entire contents of both of which are incorporated herein by reference.
  • BACKGROUND OF THE INVENTION
  • 1. Field of the Invention
  • The present invention relates to a copper film vapor phase deposition method and vapor phase deposition apparatus applied to, e.g., the formation of a wiring material film of a semiconductor device.
  • 2. Description of the Related Art
  • For example, a thin copper (Cu) film used as a wiring material and the like is formed by physical film formation methods such as vacuum deposition, ion plating, and sputtering, and by chemical vapor deposition (CVD). In particular, CVD is generally extensively used because the method has superior surface covering properties.
  • A conventionally known copper film formation method using CVD uses a liquid organic copper complex such as copper.hexafluoroacetylacetonate.trimethylvinylsilane as a material. Also, Jpn. Pat. Appln. KOKAI Publication Nos. 4-72066, 4-74866, and 9-53177 disclose methods using organic metal complexes not containing fluorine as materials. These materials are sublimated, transported, and excited by heat, light, or plasma to form a copper film on the surface of a substrate to be processed.
  • Unfortunately, the above-mentioned conventional copper film formation methods have the following problems.
      • (1) Since material compounds are very expensive, the cost of the copper film formed increases.
      • (2) Sublimation is very difficult to control, and this makes it difficult to form thin uniform copper films with high reproducibility.
      • (3) If an organic compound contains carbon, this carbon mixes in a copper film to adversely affect the electrical characteristics and the like.
    SUMMARY OF THE INVENTION
  • It is an object of the present invention to provide a copper film vapor phase deposition method capable of forming, with high reproducibility, a copper film containing no residual impurity such as carbon and having high film quality, by using inexpensive high-purity copper and inexpensive chlorine, hydrogen chloride, or chlorine and hydrogen as source gases.
  • It is another object of the present invention to provide a copper film vapor phase deposition apparatus capable of forming a copper film having the aforementioned characteristics.
  • A copper film vapor phase deposition method according to the present invention comprises the steps of exposing high-purity copper to a plasma of a gas containing chlorine gas to etch the high-purity copper, thereby generating active CuxCly, wherein x is 1 to 3, y is 1 to 3, gas, and
  • forming a copper film by transporting the CuxCly gas onto the surface of a substrate to be processed.
  • Another copper film vapor phase deposition method according to the present invention comprises the steps of
  • exposing high-purity copper to a plasma of a gas containing hydrogen chloride gas to etch the high-purity copper, thereby generating active CuxCly, wherein x is 1 to 3, y is 1 to 3, gas, and
  • forming a copper film by transporting the CuxCly gas onto the surface of a substrate to be processed.
  • Still another copper film vapor phase deposition method according to the present invention comprises the steps of
  • exposing high-purity copper to a plasma of chlorine gas and hydrogen to etch the high-purity copper, thereby generating a gas mixture containing active CuxCly, wherein x is 1 to 3, y is 1 to 3, gas and hydrogen, and
  • forming a copper film by transporting the gas mixture onto the surface of a substrate to be processed.
  • In each copper film vapor phase deposition method according to the present invention, the high-purity copper is preferably heated to 200 to 400° C., and the substrate is preferably heated to 100 to 200° C.
  • A copper film vapor phase deposition apparatus according to the present invention comprises
  • a reactor vessel in which a substrate to be processed is placed,
  • high-purity copper set in the reactor vessel to oppose the substrate,
  • a gas supply pipe inserted into the reactor vessel to supply a gas containing chlorine gas or hydrogen chloride gas to the vicinity of the high-purity copper,
  • plasma generating means for generating a plasma of chlorine or hydrogen chloride in the vicinity of the high-purity copper in the reactor vessel, and
  • exhausting means for exhausting a gas in the reactor vessel.
  • Another copper film vapor phase deposition apparatus according to the present invention comprises
  • a reactor vessel in which a substrate to be processed is placed,
  • high-purity copper set in the reactor vessel to oppose the substrate,
  • a first gas supply pipe inserted into the reactor vessel to supply a gas containing chlorine to the vicinity of the high-purity copper,
  • a second gas supply pipe inserted into the reactor vessel to supply hydrogen to the vicinity of the high-purity copper,
  • plasma generating means for generating a plasma of chlorine and hydrogen in the vicinity of the high-purity copper in the reactor vessel, and
  • exhausting means for exhausting a gas in the reactor vessel.
  • Each copper film vapor phase deposition apparatus according to the present invention preferably further comprises first temperature control means for controlling the temperature of the high-purity copper.
  • Each copper film vapor phase deposition apparatus according to the present invention preferably further comprises second temperature control means for controlling the temperature of the substrate.
  • Additional objects and advantages of the invention will be set forth in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. The objects and advantages of the invention may be realized and obtained by means of the instrumentalities and combinations particularly pointed out hereinafter.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate presently preferred embodiments of the invention and, together with the generation description given above and the detailed description of the preferred embodiments given below, serve to explain the principles of the invention.
  • FIG. 1 is a schematic view showing an embodiment of a copper film vapor phase deposition apparatus according to the present invention; and
  • FIG. 2 is a schematic view showing another embodiment of the copper film vapor phase deposition apparatus according to the present invention.
  • DETAILED DESCRIPTION OF THE INVENTION
  • The present invention will be described in detail below.
  • First Embodiment
  • FIG. 1 is a schematic view showing a copper film vapor phase deposition apparatus according to the first embodiment.
  • In a box-shaped reactor vessel 2 having a bottom portion to which an exhaust member 1 such as a vacuum pump is connected, a second temperature control means e.g., a plate-like heating member 3 on which a substrate to be processed is placed is set. High-purity copper, e.g., high-purity copper plate 4 is set in the upper portion of the reactor vessel 2 so as to oppose the heating member 3. High-purity copper herein mentioned means that the purity of copper is 99.9% or more.
  • Note that the shape of this high-purity copper need not be a plate but can be, e.g., a block.
  • A first temperature control means, e.g., a heating/cooling member 5 is placed on the surface of the high-purity copper plate 4 away from the surface opposite to the heating member 3.
  • A gas supply pipe 6 for supplying a gas containing chlorine gas (or a gas containing hydrogen chloride gas) is connected to an upper side wall of the reactor vessel 2. A flow rate controller 7 is inserted into that portion of the gas supply pipe 6, which is positioned outside the reactor vessel 2.
  • An RF coil 8 is wound around the upper side walls of the reactor vessel 2. An RF power supply 9 is connected to the RF coil 8 and applies an RF power of 13.56 MHz to this RF coil 8. This plasma generating means need not be an inductive coupling type plasma generator but can be a capacitive coupling type plasma generator.
  • Referring to FIG. 1, the high-purity copper plate 4 is set in the upper portion of the reactor vessel 2, and the heating member 3 on which a substrate 10 is to be placed and the exhaust member 1 are set in the lower portion of the reactor vessel 2. However, this vertical positional relationship can also be reversed.
  • A copper film formation method using the copper film vapor phase deposition apparatus shown in FIG. 1 will be explained below.
  • First, the substrate 10 is placed on the heating member 3 in the reactor vessel 2. The exhaust member 1 is operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • Subsequently, a gas containing chlorine (Cl2) is supplied into the reactor vessel 2 through the gas supply pipe 6. The flow rate of this chlorine-containing gas is controlled by the flow rate controller 7 inserted into the gas supply pipe 6. The temperature of the high-purity copper plate 4 placed in the upper portion of the reactor vessel 2 is controlled by the heating/cooling member 5. After the temperature of this high-purity copper plate 4 is thus controlled, the RF power supply 9 applies an RF power of 13.56 MHz to the RF coil 8, thereby generating chlorine plasma below and near the high-purity copper plate 4 in the reactor vessel 2. If the temperature of the high-purity copper plate 4 excessively rises along with the generation of this chlorine plasma, the heating/cooling member 5 controls the high-purity copper plate 4 to a target temperature.
  • By thus generating the chlorine plasma in the reactor vessel 2, the high-purity copper plate 4 is etched by the excited chlorine and reacted to generate CuxCly (x=1 to 3, y=1 to 3) gas. This CuxCly flux 11 is transported to the substrate 10 heated by the heating member 3 and precipitates a copper film 12 on the surface of the substrate 10. Note that x and y of the CuxCly gas change in accordance with the temperature. For example, this reaction is represented by

  • 2Cu+Cl2→2CuCl⇑→2Cu⇓+Cl2→
  • Gases and etching products which do not participate in the reaction are exhausted by the exhaust member 1.
  • For example, the copper film has a thickness of 1 nm to 1 μm.
  • As the gas containing chlorine (Cl2), it is possible to use, e.g., chlorine gas or a dilute gas which is formed by diluting chlorine gas with an inert gas such as helium or argon and which has a chlorine concentration of 50% or less.
  • Heating of the substrate 10 by the heating member 3 is preferably done at a temperature lower than the set temperature of the high-purity copper (e.g., high-purity copper plate) in order to obtain a practical copper film formation rate, thereby promoting adsorption of the CuxCly gas to the substrate surface. However, if this temperature is too low, a chloride may form in the copper film. Therefore, if the temperature of the high-purity copper is set at 200 to 400° C., the temperature of the substrate is preferably set at, e.g., 100 to 200° C.
  • By adjusting the temperature of the high-purity copper plate 4 within the range of 0 to 600° C. by the heating/cooling member 5, it is possible to control the surface etching rate and etching form in the chlorine plasma atmosphere. The lower-limit temperature is one at which chlorine gas does not cohere, and the upper-limit temperature is one at which high-purity copper does not dissolve. That is, when the temperature is raised within the above temperature range, it is possible to increase the etching rate (CuxCly generation amount) and increase the copper film formation speed. However, when the film quality of copper is taken into consideration, the temperature is favorably controlled within the range of 200 to 400° C. in order to prevent an abrupt etching reaction.
  • The pressure of the chlorine gas in the reactor vessel 2 is preferably controlled within the range of 0.1 to 10 Torr, in order to etch the high-purity copper plate at a practical rate in a vacuum atmosphere.
  • In the first embodiment as described above, a gas containing inexpensive chlorine is supplied through the gas supply pipe 6 into the reactor vessel 2 in which the inexpensive high-purity copper (e.g., high-purity copper plate) 4 is placed. The RF power supply 9 and the RF coil 8 generate chlorine plasma below and near the high-purity copper plate 4 in the reactor vessel 2. In this manner, the high-purity copper plate 4 is etched by the excited chlorine and reacted to generate CuxCly gas. This CuxCly flux 11 is transported to the substrate 10 to form the copper film 12 on the substrate 10.
  • Also, in this first embodiment, it is possible to independently adjust the temperature of high-purity copper, the pressure and flow rate of chlorine gas, and the temperature of a substrate to be processed. This can increase the degree of freedom of control parameters compared to film formation using the conventional sublimation method. As a consequence, a copper film containing no residual impurity such as carbon and having high film quality can be formed on a substrate with high reproducibility.
  • Second Embodiment
  • A copper film formation method according to the second embodiment will be explained below by using the copper film vapor phase deposition apparatus shown in FIG. 1 described above.
  • First, a substrate 10 to be processed is placed on a heating member 3 in a reactor vessel 2. An exhaust member 1 is operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • Subsequently, a gas containing hydrogen chloride (HCl) is supplied into the reactor vessel 2 through a gas supply pipe 6. The flow rate of this hydrogen chloride-containing gas is controlled by a flow rate controller 7 inserted into the gas supply pipe 6. The temperature of high-purity copper (e.g., high-purity copper plate) 4 placed in the upper portion of the reactor vessel 2 is controlled by a heating/cooling member 5. After the temperature of this high-purity copper plate 4 is thus controlled, an RF power supply 9 applies an RF power of 13.56 MHz to an RF coil 8, thereby generating hydrogen chloride plasma below and near the high-purity copper plate 4 in the reactor vessel 2. If the temperature of the high-purity copper plate 4 excessively rises along with the generation of this hydrogen chloride plasma, the heating/cooling member 5 controls the high-purity copper plate 4 to a target temperature.
  • By thus generating the hydrogen chloride plasma in the reactor vessel 2, the high-purity copper plate 4 is etched by the excited hydrogen chloride and reacted to generate CuxCly (x=1 to 3, y=1 to 3) gas. This CuxCly flux 11 is transported to the substrate 10 heated by the heating member 3 and precipitates a copper film 12 on the surface of the substrate 10. Note that x and y of the CuxCly gas change in accordance with the temperature. For example, this reaction is represented by

  • 2Cu+2HCl→2CuCl⇑T+H2→2Cu⇓+Cl2+H+H2
  • Gases and etching products which do not participate in the reaction are exhausted by the exhaust member 1.
  • For example, the copper film has a thickness of 1 nm to 1 μm.
  • As the gas containing hydrogen chloride (HCl), it is possible to use, e.g., hydrogen chloride gas or a dilute gas which is formed by diluting hydrogen chloride gas with an inert gas such as helium or argon and which has a chlorine concentration of 50% or less.
  • Heating of the substrate 10 by the heating member 3 is preferably done at a temperature lower than the set temperature of the high-purity copper (e.g., high-purity copper plate) in order to obtain a practical copper film formation rate, thereby promoting adsorption of the CuxCly gas to the substrate surface. However, if this temperature is too low, a chloride may form in the copper film. Therefore, if the temperature of the high-purity copper is set at 200 to 400° C., the temperature of the substrate is preferably set at, e.g., 100 to 200° C.
  • By adjusting the temperature of the high-purity copper plate 4 within the range of 0 to 600° C. by the heating/cooling member 5, it is possible to control the surface etching rate and etching form in the hydrogen chloride plasma atmosphere. The lower-limit temperature is one at which chlorine gas does not cohere, and the upper-limit temperature is one at which high-purity copper does not dissolve. That is, when the temperature is raised within the above temperature range, it is possible to increase the etching rate (CuxCly generation amount) and increase the copper film formation speed. However, when the film quality of copper is taken into consideration, the temperature is favorably controlled within the range of 200 to 400° C. in order to prevent an abrupt increase of the etching reaction.
  • The pressure of the hydrogen chloride gas in the reactor vessel 2 is preferably controlled within the range of 0.1 to 10 Torr, in order to etch the high-purity copper plate at a practical rate in a vacuum atmosphere.
  • In the second embodiment as described above, a gas containing inexpensive hydrogen chloride is supplied through the gas supply pipe 6 into the reactor vessel 2 in which the inexpensive high-purity copper (e.g., high-purity copper plate) 4 is placed. The RF power supply 9 and the RF coil 8 generate hydrogen chloride plasma below and near the high-purity copper plate 4 in the reactor vessel 2. In this manner, the high-purity copper plate 4 is etched by the excited hydrogen chloride and reacted to generate CuxCly gas. This CuxCly flux 11 is transported to the substrate 10 to form the copper film 12 on the substrate 10.
  • Also, in this second embodiment, it is possible to independently adjust the temperature of high-purity copper, the pressure and flow rate of hydrogen chloride gas, and the temperature of a substrate to be processed. This can increase the degree of freedom of control parameters compared to film formation using the conventional sublimation method. As a consequence, a copper film containing no impurity such as carbon and having high film quality can be formed on a substrate with high reproducibility.
  • Third Embodiment
  • FIG. 2 is a schematic view showing a copper film vapor phase deposition apparatus according to the third embodiment. The same reference numerals as in FIG. 1 denote the same parts in FIG. 2, and a detailed description thereof will be omitted.
  • This vapor phase deposition apparatus includes a first gas supply pipe 13 connected to an upper side wall of a reactor vessel 2 to supply a gas containing chlorine, and a second gas supply pipe 14 connected to that upper side wall of the reactor vessel 2, which is opposite to the first gas supply pipe 13, to supply hydrogen. Flow rate controllers 15 and 16 are inserted into these first and second gas supply pipes 13 and 14, respectively.
  • Referring to FIG. 2, high-purity copper (e.g., high-purity copper plate) 4 is set in the upper portion of the reactor vessel 2, and a heating member 3 on which a substrate 10 to be processed is placed and an exhaust member 1 are set in the lower portion of the reactor vessel 2. However, this vertical positional relationship can also be reversed.
  • Note that the shape of the high-purity copper need not be a plate but can be, e.g., a block.
  • A copper film formation method using the copper film vapor phase deposition apparatus shown in FIG. 2 will be explained below.
  • First, the substrate 10 is placed on the heating member 3 in the reactor vessel 2. The exhaust member 1 is operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • Subsequently, a gas containing chlorine (Cl2) is supplied into the reactor vessel 2 through the first gas supply pipe 13, and hydrogen is supplied into the reactor vessel 2 through the second gas supply pipe 14. The flow rates of these chlorine-containing gas and hydrogen are controlled by the flow rate controllers 15 and 16 inserted into the gas supply pipes 13 and 14, respectively. The temperature of the high-purity copper plate 4 placed in, e.g., the upper portion of the reactor vessel 2 is controlled by a heating/cooling member 5. After the temperature of this high-purity copper plate 4 is thus controlled, an RF power supply 9 applies an RF power of 13.56 MHz to an RF coil 8, thereby generating a plasma of chlorine+hydrogen below and near the high-purity copper plate 4 in the reactor vessel 2. If the temperature of the high-purity copper plate 4 excessively rises along with the generation of this plasma of chlorine+hydrogen, the heating/cooling member 5 controls the high-purity copper plate 4 to a target temperature.
  • By thus generating the plasma of chlorine+hydrogen in the reactor vessel 2, the high-purity copper plate 4 is etched by the excited chlorine, and dissociation of hydrogen occurs to generate a flux 17 of CuxCly (x=1 to 3, y=1 to 3) and H. This flux 17 is transported to the substrate 10 heated by the heating member 3 and precipitates a copper film 12 on the surface of the substrate 10. Note that x and y of the CuxCly gas change in accordance with the temperature.
  • For example, this reaction is represented by

  • 2Cu+Cl2+H2→2CuCl⇑+H2→2Cu⇓+2HCl⇑
  • Gases and etching products that do not participate in the reaction are exhausted by the exhaust member 1.
  • For example, the copper film has a thickness of 1 nm to 1 μm.
  • As the gas containing chlorine (Cl2), it is possible to use, e.g., chlorine gas or a dilute gas which is formed by diluting chlorine gas with an inert gas such as helium or argon and which has a chlorine concentration of 50% or less.
  • Heating of the substrate 10 by the heating member 3 is preferably done at a temperature lower than the set temperature of the high-purity copper (e.g., high-purity copper plate) in order to obtain a practical copper film formation rate, thereby promoting adsorption of the CuxCly gas to the substrate surface. However, if this temperature is too low, a chloride may form in the copper film. Therefore, if the temperature of the high-purity copper is set at 200 to 400° C., the temperature of the substrate is preferably set at, e.g., 100 to 200° C.
  • By adjusting the temperature of the high-purity copper plate 4 within the range of 0 to 600° C. by the heating/cooling member 5, it is possible to control the surface etching rate and etching form in the chlorine+hydrogen plasma atmosphere. The lower-limit temperature is one at which chlorine gas does not cohere, and the upper-limit temperature is one at which high-purity copper does not dissolve. That is, when the temperature is raised within the above temperature range, it is possible to increase the etching rate (CuxCly generation amount) and increase the copper film formation speed. However, when the film quality of copper is taken into consideration, the temperature is favorably controlled within the range of 200 to 400° C. in order to prevent an abrupt increase of the etching reaction.
  • The pressure of the chlorine gas in the reactor vessel 2 is preferably controlled within the range of 0.1 to 10 Torr, in order to etch the high-purity copper plate at a practical rate in a vacuum atmosphere.
  • The pressure of the hydrogen gas in the reactor vessel 2 is preferably controlled within the range of 1 to 10 Torr, in order to efficiently precipitate (form) a copper film by reduction.
  • In the third embodiment as described above, a gas containing inexpensive chlorine and hydrogen are supplied through the first and second gas supply pipes 13 and 14 into the reactor vessel 2 in which the inexpensive high-purity copper (e.g., high-purity copper plate) 4 is placed. The RF power supply 9 and the RF coil 8 generate a plasma of chlorine and hydrogen below and near the high-purity copper plate 4 in the reactor vessel 2. Etching of the high-purity copper plate 4 by the excited chlorine and dissociation of hydrogen generate the flux 17 of CuxCly and H. This flux 17 is transported to the substrate 10 to form the copper film 12 on the substrate 10.
  • Also, in this third embodiment, it is possible to independently adjust the temperature of high-purity copper, the pressures and flow rates of chlorine gas and hydrogen, and the temperature of a substrate to be processed. This can increase the degree of freedom of control parameters compared to film formation using the conventional sublimation method. As a consequence, a copper film containing no residual impurity such as carbon and having high film quality can be formed on a substrate with high reproducibility.
  • EXAMPLES
  • Preferred examples of the present invention will be explained in detail below with reference to FIGS. 1 and 2 described above.
  • Example 1
  • As shown in FIG. 1, a substrate 10 to be processed having a diameter of 300 mm was placed on a heating member 3 in a reactor vessel 2 and heated to 200° C. An exhaust member 1 was operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • Subsequently, chlorine (Cl2) was supplied at a flow rate of 100 sccm into the reactor vessel 2 through a gas supply pipe 6 and a flow rate controller 7. The pressure of the chlorine in the reactor vessel 2 was 5 Torr. The temperature of high-purity copper plate 4 set in the upper portion of the reactor vessel 2 was controlled to 300° C. by a heating/cooling member 5. After the temperature of this high-purity copper plate 4 was thus controlled, an RF power of 13.56 MHz was applied from an RF power supply 9 to an RF coil 8, thereby, generating chlorine plasma below and near the high-purity copper plate 4 in the reactor vessel 2. Consequently, the high-purity copper plate 4 was etched by the excited chlorine and reacted to form CuxCly flux 11, thereby precipitating a copper film 12 having a thickness of 500 nm on the surface of the substrate 10. Gases and etching products which did not participate in the reaction were exhausted by the exhaust member 1.
  • In Example 1 described above, a copper film was uniformly formed on the substrate at a rate of 100 nm/min and a variation of 3% or less. This copper film had characteristics equivalent to the resistivity of bulk copper.
  • Example 2
  • As shown in FIG. 1, a substrate 10 to be processed having a diameter of 300 mm was placed on a heating member 3 in a reactor vessel 2 and heated to 170° C. An exhaust member 1 was operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • Subsequently, hydrogen chloride (HCl) was supplied at a flow rate of 100 sccm into the reactor vessel 2 through a gas supply pipe 6 and a flow rate controller 7. The pressure of the chlorine in the reactor vessel 2 was 5 Torr. The temperature of high-purity copper plate 4 set in the upper portion of the reactor vessel 2 was controlled to 300° C. by a heating/cooling member 5. After the temperature of this high-purity copper plate 4 was thus controlled, an RF power of 13.56 MHz was applied from an RF power supply 9 to an RF coil 8, thereby generating hydrogen chloride plasma below and near the high-purity copper plate 4 in the reactor vessel 2. Consequently, the high-purity copper plate 4 was etched by the excited hydrogen chloride and reacted to form CuxCly flux 11, thereby precipitating a copper film 12 having a thickness of 500 nm on the surface of the substrate 10. Gases and etching products which did not participate in the reaction were exhausted by the exhaust member 1.
  • In Example 2 described above, a copper film was uniformly formed on the substrate at a rate of 100 nm/min and a variation of 3% or less. This copper film had characteristics equivalent to the resistivity of bulk copper.
  • Example 3
  • As shown in FIG. 2, a substrate 10 to be processed having a diameter of 300 mm was placed on a heating member 3 in a reactor vessel 2 and heated to 150° C. An exhaust member 1 was operated to exhaust a gas (air) in the reactor vessel 2 to set a predetermined vacuum degree.
  • Subsequently, chlorine gas was supplied at a flow rate of 100 sccm into the reactor vessel 2 through a first gas supply pipe 13 and a flow rate controller 15. Also, hydrogen was supplied at a flow rate of 500 sccm into the reactor vessel 2 through a second gas supply pipe 14 and a flow rate controller 16. The pressures of the chlorine gas and hydrogen in the reactor vessel 2 were 2.5 and 5 Torr, respectively. The temperature of high-purity copper plate 4 set in the upper portion of the reactor vessel 2 was controlled to 300° C. by a heating/cooling member 5. After the temperature of this high-purity copper plate 4 was thus controlled, an RF power of 13.56 MHz was applied from an RF power supply 9 to an RF coil 8, thereby generating a plasma of chlorine and hydrogen below and near the high-purity copper plate 4 in the reactor vessel 2. Consequently, etching of the high-purity copper plate 4 by the excited chlorine and dissociation of hydrogen formed a flux 17 of CuxCly and H, thereby precipitating a copper film 12 having a thickness of 500 nm on the surface of the substrate 10. Gases and etching products which did not participate in the reaction were exhausted by the exhaust member 1.
  • In Example 3 described above, a copper film was uniformly formed on the substrate at a rate of 100 nm/min and a variation of 3% or less. This copper film had characteristics equivalent to the resistivity of bulk copper.
  • As has been explained above, the present invention can provide a copper film vapor phase deposition method which can form, with high reproducibility, a copper film containing no residual impurity such as carbon and having high film quality, by using inexpensive high-purity copper and inexpensive chlorine, hydrogen chloride, or chlorine and hydrogen as source gases, and which is useful in, e.g., the formation of wiring material films of a semiconductor device and a liquid crystal display.
  • Also, the present invention can provide a copper film vapor phase deposition apparatus capable of forming a copper film having the aforementioned characteristics.
  • Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details and representative embodiments shown and described herein. Accordingly, various modifications may be made without departing from the spirit and scope of the general inventive concept as defined by the appended claims and their equivalents.

Claims (8)

1. A copper film vapor phase deposition apparatus, comprising:
a reactor vessel in which a substrate to be processed is placed;
high-purity copper set in said reactor vessel to oppose said substrate;
a gas supply pipe inserted into said reactor vessel to supply a gas containing a gas selected from the group consisting of chlorine gas and hydrogen chloride gas to the vicinity of said high-purity copper;
plasma generating means for generating a plasma of a material selected from the group consisting of chlorine and hydrogen chloride in the vicinity of said high-purity copper in said reactor vessel; and
exhausting means for exhausting a gas in said reactor vessel.
2. An apparatus according to claim 1, wherein said high-purity copper has the shape of a plate.
3. An apparatus according to claim 1, further comprising:
first temperature control means for controlling the temperature of said high-purity copper.
4. An apparatus according to claim 1, further comprising:
second temperature control means for controlling the temperature of said substrate.
5. A copper film vapor phase deposition apparatus, comprising:
a reactor vessel in which a substrate to be processed is placed;
high-purity copper set in said reactor vessel to oppose said substrate;
a first gas supply pipe inserted into said reactor vessel to supply a gas containing chlorine to the vicinity of said high-purity copper;
a second gas supply pipe inserted into said reactor vessel to supply hydrogen to the vicinity of said high-purity copper;
plasma generating means for generating a plasma of chlorine and hydrogen in the vicinity of said high-purity copper in said reactor vessel; and
exhausting means for exhausting a gas in said reactor vessel.
6. An apparatus according to claim 5, wherein said high-purity copper has the shape of a plate.
7. An apparatus according to claim 5, further comprising:
first temperature control means for controlling the temperature of said high-purity copper.
8. An apparatus according to claim 5, further comprising:
second temperature control means for controlling the temperature of said substrate.
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EP1512769B1 (en) * 2002-03-08 2009-09-16 Canon Anelva Corporation Method and apparatus for production of metal film
JP4845455B2 (en) * 2005-09-01 2011-12-28 キヤノンアネルバ株式会社 Thin film production apparatus and thin film production method
JP4401338B2 (en) * 2005-09-06 2010-01-20 キヤノンアネルバ株式会社 Thin film production apparatus and thin film production method
JP4401340B2 (en) * 2005-09-14 2010-01-20 キヤノンアネルバ株式会社 Thin film production apparatus and thin film production method
KR100960958B1 (en) * 2007-12-24 2010-06-03 주식회사 케이씨텍 Apparatus for making thin film and method for making thin film
US10181653B2 (en) 2016-07-21 2019-01-15 Infineon Technologies Ag Radio frequency system for wearable device
US10218407B2 (en) 2016-08-08 2019-02-26 Infineon Technologies Ag Radio frequency system and method for wearable device
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US11346936B2 (en) 2018-01-16 2022-05-31 Infineon Technologies Ag System and method for vital signal sensing using a millimeter-wave radar sensor
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US11719787B2 (en) 2020-10-30 2023-08-08 Infineon Technologies Ag Radar-based target set generation
US11719805B2 (en) 2020-11-18 2023-08-08 Infineon Technologies Ag Radar based tracker using empirical mode decomposition (EMD) and invariant feature transform (IFT)
US11662430B2 (en) 2021-03-17 2023-05-30 Infineon Technologies Ag MmWave radar testing
US11950895B2 (en) 2021-05-28 2024-04-09 Infineon Technologies Ag Radar sensor system for blood pressure sensing, and associated method

Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3803019A (en) * 1971-10-07 1974-04-09 Hewlett Packard Co Sputtering system
US3849283A (en) * 1972-05-01 1974-11-19 Era Patents Ltd Sputtering apparatus
US5082545A (en) * 1988-12-15 1992-01-21 Matsushita Electric Industrial Co., Ltd. Sputtering apparatus
US5515985A (en) * 1993-06-24 1996-05-14 Nec Corporation Method of forming fine copper conductor pattern
US5803342A (en) * 1996-12-26 1998-09-08 Johnson Matthey Electronics, Inc. Method of making high purity copper sputtering targets
US6008140A (en) * 1997-08-13 1999-12-28 Applied Materials, Inc. Copper etch using HCI and HBr chemistry
US6280563B1 (en) * 1997-12-31 2001-08-28 Lam Research Corporation Plasma device including a powered non-magnetic metal member between a plasma AC excitation source and the plasma
US6416595B2 (en) * 1999-10-15 2002-07-09 Honeywell International Inc. Material comprising titanium
US6521108B1 (en) * 1998-12-29 2003-02-18 Tosoh Smd, Inc. Diffusion bonded sputter target assembly and method of making same
US6787010B2 (en) * 2000-11-30 2004-09-07 North Carolina State University Non-thermionic sputter material transport device, methods of use, and materials produced thereby

Family Cites Families (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH0618176B2 (en) * 1986-03-14 1994-03-09 インタ−ナショナル ビジネス マシ−ンズ コ−ポレ−ション Semiconductor manufacturing equipment
JPH0660409B2 (en) * 1987-03-13 1994-08-10 科学技術庁長官官房会計課長 Method of forming metal film
EP0322466A1 (en) * 1987-12-24 1989-07-05 Ibm Deutschland Gmbh PECVD (plasma enhanced chemical vapor deposition) method for deposition of tungsten or layers containing tungsten by in situ formation of tungsten fluorides
JPH0320484A (en) 1989-06-19 1991-01-29 Nippon Telegr & Teleph Corp <Ntt> Method and device for dry etching
JP2856782B2 (en) 1989-10-12 1999-02-10 レール・リキード・ソシエテ・アノニム・プール・レテユード・エ・レクスプロワタシオン・デ・プロセデ・ジョルジュ・クロード Method of forming copper thin film by low temperature CVD
JP2799763B2 (en) 1990-07-11 1998-09-21 同和鉱業株式会社 Production method of thin film using organometallic complex
JP2802676B2 (en) 1990-07-13 1998-09-24 同和鉱業株式会社 Method for producing thin film using 1,3-diketone organometallic complex
US5085885A (en) * 1990-09-10 1992-02-04 University Of Delaware Plasma-induced, in-situ generation, transport and use or collection of reactive precursors
FR2691984B1 (en) * 1992-06-03 1995-03-24 France Telecom Method of depositing metal on a substrate and device for its implementation.
JP3584091B2 (en) 1995-08-11 2004-11-04 同和鉱業株式会社 Copper source material for CVD and film forming method using the same
JPH09298184A (en) * 1996-05-07 1997-11-18 Hitachi Ltd Etching method of copper or copper alloy
FI20000099A0 (en) * 2000-01-18 2000-01-18 Asm Microchemistry Ltd A method for growing thin metal films
JP2001295046A (en) 2000-04-10 2001-10-26 Mitsubishi Heavy Ind Ltd Vapor phase growth system of copper thin film
KR100458779B1 (en) * 2000-03-27 2004-12-03 미츠비시 쥬고교 가부시키가이샤 Method for forming metallic film and apparatus for forming the same
US6440494B1 (en) * 2000-04-05 2002-08-27 Tokyo Electron Limited In-situ source synthesis for metal CVD
JP4338113B2 (en) * 2000-05-29 2009-10-07 キヤノンアネルバ株式会社 Ultrafine metal particle production method and ultrafine metal particle production apparatus

Patent Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3803019A (en) * 1971-10-07 1974-04-09 Hewlett Packard Co Sputtering system
US3849283A (en) * 1972-05-01 1974-11-19 Era Patents Ltd Sputtering apparatus
US5082545A (en) * 1988-12-15 1992-01-21 Matsushita Electric Industrial Co., Ltd. Sputtering apparatus
US5515985A (en) * 1993-06-24 1996-05-14 Nec Corporation Method of forming fine copper conductor pattern
US5803342A (en) * 1996-12-26 1998-09-08 Johnson Matthey Electronics, Inc. Method of making high purity copper sputtering targets
US6008140A (en) * 1997-08-13 1999-12-28 Applied Materials, Inc. Copper etch using HCI and HBr chemistry
US6280563B1 (en) * 1997-12-31 2001-08-28 Lam Research Corporation Plasma device including a powered non-magnetic metal member between a plasma AC excitation source and the plasma
US6521108B1 (en) * 1998-12-29 2003-02-18 Tosoh Smd, Inc. Diffusion bonded sputter target assembly and method of making same
US6416595B2 (en) * 1999-10-15 2002-07-09 Honeywell International Inc. Material comprising titanium
US6787010B2 (en) * 2000-11-30 2004-09-07 North Carolina State University Non-thermionic sputter material transport device, methods of use, and materials produced thereby

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