Wang et al., 2014 - Google Patents
Integrated analysis and design optimization of germanium purification process using zone-refining techniqueWang et al., 2014
- Document ID
- 5003738006029139527
- Author
- Wang S
- Fang H
- Jin Z
- Zhao C
- Zheng L
- Publication year
- Publication venue
- Journal of Crystal Growth
External Links
Snippet
Germanium (Ge) is a preferred material in the fabrication of high-performance gamma radiation detector for spectroscopy in nuclear physics. To maintain an intrinsic region in which electrons and holes reach the contacts to produce a spectroscopic signal, germanium …
- GNPVGFCGXDBREM-UHFFFAOYSA-N germanium 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A2NS4xLDQwLjYgTCA2NS4yLDQwLjYgTCA2NS4zLDQwLjUgTCA2NS40LDQwLjQgTCA2NS40LDQwLjMgTCA2NS41LDQwLjMgTCA2NS41LDQwLjIgTCA2NS41LDQwLjEgTCA2NS42LDQwLjAgTCA2NS42LDM5LjkgTCA2NS42LDM5LjggTCA2NS42LDM5LjcgTCA2NC41LDM5LjcgWicgc3R5bGU9J2ZpbGw6IzAwMDAwMDtmaWxsLXJ1bGU6ZXZlbm9kZDtmaWxsLW9wYWNpdHk6MTtzdHJva2U6IzAwMDAwMDtzdHJva2Utd2lkdGg6MC4wcHg7c3Ryb2tlLWxpbmVjYXA6YnV0dDtzdHJva2UtbGluZWpvaW46bWl0ZXI7c3Ryb2tlLW9wYWNpdHk6MTsnIC8+CjxwYXRoIGQ9J00gNjUuNiw0NC4zIEwgNjUuNiw0NC4yIEwgNjUuNiw0NC4xIEwgNjUuNiw0NC4wIEwgNjUuNSw0My45IEwgNjUuNSw0My44IEwgNjUuNSw0My43IEwgNjUuNCw0My43IEwgNjUuNCw0My42IEwgNjUuMyw0My41IEwgNjUuMiw0My40IEwgNjUuMSw0My40IEwgNjUuMSw0My4zIEwgNjUuMCw0My4zIEwgNjQuOSw0My4yIEwgNjQuOCw0My4yIEwgNjQuNyw0My4yIEwgNjQuNiw0My4yIEwgNjQuNSw0My4yIEwgNjQuNCw0My4yIEwgNjQuMyw0My4yIEwgNjQuMiw0My4yIEwgNjQuMSw0My4yIEwgNjQuMCw0My4zIEwgNjMuOSw0My4zIEwgNjMuOCw0My4zIEwgNjMuNyw0My40IEwgNjMuNyw0My41IEwgNjMuNiw0My41IEwgNjMuNSw0My42IEwgNjMuNSw0My43IEwgNjMuNCw0My44IEwgNjMuNCw0My45IEwgNjMuNCw0NC4wIEwgNjMuMyw0NC4xIEwgNjMuMyw0NC4yIEwgNjMuMyw0NC4zIEwgNjMuMyw0NC40IEwgNjMuMyw0NC41IEwgNjMuMyw0NC42IEwgNjMuNCw0NC43IEwgNjMuNCw0NC44IEwgNjMuNCw0NC44IEwgNjMuNSw0NC45IEwgNjMuNSw0NS4wIEwgNjMuNiw0NS4xIEwgNjMuNyw0NS4yIEwgNjMuNyw0NS4yIEwgNjMuOCw0NS4zIEwgNjMuOSw0NS4zIEwgNjQuMCw0NS40IEwgNjQuMSw0NS40IEwgNjQuMiw0NS40IEwgNjQuMyw0NS41IEwgNjQuNCw0NS41IEwgNjQuNSw0NS41IEwgNjQuNiw0NS41IEwgNjQuNyw0NS41IEwgNjQuOCw0NS40IEwgNjQuOSw0NS40IEwgNjUuMCw0NS40IEwgNjUuMSw0NS4zIEwgNjUuMSw0NS4zIEwgNjUuMiw0NS4yIEwgNjUuMyw0NS4xIEwgNjUuNCw0NS4xIEwgNjUuNCw0NS4wIEwgNjUuNSw0NC45IEwgNjUuNSw0NC44IEwgNjUuNSw0NC43IEwgNjUuNiw0NC42IEwgNjUuNiw0NC41IEwgNjUuNiw0NC40IEwgNjUuNiw0NC4zIEwgNjQuNSw0NC4zIFonIHN0eWxlPSdmaWxsOiMwMDAwMDA7ZmlsbC1ydWxlOmV2ZW5vZGQ7ZmlsbC1vcGFjaXR5OjE7c3Ryb2tlOiMwMDAwMDA7c3Ryb2tlLXdpZHRoOjAuMHB4O3N0cm9rZS1saW5lY2FwOmJ1dHQ7c3Ryb2tlLWxpbmVqb2luOm1pdGVyO3N0cm9rZS1vcGFjaXR5OjE7JyAvPgo8L3N2Zz4K [Ge] 0 title abstract description 34
Classifications
-
- C—CHEMISTRY; METALLURGY
- C30—CRYSTAL GROWTH
- C30B—SINGLE-CRYSTAL-GROWTH; UNIDIRECTIONAL SOLIDIFICATION OF EUTECTIC MATERIAL OR UNIDIRECTIONAL DEMIXING OF EUTECTOID MATERIAL; REFINING BY ZONE-MELTING OF MATERIAL; PRODUCTION OF A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; SINGLE CRYSTALS OR HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; AFTER-TREATMENT OF SINGLE CRYSTALS OR A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; APPARATUS THEREFOR
- C30B29/00—Single crystals or homogeneous polycrystalline material with defined structure characterised by the material or by their shape
- C30B29/02—Elements
- C30B29/06—Silicon
-
- C—CHEMISTRY; METALLURGY
- C30—CRYSTAL GROWTH
- C30B—SINGLE-CRYSTAL-GROWTH; UNIDIRECTIONAL SOLIDIFICATION OF EUTECTIC MATERIAL OR UNIDIRECTIONAL DEMIXING OF EUTECTOID MATERIAL; REFINING BY ZONE-MELTING OF MATERIAL; PRODUCTION OF A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; SINGLE CRYSTALS OR HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; AFTER-TREATMENT OF SINGLE CRYSTALS OR A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; APPARATUS THEREFOR
- C30B11/00—Single-crystal growth by normal freezing or freezing under temperature gradient, e.g. Bridgman-Stockbarger method
- C30B11/04—Single-crystal growth by normal freezing or freezing under temperature gradient, e.g. Bridgman-Stockbarger method adding crystallising material or reactants forming it in situ to the melt
-
- C—CHEMISTRY; METALLURGY
- C30—CRYSTAL GROWTH
- C30B—SINGLE-CRYSTAL-GROWTH; UNIDIRECTIONAL SOLIDIFICATION OF EUTECTIC MATERIAL OR UNIDIRECTIONAL DEMIXING OF EUTECTOID MATERIAL; REFINING BY ZONE-MELTING OF MATERIAL; PRODUCTION OF A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; SINGLE CRYSTALS OR HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; AFTER-TREATMENT OF SINGLE CRYSTALS OR A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; APPARATUS THEREFOR
- C30B13/00—Single-crystal growth by zone-melting; Refining by zone-melting
- C30B13/08—Single-crystal growth by zone-melting; Refining by zone-melting adding crystallising material or reactants forming it in situ to the molten zone
-
- C—CHEMISTRY; METALLURGY
- C30—CRYSTAL GROWTH
- C30B—SINGLE-CRYSTAL-GROWTH; UNIDIRECTIONAL SOLIDIFICATION OF EUTECTIC MATERIAL OR UNIDIRECTIONAL DEMIXING OF EUTECTOID MATERIAL; REFINING BY ZONE-MELTING OF MATERIAL; PRODUCTION OF A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; SINGLE CRYSTALS OR HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; AFTER-TREATMENT OF SINGLE CRYSTALS OR A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; APPARATUS THEREFOR
- C30B15/00—Single-crystal growth by pulling from a melt, e.g. Czochralski method
- C30B15/20—Controlling or regulating
- C30B15/22—Stabilisation or shape controlling of the molten zone near the pulled crystal; Controlling the section of the crystal
-
- C—CHEMISTRY; METALLURGY
- C30—CRYSTAL GROWTH
- C30B—SINGLE-CRYSTAL-GROWTH; UNIDIRECTIONAL SOLIDIFICATION OF EUTECTIC MATERIAL OR UNIDIRECTIONAL DEMIXING OF EUTECTOID MATERIAL; REFINING BY ZONE-MELTING OF MATERIAL; PRODUCTION OF A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; SINGLE CRYSTALS OR HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; AFTER-TREATMENT OF SINGLE CRYSTALS OR A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; APPARATUS THEREFOR
- C30B11/00—Single-crystal growth by normal freezing or freezing under temperature gradient, e.g. Bridgman-Stockbarger method
- C30B11/002—Crucibles or containers for supporting the melt
-
- C—CHEMISTRY; METALLURGY
- C30—CRYSTAL GROWTH
- C30B—SINGLE-CRYSTAL-GROWTH; UNIDIRECTIONAL SOLIDIFICATION OF EUTECTIC MATERIAL OR UNIDIRECTIONAL DEMIXING OF EUTECTOID MATERIAL; REFINING BY ZONE-MELTING OF MATERIAL; PRODUCTION OF A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; SINGLE CRYSTALS OR HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; AFTER-TREATMENT OF SINGLE CRYSTALS OR A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; APPARATUS THEREFOR
- C30B11/00—Single-crystal growth by normal freezing or freezing under temperature gradient, e.g. Bridgman-Stockbarger method
- C30B11/003—Heating or cooling of the melt or the crystallised material
-
- C—CHEMISTRY; METALLURGY
- C30—CRYSTAL GROWTH
- C30B—SINGLE-CRYSTAL-GROWTH; UNIDIRECTIONAL SOLIDIFICATION OF EUTECTIC MATERIAL OR UNIDIRECTIONAL DEMIXING OF EUTECTOID MATERIAL; REFINING BY ZONE-MELTING OF MATERIAL; PRODUCTION OF A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; SINGLE CRYSTALS OR HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; AFTER-TREATMENT OF SINGLE CRYSTALS OR A HOMOGENEOUS POLYCRYSTALLINE MATERIAL WITH DEFINED STRUCTURE; APPARATUS THEREFOR
- C30B28/00—Production of homogeneous polycrystalline material with defined structure
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Wang et al. | Integrated analysis and design optimization of germanium purification process using zone-refining technique | |
Tan et al. | Removal of aluminum and calcium in multicrystalline silicon by vacuum induction melting and directional solidification | |
Teng et al. | The carbon distribution in multicrystalline silicon ingots grown using the directional solidification process | |
Demina et al. | Numerical analysis of sapphire crystal growth by the Kyropoulos technique | |
Chen et al. | Numerical simulation of oxygen transport during the CZ silicon crystal growth process | |
Derby et al. | Heat transfer analysis and design for bulk crystal growth: Perspectives on the Bridgman method | |
Liu et al. | A three-dimensional numerical simulation model for the growth of CdTe single crystals by the travelling heater method under magnetic field | |
Liu et al. | Global simulation of coupled oxygen and carbon transport in an industrial directional solidification furnace for crystalline silicon ingots: Effect of crucible cover coating | |
Hong et al. | Studies on thermal and interface optimization for CdZnTe crystals by unseeded Traveling Heater Method | |
Qi et al. | Effect of internal radiation on heat transfer during Ti: Sapphire crystal growth process by heat exchanger method | |
Qi et al. | Effects of furnace pressure on oxygen and carbon coupled transport in an industrial directional solidification furnace for crystalline silicon ingots | |
Li et al. | Effect of melt flow rate and S/L interface on the P horizontal distribution in silicon | |
Kalejs | Modeling contributions in commercialization of silicon ribbon growth from the melt | |
Ezheiyan et al. | Simulation for purification process of high pure germanium by zone refining method | |
Kesavan et al. | Optimizing oxygen impurities using different heater design in the directional solidification of multi-crystalline silicon | |
Chen et al. | Effects of different crucible shapes on heat and oxygen transport during continuous Czochralski silicon crystal growth | |
Teng et al. | Numerical analysis of solid–liquid interface shape during large-size single crystalline silicon with Czochralski method | |
Popescu et al. | Numerical study of the influence of melt convection on the crucible dissolution rate in a silicon directional solidification process | |
Saadatirad et al. | Effect of the pulling, crystal and crucible rotation rate on the thermal stress and the melt–crystal interface in the Czochralski growth of germanium crystals | |
Hu et al. | Optimizing mass transfer control using a stirring paddle for the rapid growth of KDP crystals | |
Stelian et al. | Numerical analysis of solute distribution and interface stabilization during experimental Bridgman growth of concentrated GaInSb alloys | |
Sekar et al. | Investigation of Solid-Liquid interface effects on the impurity concentration in the DS grown Mc-Si Ingot by using C-Clamp insulation block for solar cell applications: numerical analysis | |
Ma et al. | Silicon carbide particle formation/engulfment during directional solidification of silicon | |
Kakimoto et al. | Fluid dynamics: modeling and analysis | |
Wan et al. | Effect of a traveling magnetic field on cadmium zinc telluride growth by the traveling heater method |