Flexible Ni/NiOx-Based Sensor for Human Breath Detection
<p>Transmittance electron microscopy (TEM) image (<b>a</b>), high-resolution TEM (HR-TEM) image (<b>b</b>), and selective-area electron diffraction (SAED) pattern (<b>c</b>) of the NiO<sub>x</sub> nanoparticles.</p> "> Figure 2
<p>(<b>a</b>) Schematic of the fabrication procedures of the flexible Ni/NiO<sub>x</sub>-based breath sensor on polyimide (PI). (<b>b</b>) (i) Schematic drawing, (ii) optical microscopy image, and (iii) scanning electron microscopy (SEM) image of the Ni/NiO<sub>x</sub>-based breath sensor. (<b>c</b>) Chemical compositions of the as-synthesized NiO<sub>x</sub> thin film, reductive sintering Ni electrode, and the NiO<sub>x</sub>-sensing channel, analyzed by energy-dispersive X-ray spectrometry.</p> "> Figure 3
<p>X-ray photoelectron spectroscopy (XPS) results from the as-synthesized NiO<sub>x</sub> thin film and the NiO<sub>x</sub>-sensing channel of the breath sensor for (<b>a</b>) Ni 2p<sub>3/2</sub> and (<b>b</b>) O 1s.</p> "> Figure 4
<p>(<b>a</b>) Schematic diagram of the experimental setup to test the breath sensing performance of the senor. (<b>b</b>) Electrical resistance variation of the Ni/NiO<sub>x</sub>-based breath sensor to the normal breathing rate at the operating temperature of 50 °C. (<b>c</b>) Response and recovery times of the breath sensor to the normal breath rate at 50 °C. (<b>d</b>) Response curves of the breath sensor to the different breathing rates at 50 °C. (<b>e</b>) Maximum responses of the breath sensor to the normal breath rate at different temperatures.</p> "> Figure 5
<p>(<b>a</b>) Electrical resistance variation of the breath sensor corresponding to temperature change only. (<b>b</b>) Data fitting to determine the thermal sensitivity index (B-value) of the breath sensor. (<b>c</b>) Response curve of the breath sensor covered by a medical tape to the normal breath rate at 50 °C.</p> "> Figure 6
<p>(<b>a</b>) Schematic illustration of the horizontal bending and vertical bending states of the sensor. (<b>b</b>) Electrical resistance change (<span class="html-italic">R/R</span><sub>o</sub>) of the breath sensor under various bending radii under each bending state. (<b>c</b>) Response curve of the Ni/NiO<sub>x</sub>-based breath sensor to the normal breathing rate at the operating temperature of 50 °C under a bending condition. (<b>d</b>) Relative resistance changes of the breath sensor during a cyclic bending test (10,000 cycles).</p> ">
Abstract
:1. Introduction
2. Materials and Methods
2.1. NiOx NP Synthesis and NiOx Thin-Film Deposition
2.2. Laser Digital Patterning Process
2.3. Characterizations
3. Results and Discussion
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Bates, J.; Schmalisch, G.; Filbrun, D.; Stocks, J. Tidal breath analysis for infant pulmonary function testing. ERS/ATS task force on standards for infant respiratory function testing. European respiratory society/American thoracic society. Eur. Respir. J. 2000, 16, 1180–1192. [Google Scholar] [CrossRef] [Green Version]
- Yasuma, F.; Hayano, J.-I. Respiratory sinus arrhythmia: Why does the heartbeat synchronize with respiratory rhythm? Chest 2004, 125, 683–690. [Google Scholar] [CrossRef]
- Peng, G.; Tisch, U.; Adams, O.; Hakim, M.; Shehada, N.; Broza, Y.Y.; Billan, S.; Abdah-Bortnyak, R.; Kuten, A.; Haick, H. Diagnosing lung cancer in exhaled breath using gold nanoparticles. Nat. Nanotechnol. 2009, 4, 669–673. [Google Scholar] [CrossRef] [PubMed]
- Fleischer, M.; Simon, E.; Rumpel, E.; Ulmer, H.; Harbeck, M.; Wandel, M.; Fietzek, C.; Weimar, U.; Meixner, H. Detection of Volatile Compounds Correlated to Human Diseases Through Breath Analysis with Chemical Sensors. Sens. Actuators B Chem. 2001, 83, 1746–1749. [Google Scholar] [CrossRef]
- Yu, J.-B.; Byun, H.-G.; So, M.-S.; Huh, J.-S. Analysis of diabetic patient’s breath with conducting polymer sensor array. Sens. Actuators B Chem. 2005, 108, 305–308. [Google Scholar] [CrossRef]
- Lourenço, C.; Turner, C. Breath Analysis in Disease Diagnosis: Methodological Considerations and Applications. Metabolites 2014, 4, 465–498. [Google Scholar] [CrossRef]
- Du, B.; Yang, D.; She, X.; Yuan, Y.; Mao, D.; Jiang, Y.; Lu, F. MoS2-based all-fiber humidity sensor for monitoring human breath with fast response and recovery. Sens. Actuators B Chem. 2017, 251, 180–184. [Google Scholar] [CrossRef]
- Yi, Y.; Jiang, Y.; Zhao, H.; Brambilla, G.; Fan, Y.; Wang, P. High-Performance Ultrafast Humidity Sensor Based on Microknot Resonator-Assisted Mach–Zehnder for Monitoring Human Breath. ACS Sens. 2020, 5, 3404–3410. [Google Scholar] [CrossRef]
- Lou, C.; Hou, K.; Zhu, W.; Wang, X.; Yang, X.; Dong, R.; Chen, H.; Guo, L.; Liu, X. Human Respiratory Monitoring Based on Schottky Resistance Humidity Sensors. Materials 2020, 13, 430. [Google Scholar] [CrossRef] [Green Version]
- Herbig, J.; Titzmann, T.; Beauchamp, J.; Kohl, I.; Hansel, A. Buffered end-tidal (BET) sampling—A novel method for real-time breath-gas analysis. J. Breath Res. 2008, 2, 037008. [Google Scholar] [CrossRef]
- Schon, S.; Theodore, S.J.; Güntner, A.T. Versatile breath sampler for online gas sensor analysis. Sens. Actuators B Chem. 2018, 273, 1780–1785. [Google Scholar] [CrossRef]
- Chang, J.-E.; Lee, D.-S.; Ban, S.-W.; Oh, J.; Jung, M.Y.; Kim, S.-H.; Park, S.; Persaud, K.; Jheon, S. Analysis of volatile organic compounds in exhaled breath for lung cancer diagnosis using a sensor system. Sens. Actuators B Chem. 2018, 255, 800–807. [Google Scholar] [CrossRef]
- Cho, C.H.; Choe, Y.-S.; Oh, J.Y.; Lee, T.I. Self-Assembled 2D Networks of Metal Oxide Nanomaterials Enabling Sub-ppm Level Breathalyzers. ACS Sens. 2021, 6, 3195–3203. [Google Scholar] [CrossRef]
- Mills, A.; Lepre, A.; Wild, L. Breath-by-breath measurement of carbon dioxide using a plastic film optical sensor. Sens. Actuators B Chem. 1997, 39, 419–425. [Google Scholar] [CrossRef]
- Shrivastav, A.M.; Gunawardena, D.; Liu, Z.; Tam, H.-Y. Microstructured optical fiber based Fabry–Pérot interferometer as a humidity sensor utilizing chitosan polymeric matrix for breath monitoring. Sci. Rep. 2020, 10, 6002. [Google Scholar] [CrossRef] [PubMed]
- Nam, V.B.; Shin, J.; Choi, A.; Choi, H.; Ko, S.H.; Lee, D. High-temperature, thin, flexible and transparent Ni-based heaters patterned by laser-induced reductive sintering on colorless polyimide. J. Mater. Chem. C 2021, 9, 5652–5661. [Google Scholar] [CrossRef]
- Xiao, P.; Kim, J.-H.; Seo, S. Flexible and Stretchable Liquid Metal Electrodes Working at Sub-Zero Temperature and Their Applications. Materials 2021, 14, 4313. [Google Scholar] [CrossRef]
- Yang, Y.; Han, J.; Huang, J.; Sun, J.; Wang, Z.L.; Seo, S.; Sun, Q. Stretchable energy-harvesting tactile interactive interface with liquid-metal-nanoparticle-based electrodes. Adv. Funct. Mater. 2020, 30, 1909652. [Google Scholar] [CrossRef]
- Xiao, P.; Gwak, H.-J.; Seo, S. Fabrication of a Flexible Photodetector Based on a Liquid Eutectic Gallium Indium. Materials 2020, 13, 5210. [Google Scholar] [CrossRef]
- Kim, M.; Seo, S. Flexible pressure and touch sensor with liquid metal droplet based on gallium alloys. Mol. Cryst. Liq. Cryst. 2019, 685, 40–46. [Google Scholar] [CrossRef]
- Kim, W.; Lee, J.S. Freestanding and flexible β-MnO2@ carbon sheet for application as a highly sensitive dimethyl methylphosphonate sensor. ACS Omega 2021, 6, 4988–4994. [Google Scholar] [CrossRef]
- Cho, K.H.; Shin, D.H.; Oh, J.; An, J.H.; Lee, J.S.; Jang, J. Multidimensional Conductive Nanofilm-Based Flexible Aptasensor for Ultrasensitive and Selective HBsAg Detection. ACS Appl. Mater. Interfaces 2018, 10, 28412–28419. [Google Scholar] [CrossRef]
- Chen, S.; Han, X.; Hong, P.; Zhang, Y.; Yin, X.; He, B. A Flexible Temperature Sensor for Noncontact Human-Machine Interaction. Materials 2021, 14, 7112. [Google Scholar] [CrossRef]
- Lee, D.; Paeng, D.; Park, H.K.; Grigoropoulos, C. Vacuum-Free, Maskless Patterning of Ni Electrodes by Laser Reductive Sintering of NiO Nanoparticle Ink and Its Application to Transparent Conductors. ACS Nano 2014, 8, 9807–9814. [Google Scholar] [CrossRef]
- Kwon, H.-J.; Choi, W.; Lee, D.; Lee, Y.; Kwon, J.; Yoo, B.; Grigoropoulos, C.P.; Kim, S. Selective and localized laser annealing effect for high-performance flexible multilayer MoS2 thin-film transistors. Nano Res. 2014, 7, 1137–1145. [Google Scholar] [CrossRef]
- Shin, J.; Jeong, B.; Kim, J.; Nam, V.B.; Yoon, Y.; Jung, J.; Hong, S.; Lee, H.; Eom, H.; Yeo, J. Sensitive wearable temperature sensor with seamless monolithic integration. Adv. Mater. 2020, 32, 1905527. [Google Scholar] [CrossRef] [PubMed]
- Wisitsoraat, A.; Tuantranont, A.; Comini, E.; Sberveglieri, G.; Wlodarski, W. Characterization of n-type and p-type semiconductor gas sensors based on NiOx doped TiO2 thin films. Thin Solid Films 2009, 517, 2775–2780. [Google Scholar] [CrossRef]
- Nam, V.B.; Giang, T.T.; Koo, S.; Rho, J.; Lee, D. Laser digital patterning of conductive electrodes using metal oxide nanomaterials. Nano Converg. 2020, 7, 23. [Google Scholar] [CrossRef] [PubMed]
- Bin In, J.; Lee, D.; Fornasiero, F.; Noy, A.; Grigoropoulos, C.P. Laser-Assisted Simultaneous Transfer and Patterning of Vertically Aligned Carbon Nanotube Arrays on Polymer Substrates for Flexible Devices. ACS Nano 2012, 6, 7858–7866. [Google Scholar] [CrossRef]
- Smikhovskaia, A.V.; Andrianov, V.S.; Khairullina, E.M.; Lebedev, D.; Ryazantsev, M.N.; Panov, M.S.; Tumkin, I.I. In situ laser-induced synthesis of copper-silver microcomposite for enzyme-free d-glucose and l-alanine sensing. Appl. Surf. Sci. 2019, 488, 531–536. [Google Scholar] [CrossRef]
- Keck, J.; Freisinger, B.; Juric, D.; Gläser, K.; Völker, M.; Eberhardt, W.; Zimmermann, A. Low-temperature sintering of nanometal inks on polymer substrates. In Proceedings of the 2018 13th International Congress Molded Interconnect Devices (MID), Würzburg, Germany, 25–26 September 2018; pp. 1–7. [Google Scholar]
- Cai, J.; Watanabe, A.; Lv, C. Laser direct writing of carbon/Au composite electrodes for high-performance micro-supercapacitors. Laser-Based Micro- Nanoprocess. XI 2017, 10092, 10092–100920P. [Google Scholar] [CrossRef]
- Theodorakos, I.; Zacharatos, F.; Geremia, R.; Karnakis, D.; Zergioti, I. Selective laser sintering of Ag nanoparticles ink for applications in flexible electronics. Appl. Surf. Sci. 2015, 336, 157–162. [Google Scholar] [CrossRef]
- Makrygianni, M.; Kalpyris, I.; Boutopoulos, C.; Zergioti, I. Laser induced forward transfer of Ag nanoparticles ink deposition and characterization. Appl. Surf. Sci. 2014, 297, 40–44. [Google Scholar] [CrossRef]
- Mizoshiri, M.; Arakane, S.; Sakurai, J.; Hata, S. Direct writing of Cu-based micro-temperature detectors using femtosecond laser reduction of CuO nanoparticles. Appl. Phys. Express 2016, 9, 36701. [Google Scholar] [CrossRef]
- Mizoshiri, M.; Yoshidomi, K. Cu Patterning Using Femtosecond Laser Reductive Sintering of CuO Nanoparticles under Inert Gas Injection. Materials 2021, 14, 3285. [Google Scholar] [CrossRef]
- Hernandez-Castaneda, J.C.; Lok, B.K.; Zheng, H. Laser sintering of Cu nanoparticles on PET polymer substrate for printed electronics at different wavelengths and process conditions. Front. Mech. Eng. 2019, 15, 303–318. [Google Scholar] [CrossRef]
- Kwon, J.; Cho, H.; Suh, Y.D.; Lee, J.; Lee, H.; Jung, J.; Kim, N.; Lee, D.; Hong, S.; Ko, S.H. Flexible and Transparent Cu Electronics by Low-Temperature Acid-Assisted Laser Processing of Cu Nanoparticles. Adv. Mater. Technol. 2016, 2, 1600222. [Google Scholar] [CrossRef]
- Liu, S.; Li, Y.; Xing, S.; Liu, L.; Zou, G.; Zhang, P. Structure Inheritance in Nanoparticle Ink Direct-Writing Processes and Crack-Free Nano-Copper Interconnects Printed by a Single-Run Approach. Materials 2019, 12, 1559. [Google Scholar] [CrossRef] [Green Version]
- Paeng, D.; Lee, D.; Yeo, J.; Yoo, J.-H.; Allen, F.I.; Kim, E.; So, H.; Park, H.K.; Minor, A.M.; Grigoropoulos, C. Laser-Induced Reductive Sintering of Nickel Oxide Nanoparticles under Ambient Conditions. J. Phys. Chem. C 2015, 119, 6363–6372. [Google Scholar] [CrossRef]
- Tamura, K.; Mizoshiri, M.; Sakurai, J.; Hata, S. Ni-based composite microstructures fabricated by femtosecond laser reductive sintering of NiO/Cr mixed nanoparticles. Jpn. J. Appl. Phys. 2017, 56, 06GN08. [Google Scholar] [CrossRef] [Green Version]
- Nam, V.B.; Shin, J.; Yoon, Y.; Giang, T.T.; Kwon, J.; Suh, Y.D.; Yeo, J.; Hong, S.; Ko, S.H.; Lee, D. Highly Stable Ni-Based Flexible Transparent Conducting Panels Fabricated by Laser Digital Patterning. Adv. Funct. Mater. 2019, 29, 1806895. [Google Scholar] [CrossRef]
- Nam, V.; Lee, D. Evaluation of Ni-Based Flexible Resistance Temperature Detectors Fabricated by Laser Digital Pattering. Nanomaterials 2021, 11, 576. [Google Scholar] [CrossRef]
- Rho, Y.; Kang, K.-T.; Lee, D. Highly crystalline Ni/NiO hybrid electrodes processed by inkjet printing and laser-induced reductive sintering under ambient conditions. Nanoscale 2016, 8, 8976–8985. [Google Scholar] [CrossRef]
- Mokoena, T.P.; Swart, H.C.; Motaung, D.E. A review on recent progress of p-type nickel oxide based gas sensors: Future perspectives. J. Alloys Compd. 2019, 805, 267–294. [Google Scholar] [CrossRef]
- Kim, H.-J.; Lee, J.-H. Highly sensitive and selective gas sensors using p-type oxide semiconductors: Overview. Sens. Actuators B Chem. 2014, 192, 607–627. [Google Scholar] [CrossRef]
- Majhi, S.M.; Naik, G.K.; Lee, H.-J.; Song, H.-G.; Lee, C.-R.; Lee, I.-H.; Yu, Y.-T. Au@ NiO core-shell nanoparticles as a p-type gas sensor: Novel synthesis, characterization, and their gas sensing properties with sensing mechanism. Sens. Actuators B Chem. 2018, 268, 223–231. [Google Scholar] [CrossRef]
- Jiang, F.; Choy, W.C.; Li, X.; Zhang, D.; Cheng, J. Post-treatment-free solution-processed non-stoichiometric NiOx nanoparticles for efficient hole-transport layers of organic optoelectronic devices. Adv. Mater. 2015, 27, 2930–2937. [Google Scholar] [CrossRef] [PubMed]
- Ratcliff, E.L.; Meyer, J.; Steirer, K.X.; Garcia, A.; Berry, J.J.; Ginley, D.S.; Olson, D.C.; Kahn, A.; Armstrong, N.R. Evidence for near-surface NiOOH species in solution-processed NiO x selective interlayer materials: Impact on energetics and the performance of polymer bulk heterojunction photovoltaics. Chem. Mater. 2011, 23, 4988–5000. [Google Scholar] [CrossRef]
- Uhlenbrock, S.; Scharfschwerdt, C.; Neumann, M.; Illing, G.; Freund, H.-J. The influence of defects on the Ni 2p and O 1s XPS of NiO. J. Phys. Condens. Matter 1992, 4, 7973–7978. [Google Scholar] [CrossRef]
- Kwon, U.; Kim, B.-G.; Nguyen, C.; Park, J.-H.; Ha, N.Y.; Kim, S.-J.; Ko, S.H.; Lee, S.; Lee, D.; Park, H.J. Solution-Processible Crystalline NiO Nanoparticles for High-Performance Planar Perovskite Photovoltaic Cells. Sci. Rep. 2016, 6, 30759. [Google Scholar] [CrossRef] [Green Version]
- Kim, K.; Winograd, N. X-ray photoelectron spectroscopic studies of nickel-oxygen surfaces using oxygen and argon ion-bombardment. Surf. Sci. 1974, 43, 625–643. [Google Scholar] [CrossRef]
- Reddy, K.C.S.; Selamneni, V.; Rao, M.S.; Meza-Arroyo, J.; Sahatiya, P.; Ramirez-Bon, R. All solution processed flexible p-NiO/n-CdS rectifying junction: Applications towards broadband photodetector and human breath monitoring. Appl. Surf. Sci. 2021, 568, 150944. [Google Scholar] [CrossRef]
- Zhang, Y.; Pan, X.; Wang, Z.; Hu, Y.; Zhou, X.; Hu, Z.; Gu, H. Fast and highly sensitive humidity sensors based on NaNbO3 nanofibers. RSC Adv. 2015, 5, 20453–20458. [Google Scholar] [CrossRef]
- Ma, H.; Fang, H.; Wu, W.; Zheng, C.; Wu, L.; Wang, H. A highly transparent humidity sensor with fast response speed based on α-MoO 3 thin films. RSC Adv. 2020, 10, 25467–25474. [Google Scholar] [CrossRef]
- Barsan, N.; Simion, C.; Heine, T.; Pokhrel, S.; Weimar, U. Modeling of sensing and transduction for p-type semiconducting metal oxide based gas sensors. J. Electroceram. 2010, 25, 11–19. [Google Scholar] [CrossRef]
- Wang, Y.; Zhang, L.; Zhang, Z.; Sun, P.; Chen, H. High-Sensitivity Wearable and Flexible Humidity Sensor Based on Graphene Oxide/Non-Woven Fabric for Respiration Monitoring. Langmuir 2020, 36, 9443–9448. [Google Scholar] [CrossRef]
- Kumar, R.; Al-Dossary, O.; Kumar, G.; Umar, A. Zinc Oxide Nanostructures for NO2 Gas–Sensor Applications: A Review. Nano-Micro Lett. 2015, 7, 97–120. [Google Scholar] [CrossRef] [Green Version]
- Farre, R.; Montserrat, J.M.; Navajas, D. Noninvasive monitoring of respiratory mechanics during sleep. Eur. Respir. J. 2004, 24, 1052–1060. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Jovanov, E.; Raskovic, D.; Hormigo, R. Thermistor-based breathing sensor for circadian rhythm evaluation. Biomed. Sci. Instrum. 2001, 37, 493–498. [Google Scholar]
- Feteira, A. Negative Temperature Coefficient Resistance (NTCR) Ceramic Thermistors: An Industrial Perspective. J. Am. Ceram. Soc. 2009, 92, 967–983. [Google Scholar] [CrossRef]
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Ho, L.D.-A.; Nam, V.B.; Lee, D. Flexible Ni/NiOx-Based Sensor for Human Breath Detection. Materials 2022, 15, 47. https://doi.org/10.3390/ma15010047
Ho LD-A, Nam VB, Lee D. Flexible Ni/NiOx-Based Sensor for Human Breath Detection. Materials. 2022; 15(1):47. https://doi.org/10.3390/ma15010047
Chicago/Turabian StyleHo, Le Duc-Anh, Vu Binh Nam, and Daeho Lee. 2022. "Flexible Ni/NiOx-Based Sensor for Human Breath Detection" Materials 15, no. 1: 47. https://doi.org/10.3390/ma15010047