| INORGANIC MATERIALS AND CERAMIC MATRIX COMPOSITES |
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| Research Progress and Intelligent Application Prospects of Hydrogen Sensors |
| JIA Haibin1, XIE Li2, CAI Dan1,*, SUN Lixian1,*, LIN Huaizhou1, XU Fen1
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1 School of Materials Science and Engineering, Guilin University of Electronic Technology; Guangxi Key Laboratory of Information Materials; Guangxi Collaborative Innovation Center of Structure and Property for New Energy Materials, Guilin 541004, Guangxi, China 2 Department of Basic Teaching and Research, Guilin Institute of Information Technology, Guilin 541004, Guangxi, China |
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Abstract The development and application of hydrogen energy technologies play a crucial role in improving the future energy structure, promoting environmental protection, and achieving the goals of “carbon peak” and “carbon neutrality”. These technologies strive to balance economic development with green transformation. Hydrogen is an efficient yet hazardous gas, and the issue of its safe usage has been a focus of research. To detect hydrogen, hydrogen sensors are widely used in the processes of production, storage, transportation, and utilization of hydrogen energy. Depending on their working principles, hydrogen sensors can be classified into catalytic, resistive, electrochemical, optical, surface acoustic wave, thermal conductivity, and magnetic types. In recent years, with the development of Internet of Things technologies, artificial intelligence, and the widespread adoption of concepts such as “smart manufacturing” and “Industry 4.0”, there has been an increasing demand to integrate more intelligent sensor systems into various hydrogen energy applications. This paper reviews the working principles and current research status of different types of hydrogen sensors, compares existing research and commercial hydrogen sensors, explores intelligent application scenarios and case studies of hydrogen sensors, and provides an outlook on the future development of hydrogen sensors and their intelligent applications.
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Published:
Online: 2026-02-13
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Corresponding Authors:
dancai1985@guet.edu.cn;sunlx@guet.edu.cn
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1 Moradi R, Groth K M. International Journal of Hydrogen Energy, 2019, 44, 12254. 2 Abohamzeh E, Salehi F, Sheikholeslami M, et al. Journal of Loss Prevention in the Process Industries, 2021, 72, 104569. 3 Aziz M. Energies, 2021, 14, 5917. 4 Chau K, Djire A, Khan F. International Journal of Hydrogen Energy, 2022, 47, 13990. 5 Lan H, Wang G Y, Zhao K, et al. Energies, 2022, 15, 7295. 6 Salehi F, Abbassi R, Asadnia M, et al. International Journal of Hydrogen Energy, 2022, 47, 34689. 7 Ustolin F, Paltrinieri N, Berto F. International Journal of Hydrogen Energy, 2020, 45, 23809. 8 West M, Al-Douri A, Hartmann K, et al. International Journal of Hydrogen Energy, 2022, 47, 17845. 9 Yang F Y, Wang T Z, Deng X T, et al. International Journal of Hydrogen Energy, 2021, 46, 31467. 10 Zhang C Z, Cao X J, Bujlo P, et al. Journal of Energy Storage, 2022, 45, 103451. 11 Luong H M, Ngo T A, Pham M T, et al. Nano Energy, 2023, 109, 108332. 12 Yoshida T, Kojima K. The Electrochemical Society Interface, 2015, 24, 45. 13 Manoharan Y, Hosseini S E, Butler B, et al. Applied Sciences, 2019, 9, 2296. 14 Zhao F Q, Mu Z X, Hao H, et al. Energy Technology, 2020, 8, 2000179. 15 Wang K, Yu J, Yu Y, et al. IEEE Systems Journal, 2017, 12, 2403. 16 Zhou K L, Yang S L, Shao Z. Applied Energy, 2016, 178, 212. 17 Firth J, Jones A, Jones T. Combustion and Flame, 1973, 20, 303. 18 Ekedahl L G, Eriksson M, Lundström I. Accounts of Chemical Research, 1998, 31, 249. 19 Hughes R, Bastasz R, Ellis W. Applied Surface Science, 1997, 115, 74. 20 Maffei N, Kuriakose A. Sensors and Actuators B:Chemical, 1999, 56, 243. 21 Reddy C G, Manorama S. Journal of the Electrochemical Society, 2000, 147, 390. 22 Houlet L F. Journal of the Ceramic Society of Japan, 2006, 114, 853. 23 Tajima K, Choi Y, Shin W, et al. Journal of The Electrochemical Society, 2006, 153, H58. 24 Lee E B, Hwang I S, Cha J H, et al. Sensors and Actuators B:Chemical, 2011, 153, 392. 25 Liu X F, Dong H P, Xia S H. Acta Chimica Sinica, 2013, 71, 657. 26 Zhang J S, Huang H, Luan W L, et al. Petrochemical Technology, 2006, 35(12), 1145 (in Chinese). 张建松, 黄琥, 栾伟玲, 等. 石油化工, 2006, 35(12), 1145. 27 Huang H, Luan W L, Zhang J S, et al. Sensors and Actuators B:Chemical, 2008, 128, 581. 28 Yu Y, Hu Z Y, Lien S Y, et al. ACS Applied Materials & Interfaces, 2022, 14, 47696. 29 Ouyang Y J, Yu G, Si W W, et al. Chemical Sensors, 2009, 29(2), 1 (in Chinese). 欧阳跃军, 余刚, 司薇薇, 等. 化学传感器, 2009, 29(2), 1. 30 Gu H S, Wang Z, Hu Y M. Sensors, 2012, 12, 5517. 31 Luo Y F, Zhang C, Zheng B B, et al. International Journal of Hydrogen Energy, 2017, 42, 20386. 32 Sahoo T, Kale P. Advanced Materials Interfaces, 2021, 8, 2100649. 33 Li H, Wu C H, Liu Y C, et al. Sensors and Actuators B:Chemical, 2021, 341, 130035. 34 Ratan S, Kumar C, Kumar A, et al. Nanotechnology, 2019, 30, 395501. 35 Zhang X X, Sun J H, Tang K S, et al. Microsystems & Nanoengineering, 2022, 8, 67. 36 Liu J F, Chen K S, Wang A M, et al. Transducer and Microsystem Technologies, 2009, 28(8), 8 (in Chinese). 刘俊峰, 陈侃松, 王爱敏, 等. 传感器与微系统, 2009, 28(8), 8. 37 Walter E, Penner R, Liu H, et al. Surface and Interface Analysis, 2002, 34, 409. 38 Kiefer T, Favier F, Vazquez-Mena O, et al. Nanotechnology, 2008, 19, 125502. 39 Gupta D, Dutta D, Kumar M, et al. Sensors and Actuators B:Chemical, 2014, 196, 215. 40 Mubeen S, Zhang T, Yoo B, et al. The Journal of Physical Chemistry C, 2007, 111, 6321. 41 Mu K, Tong X L, Hu P, et al. Laser Journal, 2016, 37(5), 1 (in Chinese). 母坤, 童杏林, 胡畔, 等. 激光杂志, 2016, 37(5), 1. 42 Yamazaki H, Hayashi Y, Masunishi K, et al. Journal of Micromechanics and Microengineering, 2018, 28, 094001. 43 Chao Y T, Yao S, Buttner W J, et al. Sensors and Actuators B:Chemical, 2005, 106, 784. 44 Zhan Z P. In:Conference Record of the 2021 7th International Conference on Energy Materials and Environment Engineering. Zhangjiajie, China, 2021, pp. 02013. 45 Zosel J, Schiffel G, Gerlach F, et al. Solid State Ionics, 2006, 177, 2301. 46 Maffei N, Kuriakose A. Sensors and Actuators B:Chemical, 2004, 98, 73. 47 Zhang H, Li Z, Yi J X, et al. Sensors and Actuators B:Chemical, 2020, 321, 128505. 48 Jung S W, Lee E K, Lee S Y. ECS Journal of Solid State Science and Technology, 2018, 7, Q239. 49 Lujan E, Hinojo A, Colominas S, et al. Sensors and Actuators B:Chemical, 2023, 375, 132952. 50 Yamazaki H, Hayashi Y, Masunishi K, et al. Electronics and Communications in Japan, 2019, 102, 70. 51 Hayashi Y, Yamazaki H, Masunishi K, et al. Electrical Engineering in Japan, 2021, 214, e23317. 52 Pour G B, Aval L F, Eslami S. Current Nanoscience, 2018, 14, 136. 53 Chen K F, Yuan D P, Zhao Y Y. Optics & Laser Technology, 2021, 137, 106808. 54 Hübert T, Boon-Brett L, Black G, et al. Sensors and Actuators B:Chemical, 2011, 157, 329. 55 Wang G P, Dai J X, Yang M H. IEEE Sensors Journal, 2020, 21, 12706. 56 Bannenberg L J, Boelsma C, Asano K, et al. Journal of the Physical Society of Japan, 2020, 89, 051003. 57 Dai J X, Zhu L, Wang G P, et al. Sensors, 2017, 17, 577. 58 Zhang Y N, Peng H, Qian X L, et al. Sensors and Actuators B:Chemical, 2017, 244, 393. 59 Zhang Y, Su Y Q, Chen J S, et al. Chinese Science Bulletin, 2023, 68(Z1), 204 (in Chinese). 张颖, 宿禹祺, 陈俊帅, 等. 科学通报, 2023, 68(Z1), 204. 60 Zhang B L. Research on multilayer micro-mirror optical fiber hydrogen sensor. Master’s Thesis, Beijing Jiaotong University, China, 2015 (in Chinese). 张保磊. 基于多膜层的微透镜型光纤氢气传感器研究. 硕士学位论文, 北京交通大学, 2015. 61 Sun Y. Research on micro-mirror optical fiber hydrogen sensor. Master’s Thesis, Wuhan University of Technology, China, 2010 (in Chinese). 孙艳. 微透镜型光纤氢气传感器的实验研究. 硕士学位论文, 武汉理工大学, 2010. 62 Bevenot X, Trouillet A, Veillas C, et al. Sensors and Actuators B:Chemical, 2000, 67, 57. 63 Kazemi A A, Larson D B, Wuestling M D. In:Conference Record of the SPIE Conference on Fiber Optic Sensor Technology and Applications. Boston, Massachusetts, USA, 1999, pp. 507. 64 Saad S, Hassine L. Photonic Sensors, 2013, 3, 214. 65 Wang G P, Yang S W, Dai J X, et al. Sensors, 2019, 19, 4775. 66 Fisser M, Badcock R A, Teal P D, et al. Journal of Lightwave Technology, 2017, 36, 850. 67 Sutapun B, Tabib-Azar M, Kazemi A. Sensors and Actuators B:Chemical, 1999, 60, 27. 68 Butler M A. Applied Physics Letters, 1984, 45, 1007. 69 Wu B Q, Zhao C L, Xu B, et al. Sensors and Actuators B:Chemical, 2018, 255, 3011. 70 Wang M. Research on key technologies of miniature interferometric optical fiber sensors for hydrogen detection. Ph. D. Thesis, Wuhan University of Technology, China, 2013 (in Chinese). 王闵. 微型光纤干涉型氢气传感器关键技术研究. 博士学位论文, 武汉理工大学, 2013. 71 Zhuang X Y, Wu Y H, Wang S R, et al. Acta Physica Sinica, 2009, 58(4), 2501 (in Chinese). 庄须叶, 吴一辉, 王淑荣, 等. 物理学报, 2009, 58(4), 2501. 72 Zhu X F. Research on preparation and properties of optical-fiber hydrogen sensor structure. Master’s Thesis, Harbin Institute of Technology, China, 2012 (in Chinese). 祝秀芬. 光纤型氢气传感结构的制备与性能研究. 硕士学位论文, 哈尔滨工业大学, 2012. 73 Bevenot X, Trouillet A, Veillas C, et al. Measurement Science and Technology, 2001, 13, 118. 74 Perrotton C, Javahiraly N, Slaman M, et al. Optics Express, 2011, 19, A1175. 75 Deng Y L, Li M, Cao W, et al. Optical Fiber Technology, 2021, 65, 102616. 76 Hosoki A, Nishiyama M, Igawa H, et al. Sensors and Actuators B:Chemical, 2013, 185, 53. 77 Adler-Golden S M, Goldstein N, Bien F, et al. Applied Optics, 1992, 31, 831. 78 Qi Y, Zhao Y, Bao H H, et al. Optica, 2019, 6, 570. 79 Deng J R, Jiang R J, Zhong H, et al. Laser & Optoelectronics Progress, 2023, 60(22), 51 (in Chinese). 邓金睿, 姜瑞景, 钟海, 等. 激光与光电子学进展, 2023, 60(22), 51. 80 Von Keudell A, Jacob W. Journal of Vacuum Science & Technology A:Vacuum, Surfaces, and Films, 1997, 15, 402. 81 Vogler D E, Müller M G, Sigrist M W. Applied Optics, 2003, 42, 5413. 82 Jakubik W P, Urbańczyk M W, Kochowski S, et al. Sensors and Actuators B:Chemical, 2002, 82, 265. 83 Suganya A, Sujatha L, Girija K. In:Conference Record of the Oxide-based Materials and Devices ⅩⅣ. Bellevue, WA, USA, 2023, pp. 226. 84 D’amico A, Palma A, Verona E. Sensors and Actuators, 1982, 3, 31. 85 Wang W, Liu X L, Mei S C, et al. Sensors and Actuators B:Chemical, 2019, 287, 157. 86 Wang X Y, Du L L, Cheng L N, et al. Sensors and Actuators B:Chemical, 2022, 351, 130952. 87 Li D S, Le X H, Pang J T, et al. Journal of Micromechanics and Microengineering, 2019, 29, 045007. 88 Cui B L, Jin J, Cheng L A, et al. International Journal of Hydrogen Energy, 2023, 48, 17339. 89 Pathak A K, Verma S, Sakda N, et al. Photonics, 2023, 10, 122. 90 Wohltjen H. Analytical Chemistry, 1984, 56, 87A. 91 Zeng Q X, Wang Q, Wang H W. Measurement & Control Technology, 2008(4), 10 (in Chinese). 曾庆喜, 王庆, 王浩为. 测控技术, 2008(4), 10. 92 Ling Y F, Yang N, Wen J Y, et al. Energy Conservation Technology, 2020, 38(3), 266 (in Chinese). 凌云峰, 杨楠, 文吉延, 等. 节能技术, 2020, 38(3), 266. 93 Wang H T, Liu Z M, Li X R, et al. Sensor World, 2021, 27(7), 1 (in Chinese). 王洪涛, 刘智敏, 李秀茹, 等. 传感器世界, 2021, 27(7), 1. 94 Liu Q. Palladium based thin film hydrogen sensor on micro hotplate. Ph. D. Thesis, Shanghai Jiaotong University, China, 2020 (in Chinese). 刘琦. 微热平台式钯基薄膜氢气传感器研究. 博士学位论文, 上海交通大学, 2020. 95 Díaz-Michelena M. Sensors, 2009, 9, 2271. 96 Daniel T T, Saikia K, Raveesh S, et al. IEEE Transactions on Nanotechnology, 2021, 20, 669. 97 Penza M, Cassano G. Food Chemistry, 2004, 86, 283. 98 Capelli L, Sironi S, Del Rosso R. Sensors, 2014, 14, 19979. 99 Konvalina G, Haick H. Accounts of Chemical Research, 2014, 47, 66. 100 Hakim M, Broza Y Y, Barash O, et al. Chemical Reviews, 2012, 112, 5949. 101 Chen J Q, Chen Z, Boussaid F, et al. ACS Nano, 2018, 12, 6079. 102 Gong J W, Chen Q F, Fei W F, et al. Sensors and Actuators B:Chemical, 2004, 102, 117. 103 Kondalkar V V, Park J, Lee K. Sensors and Actuators B:Chemical, 2021, 326, 128989. 104 Zhang G, Cui L J, Chen Y P. In:Conference Record of the 4th International Conference on Natural Computation. Jinan, China 2008, pp. 376. 105 Harkinezhad B, Soleimani A, Hossein-Babaei F, et al. In:Conference Record of the 27th Iranian Conference on Electrical Engineering. Yazd, Iran, 2019, pp. 408. 106 Zhong G X, Xi X Y. Welded Pipe and Tube, 2023, 46(3), 59 (in Chinese). 钟桂香, 郗祥远. 焊管, 2023, 46(3), 59. 107 Yan Y T. Comparative analysis of the economics of hydrogen storage and transportation. Master’s Thesis, Huazhong University of Science and Technology, China, 2021 (in Chinese). 闫喻婷. 氢气储运方式的经济性对比研究. 硕士学位论文, 华中科技大学, 2021. 108 Ai L S J. Guangdong Chemical Industry, 2016, 43(15), 222 (in Chinese). 艾丽斯佳. 广东化工, 2016, 43(15), 222. 109 Wang H Y, Yuan Y P, Tong L, et al. Journal of Wuhan University of Technology, 2022, 44(3), 25 (in Chinese). 王洪宇, 袁裕鹏, 童亮, 等. 武汉理工大学学报, 2022, 44(3), 25. 110 Zhu X Z. Guangdong Electric Power, 2008(9), 33 (in Chinese). 朱信钊. 广东电力, 2008(9), 33. 111 Zhang W, Yang J, Zhang W M, et al. Automotive Engineering, 2019, 41(6), 641 (in Chinese). 张卫, 杨珏, 张文明, 等. 汽车工程, 2019, 41(6), 641. 112 Liu L, Cao X, Zhang X H, et al. Acta Aeronautica et Astronautica Sinica, 2020, 41(3), 623474 (in Chinese). 刘莉, 曹潇, 张晓辉, 等. 航空学报, 2020, 41(3), 623474. 113 Zhang Y, Xu C. Ship Science and Technology, 2022, 44(4), 97 (in Chinese). 张勇, 徐昌. 舰船科学技术, 2022, 44(4), 97. 114 Chen Y J. Mechatronics, 2019, 25(Z1), 3 (in Chinese). 陈湮佳. 机电一体化, 2019, 25(Z1), 3. 115 Lee J S, Oh J, Jun J, et al. ACS Nano, 2015, 9, 7783. |
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