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大面积印刷氧化物薄膜传感器可实现室温下对氢气的超高灵敏度和双电/比色检测。

Large-Area Printed Oxide Film Sensors Enabling Ultrasensitive and Dual Electrical/Colorimetric Detection of Hydrogen at Room Temperature.

机构信息

Research Center for Advanced Specialty Chemicals, Korea Research Institute of Chemical Technology (KRICT), Ulsan 44412, Republic of Korea.

KRICT School, Advanced Materials and Chemical Engineering, University of Science and Technology (UST), Daejeon 34113, Republic of Korea.

出版信息

ACS Sens. 2023 Aug 25;8(8):3004-3013. doi: 10.1021/acssensors.3c00469. Epub 2023 Jul 24.

Abstract

Commercial hydrogen (H) sensors operate at high temperatures, which increases power consumption and poses a safety risk owing to the flammable nature of H. Here, a polymer-noble metal-metal oxide film is fabricated using the spin-coating and printing methods to realize a highly sensitive, low-voltage operation, wide-operating-concentration, and near-monoselective H sensor at room temperature. The H sensors with an optimized thickness of Pd nanoparticles and SnO showed an extremely high response of 16,623 with a response time of 6 s and a recovery time of 5 s at room temperature and 2% H. At the same time, printed flexible sensors demonstrate excellent sensitivity, with a response of 2300 at 2% H. The excellent sensing performance at room temperature is due to the optimal SnO thickness, corresponding to the Debye length and the oxygen and H spillover caused by the optimized coverage of the Pd catalyst. Furthermore, multistructures of WO and SnO films are used to fabricate a new type of dual-signal sensor, which demonstrated simultaneous conductance and transmittance, i.e., color change. This work provides an effective strategy to develop robust, flexible, transparent, and long-lasting H sensors through large-area printing processes based on polymer-metal-metal oxide nanostructures.

摘要

商用氢气 (H) 传感器在高温下运行,这会增加功耗,并由于 H 的易燃性质而带来安全风险。在这里,使用旋涂和印刷方法制造了一种聚合物-贵金属-金属氧化物薄膜,以实现对室温下高灵敏度、低电压操作、宽工作浓度和近单选择性 H 传感器的优化。Pd 纳米粒子和 SnO 优化厚度的 H 传感器在室温下和 2%H 时表现出极高的响应值 16623,响应时间为 6s,恢复时间为 5s。同时,印刷的柔性传感器表现出优异的灵敏度,在 2%H 时的响应值为 2300。在室温下优异的传感性能归因于最佳 SnO 厚度,对应德拜长度以及优化 Pd 催化剂覆盖度引起的氧和 H 溢出。此外,WO 和 SnO 薄膜的多结构被用于制造新型双信号传感器,其同时表现出电导和透光率,即颜色变化。这项工作通过基于聚合物-金属-金属氧化物纳米结构的大面积印刷工艺,为开发坚固、灵活、透明和持久的 H 传感器提供了一种有效的策略。

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