Redox-Paired Oxide/Nitride Electrodes for Humidity-Tolerant Fuel-Cell NO 2 Sensing
Xichao Mo, Jiaxin Li, Fengge Liu, Chenshuai Han, H. Vicky Zhao, Congling Yin, Xiyang Wang, Minghui Yang
Dalian University of Technology Google (United States) Physical Devices (United States) Guilin University of Technology
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Fuel-cell-type electrochemical gas sensors are attractive for low-power monitoring but often suffer from humidity-sensitive baselines and limited long-term stability in nitrogen dioxide (NO 2 ) detection. Here, we address this challenge by implementing redox pairing between chemically orthogonal electrodes in an asymmetric TiN/SnO 2 heteroelectrode, in which metallic TiN serves as a NO 2 -reduction cathode and oxygen-vacancy-rich SnO 2 functions as an oxygen evolution anode, separated by a Nafion membrane. The resulting room-temperature NO 2 sensor exhibits a sensitivity of 1.572 μA ppm −1, a theoretical detection limit of 18 ppb, and 8/9 s response/recovery times, while maintaining strong selectivity, minimal humidity-induced drift, and >98% signal retention over 180 days. These figures of merit surpass those of symmetric TiN−TiN and SnO 2 −SnO 2 sensors and previously reported fuel-cell-type NO 2 sensors. Mechanistic analysis combining in situ infrared spectroscopy and density functional theory shows that SnO 2 drives water oxidation whereas TiN stabilizes NO 2 -derived intermediates and mediates electron transfer. Machine-learning-guided screening further identifies TiN/SnO 2 as an optimal candidate within a broader oxide/nitride design space, highlighting redox-paired electrodes as a promising strategy for humidity-tolerant fuel-cell-type gas sensing.
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Electrocatalysts for Energy Conversion · Advanced Photocatalysis Techniques
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