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利用锌空气电池构建完全集成和自给自足的 NO 气体传感器。

Construction of Fully Integrated and Energy Self-Sufficient NO Gas Sensors Utilizing Zinc-Air Batteries.

机构信息

Laboratory of Functional Micro-Nano Materials and Devices, School of Physics and Technology, University of Jinan, 336 Nanxin Zhuang West Road, Jinan 250022, Shandong, P. R. China.

School of Physics Science and Information Technology, Liaocheng University, Liaocheng 252000, P. R. China.

出版信息

ACS Sens. 2024 Aug 23;9(8):4037-4046. doi: 10.1021/acssensors.4c00896. Epub 2024 Jul 22.

Abstract

Exploration of novel self-powered gas sensors free of external energy supply restrictions, such as light illumination and mechanical vibration, for flexible and wearable applications is in urgent need. Herein, this work constructs a flexible and self-powered NO gas sensor based on zinc-air batteries (ZABs) with the cathode of the ZABs also acting as the gas-sensitive layer. Furthermore, the SiO coating film, serving as a hydrophobic layer, increases the three-phase interfaces for the NO reduction reaction. The constructed sensors exhibit a high sensing response (0.3 V @ 5 ppm), an ultralow detection limit (61 ppb), a fast sensing process (129 and 103 s), and excellent selectivity. Moreover, the sensors also possess a wide working temperature range and a low working temperature tolerance (0.34 V at -15 °C). Simulations indicate that the hydrophobic surface at the cathode-hydrogel interface will accommodate more NO gas molecules at the reaction sites and prevent the influence of inner water evaporation and direct dissolution of NO in the electrolyte, which is beneficial to the enhanced gas sensing abilities. Finally, the self-powered sensing device is incorporated into a smart sensing system for practical applications. This work will pave a new insight into the construction of integrated and energy self-sufficient smart gas sensing systems.

摘要

探索新型自供电气体传感器,摆脱外部能源供应限制,如光照和机械振动,以实现灵活可穿戴应用,这是当务之急。在此,本工作构建了一种基于锌空气电池(ZAB)的柔性自供电 NO 气体传感器,ZAB 的阴极也用作气敏层。此外,SiO 涂层膜作为疏水性层,增加了三相界面以促进 NO 还原反应。所构建的传感器表现出高的传感响应(0.3 V@5 ppm)、超低的检测限(61 ppb)、快速的传感过程(129 和 103 s)和优异的选择性。此外,传感器还具有较宽的工作温度范围和较低的工作温度容忍度(-15°C 时为 0.34 V)。模拟表明,在阴极-水凝胶界面的疏水性表面将在反应位点容纳更多的 NO 气体分子,并防止内部水蒸发和 NO 在电解质中直接溶解的影响,这有利于增强气体传感能力。最后,自供电传感装置被集成到实用的智能传感系统中。这项工作将为集成和能源自给自足的智能气体传感系统的构建提供新的思路。

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