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一维导电金属有机框架实现热失控气体的实时化学电阻检测。

One-Dimensional Conductive Metal-Organic Frameworks Enable Real-Time Chemiresistive Detection of Thermal Runaway Gases.

作者信息

Liu Xue, Wu Jian, Fan Chao, Zhang Yongwei, Quan Wenjing, Li Jingzhu, Hu Nantao, Yang Jianhua, Zeng Min, Yang Zhi

机构信息

National Key Laboratory of Advanced Micro and Nano Manufacture Technology, Shanghai Jiao Tong University, Shanghai 200240, China.

Department of Micro/Nano Electronics, School of Integrated Circuit (Information Science and Electronic Engineering), Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

ACS Sens. 2025 Sep 26;10(9):6464-6475. doi: 10.1021/acssensors.5c00349. Epub 2025 Aug 28.

Abstract

The rapid growth of the electric vehicle industry has raised concerns about battery thermal runaway, which poses serious safety risks. Real-time detection of characteristic gases is crucial for early warning, but there is a lack of highly sensitive and selective gas-sensing materials, especially for carbon monoxide (CO) detection at room temperature in oxygen-free environments. Here, a novel one-dimensional (1D) conductive metal-organic framework (MOF) is synthesized as a highly sensitive and selective room-temperature CO gas-sensing material for battery thermal runaway detection. 1D CuDADHA (DADHA = 1,5-diamino-4,8-dihydroxyanthraquinone) MOF was synthesized in both powder and thin-film forms via a scalable solvothermal method and liquid-liquid interface assembly. The chemiresistive CO sensors based on CuDADHA exhibit the highest reported response (93.2%) to 100 ppm of CO under room-temperature, anhydrous, and oxygen-free conditions, with an ultralow detection limit of 235 ppb, high sensitivity, selectivity, and long-term stability. Mechanistic studies indicate that CO coordinates with Cu sites, inducing charge transfer and producing a detectable electrical response. An integrated wireless sensor module based on CuDADHA enables real-time CO monitoring in simulated battery cells, with Bluetooth-based data transmission to mobile devices, offering a promising approach for early warning detection of battery thermal runaway in applications.

摘要

电动汽车行业的快速发展引发了人们对电池热失控的担忧,这会带来严重的安全风险。实时检测特征气体对于早期预警至关重要,但缺乏高灵敏度和高选择性的气敏材料,尤其是在无氧环境中室温下对一氧化碳(CO)的检测。在此,合成了一种新型一维(1D)导电金属有机框架(MOF)作为用于电池热失控检测的高灵敏度和高选择性室温CO气敏材料。通过可扩展的溶剂热法和液-液界面组装法合成了粉末和薄膜形式的1D CuDADHA(DADHA = 1,5-二氨基-4,8-二羟基蒽醌)MOF。基于CuDADHA的化学电阻式CO传感器在室温、无水和无氧条件下对100 ppm的CO表现出报道的最高响应(93.2%),超低检测限为235 ppb,具有高灵敏度、选择性和长期稳定性。机理研究表明,CO与Cu位点配位,诱导电荷转移并产生可检测的电响应。基于CuDADHA的集成无线传感器模块能够在模拟电池单元中实时监测CO,并通过蓝牙将数据传输到移动设备,为应用中的电池热失控早期预警检测提供了一种有前景的方法。

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