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用于下一代自供电远程物联网火灾预警的超快响应和阈值可调智能热电系统。

Ultrafast Response and Threshold Adjustable Intelligent Thermoelectric Systems for Next-Generation Self-Powered Remote IoT Fire Warning.

作者信息

Ding Zhaofu, Li Gang, Wang Yejun, Du Chunyu, Ye Zhenqiang, Liang Lirong, Tang Long-Cheng, Chen Guangming

机构信息

College of Materials Science and Engineering & College of Civil and Transportation Engineering, Shenzhen University, Shenzhen, 518055, People's Republic of China.

College of Material, Chemistry and Chemical Engineering, Key Laboratory of Organosilicon Chemistry and Material Technology of MoE, Hangzhou Normal University, Hangzhou, 311121, People's Republic of China.

出版信息

Nanomicro Lett. 2024 Jul 10;16(1):242. doi: 10.1007/s40820-024-01453-x.

Abstract

Fire warning is vital to human life, economy and ecology. However, the development of effective warning systems faces great challenges of fast response, adjustable threshold and remote detecting. Here, we propose an intelligent self-powered remote IoT fire warning system, by employing single-walled carbon nanotube/titanium carbide thermoelectric composite films. The flexible films, prepared by a convenient solution mixing, display p-type characteristic with excellent high-temperature stability, flame retardancy and TE (power factor of 239.7 ± 15.8 μW m K) performances. The comprehensive morphology and structural analyses shed light on the underlying mechanisms. And the assembled TE devices (TEDs) exhibit fast fire warning with adjustable warning threshold voltages (1-10 mV). Excitingly, an ultrafast fire warning response time of ~ 0.1 s at 1 mV threshold voltage is achieved, rivaling many state-of-the-art systems. Furthermore, TE fire warning systems reveal outstanding stability after 50 repeated cycles and desired durability even undergoing 180 days of air exposure. Finally, a TED-based wireless intelligent fire warning system has been developed by coupling an amplifier, analog-to-digital converter and Bluetooth module. By combining TE characteristics, high-temperature stability and flame retardancy with wireless IoT signal transmission, TE-based hybrid system developed here is promising for next-generation self-powered remote IoT fire warning applications.

摘要

火灾预警对人类生命、经济和生态至关重要。然而,开发有效的预警系统面临着快速响应、阈值可调以及远程探测等巨大挑战。在此,我们提出一种智能自供电远程物联网火灾预警系统,该系统采用单壁碳纳米管/碳化钛热电复合薄膜。通过简便的溶液混合制备的柔性薄膜具有p型特性,具备出色的高温稳定性、阻燃性和热电性能(功率因子为239.7±15.8 μW m K)。全面的形态和结构分析揭示了其潜在机制。组装好的热电装置(TEDs)能够实现具有可调预警阈值电压(1 - 10 mV)的快速火灾预警。令人兴奋的是,在1 mV阈值电压下实现了约0.1 s的超快火灾预警响应时间,可与许多先进系统相媲美。此外,热电火灾预警系统在50次重复循环后显示出出色的稳定性,即使在空气暴露180天后仍具有良好的耐久性。最后,通过耦合放大器、模数转换器和蓝牙模块,开发了一种基于TED的无线智能火灾预警系统。通过将热电特性、高温稳定性和阻燃性与无线物联网信号传输相结合,本文开发的基于热电的混合系统在下一代自供电远程物联网火灾预警应用中具有广阔前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/671b/11236834/c4472e4f47a8/40820_2024_1453_Fig1_HTML.jpg

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