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通过吸湿-蒸发循环实现受植物启发的可持续高性能织物发生器

Phyto-inspired sustainable and high-performance fabric generators via moisture absorption-evaporation cycles.

作者信息

Hu Yunhao, Yang Weifeng, Wei Wei, Sun Zhouquan, Wu Bo, Li Kerui, Li Yaogang, Zhang Qinghong, Xiao Ru, Hou Chengyi, Wang Hongzhi

机构信息

State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, PR China.

College of Materials Science and Engineering, Donghua University, Shanghai 201620, PR China.

出版信息

Sci Adv. 2024 Jan 12;10(2):eadk4620. doi: 10.1126/sciadv.adk4620. Epub 2024 Jan 10.

Abstract

Collecting energy from the ubiquitous water cycle has emerged as a promising technology for power generation. Here, we have developed a sustainable moisture absorption-evaporation cycling fabric (Mac-fabric). On the basis of the cycling unidirectional moisture conduction in the fabric and charge separation induced by the negative charge channel, sustainable constant voltage power generation can be achieved. A single Mac-fabric can achieve a high power output of 0.144 W/m (5.76 × 10 W/m) at 40% relative humidity (RH) and 20°C. By assembling 500 series and 300 parallel units of Mac-fabrics, a large-scale demo achieves 350 V of series voltage and 33.76 mA of parallel current at 25% RH and 20°C. Thousands of Mac-fabric units are sewn into a tent to directly power commercial electronic products such as mobile phones in outdoor environments. The lightweight (300 g/m) and soft characteristics of the Mac-fabric make it ideal for large-area integration and energy collection in real circumstances.

摘要

从无处不在的水循环中收集能量已成为一种很有前景的发电技术。在此,我们开发了一种可持续的吸湿-蒸发循环织物(Mac织物)。基于织物中循环的单向水分传导以及由负电荷通道引起的电荷分离,可实现可持续的恒压发电。单个Mac织物在40%相对湿度(RH)和20°C条件下可实现0.144 W/m(5.76×10 W/m)的高功率输出。通过组装500个串联和300个并联的Mac织物单元,一个大规模演示在25% RH和20°C条件下实现了350 V的串联电压和33.76 mA的并联电流。数千个Mac织物单元被缝制成一个帐篷,以便在户外环境中直接为手机等商业电子产品供电。Mac织物的轻质(300 g/m)和柔软特性使其非常适合在实际情况下进行大面积集成和能量收集。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9268/10780955/156d2047a139/sciadv.adk4620-f1.jpg

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