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基于近平行离子通道诱导高效水电转换的超小型化光纤湿度传感器。

An Ultra-Miniaturized Fiber Humidity Sensor Based on Near-Parallel Ion Pathways Induced Efficient Water-Electricity Conversion.

作者信息

Zhang Qixiang, Ren Ziqi, Jia Peixue, Shi Junjie, Yin Jianyu, Lei Dandan, Gao Yihua, Liu Nishuang

机构信息

School of Physics and Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan, Hubei, 430074, China.

School of Chemistry and Materials Science, University of Science and Technology of China, Hefei, Anhui, 230026, China.

出版信息

Adv Mater. 2025 Jan;37(3):e2411558. doi: 10.1002/adma.202411558. Epub 2024 Nov 19.

Abstract

Humidity sensors are vital for ambient monitoring, but existing sensors focus on moisture absorption, overlooking the indispensable role of ion channels in the water-electricity conversion process. Here, an ultra-miniaturized fiber humidity (MFH) sensor based on near-parallel ion pathways is presented. The well-designed nanochannels significantly facilitate ion transport due to the stable charge distribution and the confined ions migration within near-parallel nanostructure, which improves the water-electricity conversion efficiency of moisture-sensitive fibers. Optimized nanochannels enable the MFH sensor to improve the response/recovery speed by ≈5 times compared to the disordered nanochannels. Additionally, the MFH sensor can be woven for ultra-miniaturization (0.50 mm), which is much smaller than current sensors. Therefore, the integrated MFH sensor array demonstrated exceptionally high spatial resolution (sensor density of 1 mm), highlighting its potential in flexible wearables. This work provides new optimization strategies and assembly means for designing the high-performance humidity sensors of the next generation.

摘要

湿度传感器对于环境监测至关重要,但现有的传感器专注于吸湿,却忽视了离子通道在水电转换过程中不可或缺的作用。在此,我们展示了一种基于近平行离子通道的超小型化光纤湿度(MFH)传感器。精心设计的纳米通道由于稳定的电荷分布以及近平行纳米结构内受限的离子迁移,显著促进了离子传输,从而提高了湿度敏感光纤的水电转换效率。与无序纳米通道相比,优化后的纳米通道使MFH传感器的响应/恢复速度提高了约5倍。此外,MFH传感器可编织实现超小型化(0.50毫米),这比当前的传感器小得多。因此,集成的MFH传感器阵列展现出极高的空间分辨率(传感器密度为1毫米),凸显了其在柔性可穿戴设备中的潜力。这项工作为设计下一代高性能湿度传感器提供了新的优化策略和组装方法。

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