Highly Stretchable, Knittable, Wearable Fiberform Hydrovoltaic Generators Driven by Water Transpiration for Portable Self‐Power Supply and Self‐Powered Strain Sensor

Author:

Luo Guoxi123,Xie Jiaqi12ORCID,Liu Jielun12,Luo Yunyun123,Li Min123,Li Zhikang123,Yang Ping123,Zhao Libo123,Wang Kaifei4,Maeda Ryutaro123,Jiang Zhuangde123

Affiliation:

1. State Key Laboratory for Manufacturing Systems Engineering, International Joint Laboratory for Micro/Nano Manufacturing and Measurement Technologies, Xi'an Jiaotong University (Yantai) Research Institute for Intelligent Sensing Technology and System Xi'an Jiaotong University Xi'an 710049 China

2. School of Mechanical Engineering Xi'an Jiaotong University Xi'an 710049 China

3. Shandong Laboratory of Yantai Advanced Materials and Green Manufacturing Yantai 265503 China

4. Department of Emergency The First Affiliated Hospital of Xi'an Jiaotong University Xi'an 710061 China

Abstract

AbstractThe development of excellently stretchable, highly mobile, and sustainable power supplies is of great importance for self‐power wearable electronics. Transpiration‐driven hydrovoltaic power generator (HPG) has been demonstrated to be a promising energy harvesting strategy with the advantages of negative heat and zero‐carbon emissions. Herein, this work demonstrates a fiber‐based stretchable HPG with the advantages of high output, portability, knittability, and sustainable power generation. Based on the functionalized micro‐nano water diffusion channels constructed by the discarded mask straps (MSs) and oxidation‐treated carbon nanomaterials, the applied water can continuously produce electricity during the spontaneous flow and diffusion. Experimentally, when a tiny 0.1 mL of water encounters one end of the proposed HPG, the centimeter‐length device can yield a peak voltage of 0.43 V, peak current of 29.5 µA, and energy density of 5.833 mW h cm−3. By efficiently integrating multiple power generation units, sufficient output power can be provided to drive commercial electronic devices even in the stretched state. Furthermore, due to the reversibility of the electrical output during dynamic stretching‐releasing, it can passively convert physiological activities and motion behaviors into quantifiable and processable current signals, opening up HPG's application in the field of self‐powered wearable sensing.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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