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用于柔性锌离子电池和多功能健康监测电子设备的水凝胶电解质。

A Hydrogel Electrolyte toward a Flexible Zinc-Ion Battery and Multifunctional Health Monitoring Electronics.

作者信息

Wang Zhiqiao, Xue Rongrong, Zhang Huiqing, Zhang Yichi, Tang Xiaoyu, Wang Helin, Shao Ahu, Ma Yue

机构信息

State Key Laboratory of Solidification Processing, Center for Nano Energy Materials, School of Materials Science and Engineering, Shaanxi Joint Laboratory of Graphene, Northwestern Polytechnical University, Xi'an 710072, People's Republic of China.

Training Center for Engineering Practices, Northwestern Polytechnical University, Xi'an 710072, People's Republic of China.

出版信息

ACS Nano. 2024 Mar 12;18(10):7596-7609. doi: 10.1021/acsnano.4c00085. Epub 2024 Feb 28.

Abstract

The compact design of an environmentally adaptive battery and effectors forms the foundation for wearable electronics capable of time-resolved, long-term signal monitoring. Herein, we present a one-body strategy that utilizes a hydrogel as the ionic conductive medium for both flexible aqueous zinc-ion batteries and wearable strain sensors. The poly(vinyl alcohol) hydrogel network incorporates nano-SiO and cellulose nanofibers (referred to as PSC) in an ethylene glycol/water mixed solvent, balancing the mechanical properties (tensile strength of 6 MPa) and ionic diffusivity at -20 °C (2 orders of magnitude higher than 2 M ZnCl electrolyte). Meanwhile, cathode lattice breathing during the solvated Zn intercalation and dendritic Zn protrusion at the anode interface are mitigated. Besides the robust cyclability of the Zn∥PSC∥VO prototype within a wide temperature range (from -20 to 80 °C), this microdevice seamlessly integrates a zinc-ion battery with a strain sensor, enabling precise monitoring of the muscle response during dynamic body movement. By employing transmission-mode XRD, the self-powered sensor accurately documents the real-time phasic evolution of the layered cathode and synchronized strain change induced by Zn deposition, which presents a feasible solution of health monitoring by the miniaturized electronics.

摘要

环境自适应电池和效应器的紧凑设计为能够进行时间分辨、长期信号监测的可穿戴电子设备奠定了基础。在此,我们提出了一种一体式策略,该策略利用水凝胶作为柔性水系锌离子电池和可穿戴应变传感器的离子导电介质。聚乙烯醇水凝胶网络在乙二醇/水混合溶剂中加入了纳米二氧化硅和纤维素纳米纤维(称为PSC),平衡了机械性能(拉伸强度为6兆帕)和-20°C时的离子扩散率(比2M ZnCl电解质高2个数量级)。同时,减轻了溶剂化锌嵌入过程中的阴极晶格呼吸和阳极界面处的树枝状锌突出。除了Zn∥PSC∥VO原型在宽温度范围(从-20到80°C)内具有强大的循环稳定性外,这种微型设备还将锌离子电池与应变传感器无缝集成,能够精确监测动态身体运动过程中的肌肉反应。通过采用透射模式X射线衍射,自供电传感器准确记录了层状阴极的实时相位演变以及锌沉积引起的同步应变变化,这为通过小型化电子设备进行健康监测提供了一种可行的解决方案。

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