Flexible Electrical Energy Storage Structure with Variable Stiffness for Soft Robotics and Wearable Electronics.

Piotr Bartkowski, Łukasz Pawliszak, Agata Lusawa, Sabina Sypniewska, Marta Ciemiorek, Yong-Lae Park
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Abstract

Based on the analysis of the structures of robots and electronics developed so far, it should be noted that a majority of them need a reservoir for electrical energy storage. Unfortunately, most off-the-shelf devices commercially available nowadays are based on rigid parts that heavily limit the possibilities of incorporating such products into soft robots and wearable electronics. To address these issues, a new type of flexible structure for electrical energy storage, which consists of small battery cells connected by liquid metal paths, was proposed. It can achieve a low value of Young's modulus (about 0.13 MPa) while maintaining electrochemical stability for large stretches (max. capacity reduction-2%). We proposed an individual layer structure as well as a sandwich structure with a granular core, which by way of granular jamming phenomena can change the stiffness (almost 300%). This article describes the concept and working principle of the proposed flexible electrical energy storage structure, followed by the mechanical and electrical characterization, electrochemical impedance spectroscopy, and galvanostatic battery cell cycling. Scanning electron microscopy and energy-dispersive X-ray spectroscopy were used to characterize the electrodes. The article also includes numerical simulations and potential applications of the studied structure.

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柔性机器人和可穿戴电子器件的可变刚度柔性储能结构。
根据目前开发的机器人和电子产品的结构分析,应该注意的是,大多数机器人和电子产品都需要一个蓄水池来储存电能。不幸的是,目前市面上大多数现成的设备都是基于刚性部件,这严重限制了将此类产品整合到软机器人和可穿戴电子产品中的可能性。为了解决这些问题,提出了一种新型的柔性储能结构,它由由液态金属路径连接的小型电池组成。它可以实现低杨氏模量值(约0.13 MPa),同时保持大拉伸(最大)的电化学稳定性。容量减少- 2%)。我们提出了一种单独的层状结构和一种带有颗粒芯的夹层结构,它们通过颗粒干扰现象可以改变刚度(几乎300%)。本文介绍了所提出的柔性电能存储结构的概念和工作原理,随后进行了力学和电学表征、电化学阻抗谱和恒流电池的电池循环。利用扫描电镜和能量色散x射线能谱对电极进行了表征。本文还介绍了所研究结构的数值模拟和潜在应用。
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