Experimental Study of Multifunctional NCM-Si Batteries With Self-Actuation

Jun Ma, Cody Gonzalez, C. Rahn, M. Frecker, Donghai Wang
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引用次数: 1

Abstract

Among anode materials for lithium ion batteries, silicon (Si) in known for high theoretical capacity and low cost. Si exhibits over 300% volume change during cycling, potentially providing large displacement. In this paper, we present the design, fabrication and testing of a multifunctional NCM-Si battery that not only stores energy, but also utilizes the volume change of Si for actuation. The battery is transparent, thus allowing the visualization of the actuation process during cycling. This paper shows Si anode design that stores energy and actuates through volume change associated with lithium insertion. Experimental results from a transparent battery show that a Cu current collector single-side coated with Si nanoparticles can store 10.634 mWh (charge)/2.074mWh (discharge) energy and bend laterally with over 40% beam length displacement. The unloaded anode is found to remain circular shape during cycling. Using a unimorph cantilever model, the Si coating layer actuation strain is estimated to be 30% at 100% SOC.
自驱动多功能NCM-Si电池的实验研究
在锂离子电池负极材料中,硅具有理论容量大、成本低的优点。硅在循环过程中表现出超过300%的体积变化,可能提供大的位移。本文介绍了一种多功能NCM-Si电池的设计、制造和测试,该电池不仅可以存储能量,还可以利用Si的体积变化来驱动。电池是透明的,因此允许在循环过程中的驱动过程可视化。本文展示了硅阳极的设计,存储能量,并通过与锂插入相关的体积变化来驱动。透明电池的实验结果表明,单侧涂覆硅纳米粒子的Cu集流器可存储10.634 mWh(充电)/2.074mWh(放电)能量,并可横向弯曲,束长位移超过40%。在循环过程中,发现未加载的阳极保持圆形。使用均匀悬臂模型,在100% SOC下,Si涂层的驱动应变估计为30%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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