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通过绝缘、增强、具备屈曲功能的互连阵列实现的高度稳定电池组。

Highly Stable Battery Pack via Insulated, Reinforced, Buckling-Enabled Interconnect Array.

作者信息

Yin Lu, Seo Joon Kyo, Kurniawan Jonas, Kumar Rajan, Lv Jian, Xie Lingye, Liu Xinyu, Xu Sheng, Meng Ying S, Wang Joseph

机构信息

Department of Nanoengineering, University of California San Diego, 9500 Gilman Dr, La Jolla, CA, 92093, USA.

出版信息

Small. 2018 Oct;14(43):e1800938. doi: 10.1002/smll.201800938. Epub 2018 Jul 3.

Abstract

This work describes a flexible and stretchable battery pack configuration that exhibits highly stable performance under large deformation up to 100% biaxial stretching. Using stress-enduring printable inks and serpentine interconnects, the new screen-printing route offers an attractive solution for converting rigid battery units into a flexible, stretchable energy storage device. Coin-cell lithium ion batteries are thus assembled onto the island regions of a screen-printed, buckling-enabled, polymer-reinforced interconnect "island-bridge" array. Most of the strain on the new energy-storage device is thus accommodated by the stress-enduring serpentine structures, and the array is further reinforced by mechanically strong "backbone" layers. Battery pack arrays are assembled and tested under different deformation levels, demonstrating a highly stable performance (<2.5% change) under all test conditions. A light emitting diode band powered by the battery pack is tested on-body, showing uninterrupted illumination regardless of any degrees of deformation. Moreover, battery-powered devices that are ultrastable under large deformation can be easily fabricated by incorporating different electronics parts such as sensors or integrated circuits on the same platform. Such ability to apply traditionally rigid, bulky lithium ion batteries onto flexible and stretchable printed surfaces holds considerable promise for diverse wearable applications.

摘要

这项工作描述了一种灵活且可拉伸的电池组配置,该配置在高达100%双轴拉伸的大变形下表现出高度稳定的性能。利用耐应力的可印刷油墨和蜿蜒的互连结构,这种新的丝网印刷路线为将刚性电池单元转变为灵活、可拉伸的储能装置提供了一个有吸引力的解决方案。因此,硬币型锂离子电池被组装到丝网印刷的、具有屈曲功能的、聚合物增强互连“岛-桥”阵列的岛状区域上。因此,这种新型储能装置上的大部分应变由耐应力的蜿蜒结构承受,并且该阵列通过机械强度高的“主干”层进一步得到加强。电池组阵列在不同变形水平下进行组装和测试,结果表明在所有测试条件下其性能高度稳定(变化<2.5%)。由该电池组供电的发光二极管带在人体上进行测试,结果显示无论变形程度如何,均可实现不间断照明。此外,通过在同一平台上集成不同的电子部件(如传感器或集成电路),可以轻松制造出在大变形下超稳定的电池供电设备。将传统的刚性、笨重的锂离子电池应用于灵活可拉伸的印刷表面的这种能力,对于各种可穿戴应用具有巨大的前景。

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