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用于自由形状配置的本征可拉伸且可打印的锂离子电池。

Intrinsically Stretchable and Printable Lithium-Ion Battery for Free-Form Configuration.

作者信息

Hong Soo Yeong, Jee Sung Min, Ko Youngpyo, Cho Jinhan, Lee Keun Hyung, Yeom Bongjun, Kim Heesuk, Son Jeong Gon

机构信息

Soft Hybrid Materials Research Center, Korea Institute of Science and Technology, Seoul 02792, Republic of Korea.

KU-KIST Graduate School of Converging Science and Technology, Korea University, Seoul 02841, Republic of Korea.

出版信息

ACS Nano. 2022 Feb 22;16(2):2271-2281. doi: 10.1021/acsnano.1c08405. Epub 2022 Jan 21.

Abstract

For next-generation wearable and implantable devices, energy storage devices should be soft and mechanically deformable and easily printable on any substrate or active devices. Herein, we introduce a fully stretchable lithium-ion battery system for free-form configurations in which all components, including electrodes, current collectors, separators, and encapsulants, are intrinsically stretchable and printable. The stretchable electrode acquires intrinsic stretchability and improved interfacial adhesion with the active materials a functionalized physically cross-linked organogel as a stretchable binder and separator. Intrinsically stretchable current collectors are fabricated in the form of nanocomposites consisting of a matrix with excellent barrier properties without swelling in organic electrolytes and nanostructure-controlled multimodal conductive fillers. Due to structural and materials freedoms, we successfully fabricate several types of stretchable lithium-ion battery that reliably operates under various stretch deformations with capacity and rate capability comparable with a nonstretchable battery over 2.5 mWh cm at 0.5 C, even under high mass loading conditions over 10 mg cm, including stacked configuration, direct integration on both sides of a stretch fabric, and application of various electrode materials and electrolytes. Especially, our stretchable battery printed on a stretch fabric also exhibits high performance and stretch/long-term stabilities in the air even with wearing and pulling.

摘要

对于下一代可穿戴和可植入设备,能量存储设备应具备柔软、可机械变形且易于在任何基板或有源设备上打印的特性。在此,我们介绍一种用于自由形态配置的全可拉伸锂离子电池系统,其中包括电极、集流体、隔膜和密封剂在内的所有组件都具有内在的可拉伸性和可打印性。可拉伸电极通过使用功能化物理交联有机凝胶作为可拉伸粘合剂和隔膜,获得了内在的可拉伸性并改善了与活性材料的界面粘附力。本征可拉伸集流体以纳米复合材料的形式制造,该纳米复合材料由在有机电解质中不溶胀且具有优异阻隔性能的基质和纳米结构控制的多模态导电填料组成。由于结构和材料的自由度,我们成功制造了几种类型的可拉伸锂离子电池,这些电池在各种拉伸变形下都能可靠运行,在0.5 C时的容量和倍率性能与不可拉伸电池相当,超过2.5 mWh/cm²,即使在超过10 mg/cm²的高质量负载条件下也是如此,包括堆叠配置、直接集成在拉伸织物的两侧以及应用各种电极材料和电解质。特别是,我们印刷在拉伸织物上的可拉伸电池即使在穿着和拉扯的情况下,在空气中也表现出高性能和拉伸/长期稳定性。

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