Suppr超能文献

可打印固态锂离子电池:一种新途径,可实现形状适应性电源,具有灵活电子产品的美学多功能性。

Printable Solid-State Lithium-Ion Batteries: A New Route toward Shape-Conformable Power Sources with Aesthetic Versatility for Flexible Electronics.

机构信息

Department of Energy Engineering, School of Energy and Chemical Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan 689-798, Korea.

出版信息

Nano Lett. 2015 Aug 12;15(8):5168-77. doi: 10.1021/acs.nanolett.5b01394. Epub 2015 Jul 21.

Abstract

Forthcoming flexible/wearable electronic devices with shape diversity and mobile usability garner a great deal of attention as an innovative technology to bring unprecedented changes in our daily lives. From the power source point of view, conventional rechargeable batteries (one representative example is a lithium-ion battery) with fixed shapes and sizes have intrinsic limitations in fulfilling design/performance requirements for the flexible/wearable electronics. Here, as a facile and efficient strategy to address this formidable challenge, we demonstrate a new class of printable solid-state batteries (referred to as "PRISS batteries"). Through simple stencil printing process (followed by ultraviolet (UV) cross-linking), solid-state composite electrolyte (SCE) layer and SCE matrix-embedded electrodes are consecutively printed on arbitrary objects of complex geometries, eventually leading to fully integrated, multilayer-structured PRISS batteries with various form factors far beyond those achievable by conventional battery technologies. Tuning rheological properties of SCE paste and electrode slurry toward thixotropic fluid characteristics, along with well-tailored core elements including UV-cured triacrylate polymer and high boiling point electrolyte, is a key-enabling technology for the realization of PRISS batteries. This process/material uniqueness allows us to remove extra processing steps (related to solvent drying and liquid-electrolyte injection) and also conventional microporous separator membranes, thereupon enabling the seamless integration of shape-conformable PRISS batteries (including letters-shaped ones) into complex-shaped objects. Electrochemical behavior of PRISS batteries is elucidated via an in-depth analysis of cell impedance, which provides a theoretical basis to enable sustainable improvement of cell performance. We envision that PRISS batteries hold great promise as a reliable and scalable platform technology to open a new concept of cell architecture and fabrication route toward flexible power sources with exceptional shape conformability and aesthetic versatility.

摘要

即将面世的、具有多样化形状和便携易用性的柔性/可穿戴电子设备,作为一种创新技术,可以为我们的日常生活带来前所未有的变革,因此备受关注。从电源的角度来看,具有固定形状和尺寸的传统可充电电池(一个典型的例子是锂离子电池)在满足柔性/可穿戴电子产品的设计/性能要求方面存在固有局限性。在这里,作为解决这一艰巨挑战的一种简便高效的策略,我们展示了一类新型的可打印固态电池(称为“PRISS 电池”)。通过简单的模板印刷工艺(随后进行紫外线(UV)交联),固态复合电解质(SCE)层和 SCE 基质嵌入电极依次在复杂几何形状的任意物体上印刷,最终形成完全集成的、具有多种形状因数的多层结构 PRISS 电池,这些形状因数远远超出了传统电池技术所能实现的范围。调整 SCE 糊剂和电极浆料的流变性能以达到触变流体特性,以及精心设计的核心元件,包括 UV 固化三丙烯酸酯聚合物和高沸点电解质,是实现 PRISS 电池的关键使能技术。这种工艺/材料的独特性使我们能够省去额外的加工步骤(与溶剂干燥和液态电解质注入有关),也省去了传统的微孔隔离膜,从而实现了形状适应性强的 PRISS 电池(包括字母形状的电池)与复杂形状物体的无缝集成。通过对电池阻抗进行深入分析,阐明了 PRISS 电池的电化学行为,为实现电池性能的可持续改善提供了理论依据。我们设想 PRISS 电池作为一种可靠且可扩展的平台技术具有广阔的前景,可以为具有出色形状适应性和美学多功能性的柔性电源开辟一种新的电池结构和制造思路。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验