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机械梯度助力基于纳米纤维基材的高可拉伸电子器件。

Mechanical Gradients Enable Highly Stretchable Electronics Based on Nanofiber Substrates.

作者信息

Wang Meng, Wang Kai, Ma Chao, Uzabakiriho Pierre Claver, Chen Xi, Zhao Gang

机构信息

Department of Electronic Engineering and Information Science, University of Science and Technology of China, Hefei 230027, China.

College of Mathematics, Physics and Information Science and Engineering, Zhejiang Normal University, Jinhua 321004, China.

出版信息

ACS Appl Mater Interfaces. 2022 Aug 10;14(31):35997-36006. doi: 10.1021/acsami.2c10245. Epub 2022 Jul 27.

Abstract

Stretchable electronics play a pivotal role in the age of information and intelligence. Integrated circuit components are an integral part of high-performance and multifunctional stretchable electronic devices. Therefore, it is an ideal design concept for stretchable electronic devices to not only ensure the reliability of the connection between rigid inorganic electronic components and stretchable circuits but also maintain the stretchability of the device. In this work, we constructed a mechanical gradient strategy to fabricate high-performance stretchable electronic devices. Briefly, polyvinyl alcohol glue is used to fix integrated circuits on stretchable circuits, which are fabricated by printing liquid metal on a thermoplastic polyurethane nanofiber membrane. The strategy of integrated circuits (rigid)-polyvinyl alcohol glue (high elastic modulus)-thermoplastic polyurethane nanofiber membrane (low elastic modulus)-liquid metal (liquid) realizes the strain gradient during the stretching process of the device, thus ensuring the stability and reliability. Moreover, we explored the mechanism through experiments and finite element analysis. The flexible electronic devices fabricated by this scheme are not only ultra-stretchable (900%) but also have good stability and comfort. As proof, the application in stretchable sensors, human-computer interaction devices, and displays was realized.

摘要

可拉伸电子器件在信息与智能时代发挥着关键作用。集成电路组件是高性能和多功能可拉伸电子器件不可或缺的一部分。因此,对于可拉伸电子器件而言,不仅要确保刚性无机电子组件与可拉伸电路之间连接的可靠性,还要保持器件的可拉伸性,这是一种理想的设计理念。在这项工作中,我们构建了一种机械梯度策略来制造高性能可拉伸电子器件。简而言之,使用聚乙烯醇胶水将集成电路固定在可拉伸电路上,可拉伸电路是通过在热塑性聚氨酯纳米纤维膜上印刷液态金属制成的。集成电路(刚性)-聚乙烯醇胶水(高弹性模量)-热塑性聚氨酯纳米纤维膜(低弹性模量)-液态金属(液体)的策略在器件拉伸过程中实现了应变梯度,从而确保了稳定性和可靠性。此外,我们通过实验和有限元分析探索了其机理。通过该方案制造的柔性电子器件不仅具有超高的可拉伸性(900%),而且具有良好的稳定性和舒适性。作为例证,实现了在可拉伸传感器、人机交互设备和显示器中的应用。

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