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基于高导电褶皱壳的应变不敏感可拉伸纤维导体,用于可穿戴电子设备。

Strain-Insensitive Stretchable Fiber Conductors Based on Highly Conductive Buckled Shells for Wearable Electronics.

机构信息

School of Electrical and Electronic Engineering, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul 03722, Republic of Korea.

KIURI Institute, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul 03722, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2023 Apr 12;15(14):18281-18289. doi: 10.1021/acsami.2c21959. Epub 2023 Mar 29.

DOI:10.1021/acsami.2c21959
PMID:36989129
Abstract

Based on their high applicability to wearable electronics, fiber-based stretchable electronics have been developed via different strategies. However, the electrical conductivity of a fiber electrode is severely degraded, following deformation upon stretching. Despite the introduction of conductive buckled structures to resolve this issue, there still exist limitations regarding the simultaneous realizations of high conductivity and stretchability. Here, we exploit the dense distribution of the Ag nanoparticle (AgNP) network in polyurethane (PU) to fabricate a strain-insensitive stretchable fiber conductor comprising highly conductive buckled shells via a facile chemical process. These buckled AgNPs/PU fibers exhibit stable and reliable electrical responses across a wide range (tensile strain = ∼200%), in addition to their high electrical conductivity (26,128 S/m) and quality factor ( = 2.29). Particularly, the negligible electrical hysteresis and excellent durability (>10,000 stretching-releasing cycles) of the fibers demonstrate their high applicability to wearable electronics. Furthermore, we develop buckled fiber-based pH sensors exhibiting stable, repeatable, and highly distinguishable responses (changing pH is from 4 to 8, response time is 5-6 s) even under 100% tensile strain. The buckled AgNPs/PU fibers represent a facile strategy for maintaining the stable electrical performances of fiber electrodes across the strain range of human motion for wearable applications.

摘要

基于其在可穿戴电子产品中的高适用性,已经通过不同的策略开发了基于纤维的可拉伸电子产品。然而,纤维电极的导电性在拉伸时会严重下降。尽管引入了导电褶皱结构来解决这个问题,但在同时实现高导电性和可拉伸性方面仍然存在局限性。在这里,我们利用聚氨酯(PU)中密集分布的银纳米颗粒(AgNP)网络,通过简单的化学过程制备了一种由高导电性褶皱壳组成的应变不敏感的可拉伸纤维导体。这些褶皱 AgNPs/PU 纤维在很宽的拉伸范围内(拉伸应变=~200%)表现出稳定可靠的电响应,同时具有高导电性(26,128 S/m)和质量因数(=2.29)。特别是,纤维的电滞后可忽略不计和出色的耐用性(>10,000 次拉伸-释放循环)表明它们在可穿戴电子产品中有很高的适用性。此外,我们开发了褶皱纤维基 pH 传感器,即使在 100%拉伸应变下,也能表现出稳定、可重复和高度可区分的响应(pH 从 4 到 8 变化,响应时间为 5-6 s)。褶皱 AgNPs/PU 纤维代表了一种在人类运动应变范围内保持纤维电极稳定电性能的简便策略,适用于可穿戴应用。

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