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用于超柔软电子产品的导电弹性瓶刷弹性体。

Conductive and elastic bottlebrush elastomers for ultrasoft electronics.

机构信息

Department of Mechanical and Industrial Engineering, University of Toronto, Toronto, Ontario, M5S 3G8, Canada.

Department of Chemistry, University of Toronto, Toronto, Ontario, M5S 3H6, Canada.

出版信息

Nat Commun. 2023 Feb 4;14(1):623. doi: 10.1038/s41467-023-36214-8.

Abstract

Understanding biological systems and mimicking their functions require electronic tools that can interact with biological tissues with matched softness. These tools involve biointerfacing materials that should concurrently match the softness of biological tissue and exhibit suitable electrical conductivities for recording and reading bioelectronic signals. However, commonly employed intrinsically soft and stretchable materials usually contain solvents that limit stability for long-term use or possess low electronic conductivity. To date, an ultrasoft (i.e., Young's modulus <30 kPa), conductive, and solvent-free elastomer does not exist. Additionally, integrating such ultrasoft and conductive materials into electronic devices is poorly explored. This article reports a solvent-free, ultrasoft and conductive PDMS bottlebrush elastomer (BBE) composite with single-wall carbon nanotubes (SWCNTs) as conductive fillers. The conductive SWCNT/BBE with a filler concentration of 0.4 - 0.6 wt% reveals an ultralow Young's modulus (<11 kPa) and satisfactory conductivity (>2 S/m) as well as adhesion property. Furthermore, we fabricate ultrasoft electronics based on laser cutting and 3D printing of conductive and non-conductive BBEs and demonstrate their potential applications in wearable sensing, soft robotics, and electrophysiological recording.

摘要

理解生物系统并模拟其功能需要能够与生物组织相互作用的电子工具,这些工具需要具有匹配的柔软度的生物界面材料。这些材料应同时与生物组织的柔软度相匹配,并具有适合记录和读取生物电子信号的电导率。然而,通常使用的固有柔软和可拉伸材料通常含有限制长期使用稳定性的溶剂,或者具有低电导率。迄今为止,还没有一种超柔软(即杨氏模量 <30 kPa)、导电且无溶剂的弹性体。此外,将这种超柔软和导电材料集成到电子设备中还没有得到很好的探索。本文报道了一种无溶剂、超柔软和导电的 PDMS 刷状弹性体(BBE)复合材料,其导电填料为单壁碳纳米管(SWCNT)。导电 SWCNT/BBE 的填充浓度为 0.4-0.6wt%,具有超低杨氏模量(<11 kPa)和令人满意的电导率(>2 S/m)以及粘附性能。此外,我们基于导电和非导电 BBE 的激光切割和 3D 打印制造了超柔软电子产品,并展示了它们在可穿戴传感器、软机器人和电生理记录方面的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9313/9899285/15c2182ba133/41467_2023_36214_Fig1_HTML.jpg

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