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聚二甲基硅氧烷上垂直排列的石墨烯-碳纳米管杂化作为可拉伸电极。

Graphene-vertically aligned carbon nanotube hybrid on PDMS as stretchable electrodes.

机构信息

Department of Mechanical Engineering, Stevens Institute of Technology, Castle Point on Hudson, Hoboken, NJ 07030, United States of America.

出版信息

Nanotechnology. 2017 Nov 17;28(46):465302. doi: 10.1088/1361-6528/aa8ba9. Epub 2017 Oct 24.

Abstract

Stretchable electrodes are a critical component for flexible electronics such as displays, energy devices, and wearable sensors. Carbon nanotubes (CNTs) and graphene have been considered for flexible electrode applications, due to their mechanical strength, high carrier mobility, and excellent thermal conductivity. Vertically aligned carbon nanotubes (VACNTs) provide the possibility to serve as interconnects to graphene sheets as stretchable electrodes that could maintain high electrical conductivity under large tensile strain. In this work, a graphene oxide (GO)-VACNT hybrid on a PDMS substrate was demonstrated. Here, 50 μm long VACNTs were grown on a Si/SiO wafer substrate via atmospheric pressure chemical vapor deposition. VACNTs were directly transferred by delamination from the Si/SiO to a semi-cured PDMS substrate, ensuring strong adhesion between VACNTs and PDMS upon full curing of the PDMS. GO ink was then printed on the surface of the VACNT carpet and thermally reduced to reduced graphene oxide (rGO). The sheet resistance of the rGO-VACNT hybrid was measured under uniaxial tensile strains up to 300% applied to the substrate. Under applied strain, the rGO-VACNT hybrid maintained a sheet resistant of 386 ± 55 Ω/sq. Cyclic stretching of the rGO-VACNT hybrid was performed with up to 50 cycles at 100% maximum tensile strain, showing no increase in sheet resistance. These results demonstrate promising performance of the rGO-VACNT hybrid for flexible electronics applications.

摘要

可拉伸电极是柔性电子设备(如显示器、能源设备和可穿戴传感器)的关键组成部分。由于其机械强度、高载流子迁移率和优异的导热性,碳纳米管 (CNT) 和石墨烯已被考虑用于柔性电极应用。垂直排列的碳纳米管 (VACNT) 提供了作为可拉伸电极的石墨烯片的互连的可能性,这些电极在大拉伸应变下可以保持高导电性。在这项工作中,展示了一种 PDMS 基底上的氧化石墨烯 (GO)-VACNT 杂化材料。在这里,通过常压化学气相沉积在 Si/SiO 晶片基底上生长了 50 μm 长的 VACNT。VACNT 可以通过剥离直接从 Si/SiO 转移到半固化 PDMS 基底上,从而确保 VACNT 和 PDMS 之间在 PDMS 完全固化后具有强附着力。然后在 VACNT 地毯表面上打印 GO 墨水,并将其热还原为还原氧化石墨烯 (rGO)。在施加到基底的高达 300%的单轴拉伸应变下测量 rGO-VACNT 杂化材料的方阻值。在施加应变的情况下,rGO-VACNT 杂化材料保持 386 ± 55 Ω/sq 的方阻值。对 rGO-VACNT 杂化材料进行了高达 50 次的 100%最大拉伸应变的循环拉伸测试,其方阻值没有增加。这些结果表明 rGO-VACNT 杂化材料在柔性电子应用中具有很有前景的性能。

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