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用于可拉伸电极的、结合了碳纳米管和银纳米线的导电硅基纳米复合材料。

Electrically Conductive Silicone-Based Nanocomposites Incorporated with Carbon Nanotubes and Silver Nanowires for Stretchable Electrodes.

作者信息

Kim Tae Gon, Eom Hyeon Sik, Kim Jong Hwi, Jung Jik Kyo, Jang Keon-Soo, Lee Seong Jae

机构信息

Department of Polymer Engineering, School of Chemical and Materials Engineering, The University of Suwon, Hwaseong, Gyeonggi 18323, Republic of Korea.

NanoChemTech Inc., 112 Yangseong-ro, Yangseong-myeon, Anseong, Gyeonggi 17502, Republic of Korea.

出版信息

ACS Omega. 2021 Nov 16;6(47):31876-31890. doi: 10.1021/acsomega.1c04628. eCollection 2021 Nov 30.

Abstract

Stretchable electrode materials have attracted great attention as next-generation electronic materials because of their ability to maintain intrinsic properties with rare damage when undergoing repetitive deformations, such as folding, twisting, and stretching. In this study, an electrically conductive PDMS nanocomposite was manufactured by combining the hybrid nanofillers of carbon nanotubes (CNTs) and silver nanowires (AgNWs). The amphiphilic isopropyl alcohol molecules temporarily adhered simultaneously to the hydrophobic CNT and hydrophilic AgNW surfaces, thereby improving the dispersity. As the CNT/AgNW ratio (wt %/wt %) decreased under the constant nanofiller content, the tensile modulus decreased and the elongation at break increased owing to the poor interaction between the AgNWs and matrix. The shear storage moduli of all nanocomposites were higher than the loss moduli, indicating the elastic behavior with a cross-linked network. The electrical conductivities of the nanocomposite containing the hybrid nanofillers were superior to those of the nanocomposite containing either CNT or AgNW at the same filler content (4 wt %). The hybrid nanofillers were rearranged and deformed by 5000 cyclic strain tests, relaxing the PDMS matrix chain and weakening the interfacial bonding. However, the elastic behavior was maintained. The dynamic electrical conductivities gradually increased under the cyclic strain tests due to the rearrangement and tunneling effect of the nanofillers. The highest dynamic electrical conductivity (10 S/m) was obtained for the nanocomposite consisting of 2 wt % of CNTs and 2 wt % of AgNWs.

摘要

可拉伸电极材料因其在经历如折叠、扭曲和拉伸等重复变形时能够保持固有性能且极少受损的能力,作为下一代电子材料已引起了极大关注。在本研究中,通过将碳纳米管(CNT)和银纳米线(AgNW)的混合纳米填料相结合,制备了一种导电聚二甲基硅氧烷(PDMS)纳米复合材料。两亲性异丙醇分子同时暂时附着在疏水性的CNT和亲水性的AgNW表面,从而提高了分散性。在纳米填料含量恒定的情况下,随着CNT/AgNW比例(重量百分比/重量百分比)降低,由于AgNW与基体之间的相互作用较差,拉伸模量降低,断裂伸长率增加。所有纳米复合材料的剪切储能模量均高于损耗模量,表明其具有交联网络的弹性行为。在相同填料含量(4 wt%)下,含有混合纳米填料的纳米复合材料的电导率优于含有CNT或AgNW的纳米复合材料。通过5000次循环应变测试,混合纳米填料发生重排和变形,使PDMS基体链松弛并削弱了界面结合。然而,弹性行为得以保持。由于纳米填料的重排和隧道效应,在循环应变测试下动态电导率逐渐增加。由2 wt%的CNT和2 wt%的AgNW组成的纳米复合材料获得了最高动态电导率(10 S/m)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5cf0/8638027/20fac58695bf/ao1c04628_0002.jpg

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