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基于弹性体渗透的垂直排列碳纳米管膜的波浪形可拉伸导体。

Elastomer-infiltrated vertically aligned carbon nanotube film-based wavy-configured stretchable conductors.

机构信息

Department of Advanced Circuit Interconnection, ‡Department of Nano Fusion Technology, §Department of Nanomechatronics Engineering, and ∥Department of Nanomaterials Engineering, Pusan National University , Busan 609-735, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2014 Aug 13;6(15):12909-14. doi: 10.1021/am502851e. Epub 2014 Jul 9.

Abstract

Elastomer-infiltrated vertically aligned carbon nanotube (VACNT) forests are good candidates for use as stretchable conductors that can retain the electrical properties under relatively large stretching. The electrical performance can be further enhanced in terms of high stretchability and small change in the electrical resistance by using a wavy configuration. In this work, we present a wavy-structured high-performance stretchable conductor prepared by a simple prestraining approach based on polydimethylsiloxane (PDMS)-infiltrated VACNT films. Prior to the infiltration process, the VACNT forests can also be easily micropatterned by a PDMS stamp-assisted contact transfer printing technique. The conductive VACNT forest patterns are fully infiltrated with highly elastic PDMS, and the PDMS/VACNT film is conformally and strongly bonded to the prestrained PDMS substrate with the help of an intermediate thin PDMS layer, resulting in mechanical robustness of the whole device. The fabricated wavy VACNT conductor shows a small resistance change ratio of less than 6% with a tensile strain of up to 100% (prestrained level) and a high reversibility under multiple stretching/releasing cycles with a maximum strain of 100%.

摘要

弹性体渗透的垂直排列碳纳米管 (VACNT) 森林是用作可拉伸导体的良好候选材料,它们可以在相对较大的拉伸下保持电性能。通过使用波浪形结构,可以进一步提高可拉伸性和电阻变化小的电性能。在这项工作中,我们提出了一种基于聚二甲基硅氧烷 (PDMS) 渗透的 VACNT 薄膜的简单预拉伸方法制备的波浪结构高性能可拉伸导体。在渗透过程之前,VACNT 森林也可以通过 PDMS 印章辅助接触转移印刷技术轻松微图案化。导电 VACNT 森林图案完全渗透了高弹性 PDMS,并且 PDMS/VACNT 薄膜在中间薄 PDMS 层的帮助下与预拉伸 PDMS 基底紧密结合,从而使整个器件具有机械鲁棒性。所制造的波浪形 VACNT 导体在拉伸应变高达 100%(预拉伸水平)时的电阻变化比小于 6%,并且在最大应变 100%的多次拉伸/释放循环下具有高的可逆性。

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