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通过重组单壁碳纳米管网络制备的具有协同增强的透光率和导电性的大面积柔性碳纳米薄膜。

Large-Area Flexible Carbon Nanofilms with Synergistically Enhanced Transmittance and Conductivity Prepared by Reorganizing Single-Walled Carbon Nanotube Networks.

作者信息

Yue Ying, Zhang Di, Wang Pengyu, Xia Xiaogang, Wu Xin, Zhang Yuejuan, Mei Jie, Li Shaoqing, Li Mingming, Wang Yanchun, Zhang Xiao, Wei Xiaojun, Liu Huaping, Zhou Weiya

机构信息

Beijing National Laboratory for Condensed Matter Physics, and Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, China.

School of Physical Sciences and College of Materials Science and Optoelectronic Technology, University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Adv Mater. 2024 Jun;36(26):e2313971. doi: 10.1002/adma.202313971. Epub 2024 Apr 12.

Abstract

Large-area flexible transparent conductive films (TCFs) are highly desired for future electronic devices. Nanocarbon TCFs are one of the most promising candidates, but some of their properties are mutually restricted. Here, a novel carbon nanotube network reorganization (CNNR) strategy, that is, the facet-driven CNNR (FD-CNNR) technique, is presented to overcome this intractable contradiction. The FD-CNNR technique introduces an interaction between single-walled carbon nanotube (SWNT) and Cu─-O. Based on the unique FD-CNNR mechanism, large-area flexible reorganized carbon nanofilms (RNC-TCFs) are designed and fabricated with A3-size and even meter-length, including reorganized SWNT (RSWNT) films and graphene and RSWNT (G-RSWNT) hybrid films. Synergistic improvement in strength, transmittance, and conductivity of flexible RNC-TCFs is achieved. The G-RSWNT TCF shows sheet resistance as low as 69 Ω sq at 86% transmittance, FOM value of 35, and Young's modulus of ≈45 MPa. The high strength enables RNC-TCFs to be freestanding on water and easily transferred to any target substrate without contamination. A4-size flexible smart window is fabricated, which manifests controllable dimming and fog removal. The FD-CNNR technique can be extended to large-area or even large-scale fabrication of TCFs and can provide new insights into the design of TCFs and other functional films.

摘要

大面积柔性透明导电薄膜(TCFs)是未来电子设备的迫切需求。纳米碳TCFs是最有前途的候选材料之一,但其某些性能相互制约。在此,提出了一种新颖的碳纳米管网络重组(CNNR)策略,即面驱动CNNR(FD-CNNR)技术,以克服这一棘手的矛盾。FD-CNNR技术引入了单壁碳纳米管(SWNT)与Cu─O之间的相互作用。基于独特的FD-CNNR机制,设计并制备了A3尺寸甚至米级长度的大面积柔性重组碳纳米薄膜(RNC-TCFs),包括重组SWNT(RSWNT)薄膜以及石墨烯与RSWNT(G-RSWNT)混合薄膜。实现了柔性RNC-TCFs在强度、透光率和导电性方面的协同提升。G-RSWNT TCF在86%透光率下的方阻低至69 Ω/sq,优值为35,杨氏模量约为45 MPa。高强度使RNC-TCFs能够在水面上自立,并易于转移到任何目标基板上而无污染。制备了A4尺寸的柔性智能窗口,其具有可控的调光和除雾功能。FD-CNNR技术可扩展到TCFs的大面积甚至大规模制备,并可为TCFs和其他功能薄膜的设计提供新的思路。

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