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稳定的n型碳纳米管网络中异常的电导率增强

Unusual Electrical Conductivity Enhancement in Stable n-Type Carbon Nanotube Networks.

作者信息

Chang Sooyon, Biswas Prithwish, Qin Zhao, Tian Zhiting

机构信息

Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY, 14853, USA.

Civil and Environmental Engineering, Syracuse University, Syracuse, NY, 13244, USA.

出版信息

Small Methods. 2024 Dec;8(12):e2400585. doi: 10.1002/smtd.202400585. Epub 2024 Aug 11.

Abstract

Organic molecule-doped n-type single-walled carbon nanotube (SWCNT) networks are promising candidates for advanced energy applications, such as flexible thermoelectrics and photovoltaics. Yet charge transport in n-type SWCNTs is limited by two factors: i) charge localization impeding inter-tube transport caused by disordered mesostructure of randomly oriented SWCNTs and ii) reduction of charge carrier concentration driven by oxidation. Herein, studied the relationship between the mesostructure and thermoelectric properties of n-type SWCNTs obtained by surfactant-functionalization and polymer-dopant grafting. Surprisingly, the electrical conductivity of the polymer-doped SWCNTs keeps increasing with increasing polymer content, even after the saturation of carrier concentration, resulting in 12x higher conductivity on polymer-doping compared to surfactant-functionalization. While hopping transport typically dominates in disordered systems, it is shown that a bridging effect from the polymer causes unusual band-like conduction in polymer-doped SWCNTs. Additionally, since surfactants are essential to prevent oxidation and retain n-type over a long duration, shows that SWCNTs obtained through a dual-functionalization strategy using both polymer-dopant and surfactant, demonstrates a long-term stable high n-type thermoelectric power factor, when the surfactant amount is carefully controlled. Besides thermoelectrics, the findings are of general interest to developing stable and conductive n-type SWCNTs for various energy and electronic applications.

摘要

有机分子掺杂的n型单壁碳纳米管(SWCNT)网络是先进能源应用(如柔性热电学和光伏)的有前途的候选材料。然而,n型SWCNT中的电荷传输受到两个因素的限制:i)由随机取向的SWCNT的无序介观结构引起的电荷局域化阻碍了管间传输;ii)氧化导致的电荷载流子浓度降低。在此,研究了通过表面活性剂功能化和聚合物掺杂剂接枝获得的n型SWCNT的介观结构与热电性能之间的关系。令人惊讶的是,即使在载流子浓度饱和后,聚合物掺杂的SWCNT的电导率仍随着聚合物含量的增加而持续增加,与表面活性剂功能化相比,聚合物掺杂后的电导率提高了12倍。虽然跳跃传输通常在无序系统中占主导地位,但研究表明,聚合物的桥接效应在聚合物掺杂的SWCNT中导致了不寻常的带状传导。此外,由于表面活性剂对于防止氧化和长时间保持n型至关重要,研究表明,当表面活性剂的量得到仔细控制时,通过同时使用聚合物掺杂剂和表面活性剂的双功能化策略获得的SWCNT表现出长期稳定的高n型热电功率因子。除了热电学之外,这些发现对于开发用于各种能源和电子应用的稳定且导电的n型SWCNT具有普遍意义。

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