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单手性单壁碳纳米管的合成、分类及应用

Synthesis, Sorting, and Applications of Single-Chirality Single-Walled Carbon Nanotubes.

作者信息

Kharlamova Marianna V, Burdanova Maria G, Paukov Maksim I, Kramberger Christian

机构信息

Centre for Advanced Material Application (CEMEA), Slovak Academy of Sciences, Dubrávská cesta 5807/9, 854 11 Bratislava, Slovakia.

Institute of Materials Chemistry, Vienna University of Technology, Getreidemarkt 9-BC-2, 1060 Vienna, Austria.

出版信息

Materials (Basel). 2022 Aug 26;15(17):5898. doi: 10.3390/ma15175898.

Abstract

The synthesis of high-quality chirality-pure single-walled carbon nanotubes (SWCNTs) is vital for their applications. It is of high importance to modernize the synthesis processes to decrease the synthesis temperature and improve the quality and yield of SWCNTs. This review is dedicated to the chirality-selective synthesis, sorting of SWCNTs, and applications of chirality-pure SWCNTs. The review begins with a description of growth mechanisms of carbon nanotubes. Then, we discuss the synthesis methods of semiconducting and metallic conductivity-type and single-chirality SWCNTs, such as the epitaxial growth method of SWCNT ("cloning") using nanocarbon seeds, the growth method using nanocarbon segments obtained by organic synthesis, and the catalyst-mediated chemical vapor deposition synthesis. Then, we discuss the separation methods of SWCNTs by conductivity type, such as electrophoresis (dielectrophoresis), density gradient ultracentrifugation (DGC), low-speed DGC, ultrahigh DGC, chromatography, two-phase separation, selective solubilization, and selective reaction methods and techniques for single-chirality separation of SWCNTs, including density gradient centrifugation, two-phase separation, and chromatography methods. Finally, the applications of separated SWCNTs, such as field-effect transistors (FETs), sensors, light emitters and photodetectors, transparent electrodes, photovoltaics (solar cells), batteries, bioimaging, and other applications, are presented.

摘要

高质量手性纯单壁碳纳米管(SWCNT)的合成对其应用至关重要。使合成过程现代化以降低合成温度并提高SWCNT的质量和产量具有重要意义。本文综述致力于SWCNT的手性选择性合成、分类以及手性纯SWCNT的应用。综述首先描述了碳纳米管的生长机制。然后,我们讨论了半导体和金属导电类型及单手性SWCNT的合成方法,例如使用纳米碳种子的SWCNT外延生长法(“克隆”)、使用通过有机合成获得的纳米碳片段的生长方法以及催化剂介导的化学气相沉积合成。接着,我们讨论了按导电类型分离SWCNT的方法,如电泳(介电泳)、密度梯度超速离心(DGC)、低速DGC、超高速DGC、色谱法、两相分离、选择性溶解以及用于SWCNT单手性分离的选择性反应方法和技术,包括密度梯度离心、两相分离和色谱法。最后,介绍了分离出的SWCNT的应用,如场效应晶体管(FET)、传感器、发光器和光电探测器、透明电极、光伏(太阳能电池)、电池、生物成像以及其他应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/938b/9457432/33105bd4211f/materials-15-05898-g010.jpg

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