Surfactant Micelle‐Driven High‐Efficiency and High‐Resolution Length Separation of Carbon Nanotubes for Electronic Applications

Author:

Ling Shuang12,Wei Xiaojun1345ORCID,Luo Xin1,Li Xiao134,Li Shilong14,Xiong Feibing2,Zhou Weiya1345,Xie Sishen1345,Liu Huaping1345ORCID

Affiliation:

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

2. Department of Optoelectronic Xiamen University of Technology Xiamen Fujian 361024 China

3. Department of Physics and Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 China

4. Beijing Key Laboratory for Advanced Functional Materials and Structure Research Beijing 100190 China

5. Songshan Lake Materials Laboratory Dongguan Guangdong 523808 China

Abstract

AbstractHigh‐efficiency extraction of long single‐wall carbon nanotubes (SWCNTs) with excellent optoelectronic properties from SWCNT solution is critical for enabling their application in high‐performance optoelectronic devices. Here, a straightforward and high‐efficiency method is reported for length separation of SWCNTs by modulating the concentrations of binary surfactants. The results demonstrate that long SWCNTs can spontaneously precipitate for binary‐surfactant but not for single‐surfactant systems. This effect is attributed to the formation of compound micelles by binary surfactants that squeeze the free space of long SWCNTs due to their large excluded volumes. With this technique, it can readily separate near‐pure long (≥500 nm in length, 99% in content) and short (≤500 nm in length, 98% in content) SWCNTs with separation efficiencies of 26% and 64%, respectively, exhibiting markedly greater length resolution and separation efficiency than those of previously reported methods. Thin‐film transistors fabricated from extracted semiconducting SWCNTs with lengths >500 nm exhibit significantly improved electrical properties, including a 10.5‐fold on‐state current and 14.7‐fold mobility, compared with those with lengths <500 nm. The present length separation technique is perfectly compatible with various surfactant‐based methods for structure separations of SWCNTs and is significant for fabrication of high‐performance electronic and optoelectronic devices.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Key Research Program of Frontier Science, Chinese Academy of Sciences

Publisher

Wiley

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