Approaching Technological Limit for Wet‐Pulling Technique

Author:

Chetyrkina Margarita R.1,Butt Hassaan A.1,Bulavskiy Mikhail O.1,Zhilyaeva Maria A.1,Krasnikov Dmitry V.1,Fedorov Fedor S.1,Mikladal Bjørn2,Shandakov Sergey D.3,Nasibulin Albert G.1ORCID

Affiliation:

1. Skolkovo Institute of Science and Technology Nobel 3 Moscow 121205 Russia

2. Canatu Ltd. Tiilenlyöjänkuja 9 A FI‐01720 Vantaa Finland

3. Kemerovo State University Krasnaya 6 Kemerovo 650000 Russia

Abstract

Carbon nanotube fibers (CNTFs) are a promising economical replacement material for contemporary metallic wired conductors due to their lightweight and advanced electromechanical properties. The wet‐pulling technique for CNTF manufacturing is highly versatile, adaptable for both laboratory as well as industrial‐scale production, and can be optimized for the maximum enhancement of electrophysical properties. Herein, a mechanosolvent‐based postfabrication approach for maximizing densification and improving electrical properties of wet‐pulled CNTFs is examined. The experimental process results in fibers achieving 60% of the theoretically maximum density and conductivity of maximally densified metallic single‐walled carbon nanotube bundles. The technique allows a corresponding increase of ≈700% in fiber density (from 100 to 704 kg m−3), a simultaneous ≈530% increase in electrical conductivity (from 748 to 3990 S cm−1), and reduced volume defects from 18% to 2%. The approach was combined with a step‐wise microstructure monitoring using focused ion beam–scanning electron microscopy to determine the mechanisms behind the optimized structures. This work is the first to provide an experimental and theoretical base for the postfabrication optimization of wet‐pulled CNTFs and lays the foundation for further enhancement with techniques such as chemical doping, fiber compounding, and combined infiltration/densification mechanisms.

Funder

Russian Science Foundation

Ministry of Science and Higher Education of the Russian Federation

Publisher

Wiley

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