Simultaneously Enhanced Tenacity, Rupture Work, and Thermal Conductivity of Carbon Nanotubes Fibers by Increasing the Effective Tube Contribution
Xiao Zhang, Michael De Volder, Wenbin Zhou, Liron Issman, Xiaojun Wei,, Adarsh Kaniyoor, Jeronimo Terrones Portas, Fiona Smail, Zibo Wang, Yanchun, Wang, Huaping Liu, Weiya Zhou, James Elliott, Sishen Xie, Adam Boies

TL;DR
This paper introduces a Double-Drawing technique that significantly enhances the mechanical and thermal properties of carbon nanotube fibers by restructuring their internal morphology, achieving performance comparable or superior to commercial fibers.
Contribution
The development of a novel Double-Drawing method that improves CNT fiber properties by optimizing nanotube arrangement and load transfer, starting from low-crystallinity materials.
Findings
Achieved specific strength of ~3.30 N/tex
Reached thermal conductivity of ~354 W/m·K
Enhanced load transfer efficiency in CNT bundles
Abstract
Although individual carbon nanotubes (CNTs) are superior as constituents to polymer chains, the mechanical and thermal properties of CNT fibers (CNTFs) remain inferior to commercial synthetic fibers due to the lack of synthesis methods to embed CNTs effectively in superstructures. The application of conventional techniques for mechanical enhancement resulted in a mild improvement of target properties while achieving parity at best on others. In this work, a Double-Drawing technique is developed to deform continuously grown CNTFs and rearrange the constituent CNTs in both mesoscale and nanoscale morphology. Consequently, the mechanical and thermal properties of the resulting CNTFs can be jointly improved, and simultaneously reach their highest performances with specific strength (tenacity) , work of rupture , and thermal conductivity…
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Taxonomy
TopicsCarbon Nanotubes in Composites · Fiber-reinforced polymer composites · Graphene research and applications
