Super‐Toughness Carbon Nanotube Yarns by Bio‐Inspired Nano‐Coiling Engineering

Author:

Cho Young Shik1ORCID,Lee Jae Won2,Jung Yeonsu3,Park Ji Yong4,Park Jae Seo4,Kim Sang Min4,Yang Seung Jae4ORCID,Park Chong Rae2ORCID

Affiliation:

1. Institute of Advanced Composite Materials Korea Institute of Science and Technology (KIST) Wanju 55324 Republic of Korea

2. Department of Materials Science & Engineering and Research Institute of Advanced Materials Seoul National University Seoul 08826 Republic of Korea

3. Composite Research Division Korea Institute of Materials Science (KIMS) Changwon 51508 Republic of Korea

4. Department of Chemistry & Chemical Engineering Education and Research Center for Smart Energy and Materials Inha University Incheon 22212 Republic of Korea

Abstract

AbstractLightweight structural materials are commonly used as effective fillers for advanced composites with high toughness. This study focused on enhancing the toughness of direct‐spun carbon nanotube yarns (CNTYs) by controlling the micro‐textural structure using a water‐gap‐based direct spinning. Drawing inspiration from the structural features of natural spider silk fibroin, characterized by an α‐helix in the amorphous region and β‐sheet in the crystalline region, multiscale bundles within CNTYs are reorganized into a unique nano‐coil‐like structure. This nano‐coiled structure facilitated the efficient dissipation of external mechanical loads through densification with the rearrangement of multiscale bundles, improving specific strength and strain. The resulting CNTYs exhibited exceptional mechanical properties with toughness reaching 250 J g−1, making them promising alternatives to commercially available fibers in lightweight, high‐toughness applications. These findings highlight the significance of nano‐coiling engineering for emulating bio‐inspired micro‐textural structures, achieving remarkable enhancement in the toughness of CNTYs.

Funder

Korea Institute of Science and Technology

National Research Council of Science and Technology

Korea Evaluation Institute of Industrial Technology

Publisher

Wiley

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