From “100%” Utilization of MAX/MXene to Direct Engineering of Wearable, Multifunctional E‐Textiles in Extreme Environments

Author:

Li Bin1,Wu Na2ORCID,Wu Qilei3,Yang Yunfei1,Pan Fei4,Liu Wei56,Liu Jiurong1ORCID,Zeng Zhihui1ORCID

Affiliation:

1. Key Laboratory for Liquid‐Solid Structural Evolution and Processing of Materials (Ministry of Education) School of Materials Science and Engineering Shandong University Jinan 250061 P. R. China

2. Department of Mechanical Engineering The Hong Kong Polytechnic University Kowloon Hong Kong 999077 P. R. China

3. Science and Technology on Electromagnetic Compatibility Laboratory China Ship Development and Design Centre Wuhan 430064 P. R. China

4. Department of Chemistry University of Basel Basel CH‐4058 Switzerland

5. State Key Laboratory of Crystal Materials Institute of Crystal Materials Shandong University Jinan 250100 P. R. China

6. Shenzhen Research Institute of Shandong University Shandong University Shenzhen 518057 P. R. China

Abstract

AbstractTransition metal carbides/nitrides (MXenes) show great potential for preparing wearable, flexible multifunctional e‐textiles due to the exceptional electrical and mechanical properties and easy processing in aqueous medium. At present, MXene‐based e‐textiles face challenges including high production costs, low utilization of precursor titanium aluminum carbide (MAX), poor durability in extreme environments, and the inability to achieve a balance between large‐scale fabrication and high performance. Here, this work proposes a “100%” utilization of MAX/MXene strategy to produce additive‐free conductive inks with controllable viscosity, subsequently enabling an accessible, scalable direct‐blade‐coating followed by chemical cross‐linking approach for creating wearable, high‐performance, multifunctional MXene‐based e‐textiles that perform in extreme conditions. The structural design provides integrated multifunctionality involving controllable and exceptional electromagnetic interference (EMI) shielding within an ultrabroadband frequency range, visual electrothermal conversion, electrothermal deicing, remarkable visual photothermal, and antibacterial performance. This work employs a fabrication process that is simple, cost‐effective, and scalable, presenting a novel “100% efficiency” and “waste‐to‐wealth” strategy to manufacture robust, durable, multifunctional e‐textiles. This approach provides exciting potential for the next generation of wearable electronics, EMI compatibility, visual heating, thermotherapy, antibacterial treatments, deicing, defense, and aerospace applications.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Natural Science Foundation of Shandong Province

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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