Facile Design of Flexible, Strong, and Highly Conductive MXene‐Based Composite Films for Multifunctional Applications

Author:

Wang Beibei12,Zhang Weiye12,Lai Chenhuan3,Liu Yi12,Guo Hongwu12,Zhang Daihui134ORCID,Guo Zhanhu5

Affiliation:

1. Key Laboratory of Wood Material Science and Application (Beijing Forestry University) Ministry of Education Beijing 100083 China

2. Engineering Research Center of Forestry Biomass Materials and Energy Ministry of Education Beijing Forestry University Beijing 100083 China

3. Co‐Innovation Center of Efficient Processing and Utilization of Forest Resources Nanjing Forestry University Nanjing Jiangsu 210037 China

4. Institute of Chemical Industry of Forest Products Chinese Academy of Forestry Nanjing Jiangsu 210042 China

5. Integrated Composites Lab Department of Mechanical and Construction Engineering Northumbria University Newcastle Upon Tyne NE1 8ST UK

Abstract

AbstractStrong, conductive, and flexible materials with improving ion accessibility have attracted significant attention in electromagnetic interference (EMI) and foldable wearable electronics. However, it still remains a great challenge to realize high performance at the same time for both properties. Herein, a microscale structural design combined with nanostructures strategy to fabricate TOCNF(F)/Ti3C2Tx(M)@AgNW(A) composite films via a facile vacuum filtration process followed by hot pressing (TOCNF = TEMPO‐oxidized cellulose nanofibrils, NW = nanowires) is described. The comparison reveals that different microscale structures can significantly influence the properties of thin films, especially their electrochemical properties. Impressively, the ultrathin MA/F/MA film with enhanced layer in the middle exhibits an excellent tensile strength of 107.9 MPa, an outstanding electrical conductivity of 8.4 × 106 S m−1, and a high SSE/t of 26 014.52 dB cm2 g−1. The assembled asymmetric MA/F/MA//TOCNF@CNT (carbon nanotubes) supercapacitor leads to a significantly high areal energy density of 49.08 µWh cm−2 at a power density of 777.26 µW cm−2. This study proposes an effective strategy to circumvent the trade‐off between EMI performance and electrochemical properties, providing an inspiration for the fabrication of multifunctional films for a wide variety of applications in aerospace, national defense, precision instruments, and next‐generation electronics.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Beijing Municipality

National Key Research and Development Program of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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