Hydrophobic Multilayered PEG@PAN/MXene/PVDF@SiO2 Composite Film with Excellent Thermal Management and Electromagnetic Interference Shielding for Electronic Devices

Author:

Lin Jiahui1,Huang Jintao1,Guo Zhanhu2ORCID,Xu Ben Bin2,Cao Yan1,Ren Juanna3,Hou Hua3,Xiao Yongshuang1,Elashiry Mustafa4,El‐Bahy Zeinhom M.5,Min Yonggang1

Affiliation:

1. Department of Polymeric Materials and Engineering School of Materials and Energy Guangdong University of Technology Guangzhou 510006 China

2. Department of Mechanical and Civil Engineering Faculty of Engineering and Environment Northumbria University Newcastle Upon Tyne NE1 8ST UK

3. College of Materials Science and Engineering Taiyuan University of Science and Technology Shanxi 030024 China

4. Department of Mathematic Faculty of Arts and Science Northern Border University Rafha 91431 Saudi Arabia

5. Department of Chemistry Al‐Azhar University Nasr City Cairo 11884 Egypt

Abstract

AbstractWith the rapid development of electronic industry, it's pressing to develop multifunctional electromagnetic interference (EMI) shielding materials to ensure the stable operation of electronic devices. Herein, multilayered flexible PEG@PAN/MXene (Ti3C2Tx)/PVDF@SiO2 (PMF) composite film has been constructed from the level of microstructure design via coaxial electrospinning, coating spraying, and uniaxial electrospinning strategies. Benefiting from the effective encapsulation for PEG and high conductivity of MXene coating, PEG@PAN/MXene composite film with MXene coating loading density of 0.70 mg cm−2 exhibits high thermal energy storage density of 120.77 J g−1 and great EMI shielding performance (EMI SE of 34.409 dB and SSE of 49.086 dB cm3 g−1) in X‐band (8–12 GHz). Therefore, this advanced composite film can not only help electronic devices prevent the influence of electromagnetic pollution in the X‐band but also play an important role in electronic device thermal management. Additionally, the deposition of nano PVDF@SiO2 fibers (289 ± 128 nm) endowed the PMF composite film with great hydrophobic properties (water contact angle of 126.5°) to ensure the stable working of hydrophilic MXene coating, thereby breaks the limitation of humid application environments. The finding paves a new way for the development of novel multifunctional EMI shielding composite films for electronic devices.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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