4.5 Article

Synergistic Effects between MXenes and Ni Chains in Flexible and Ultrathin Electromagnetic Interference Shielding Films

Journal

ADVANCED MATERIALS INTERFACES
Volume 6, Issue 19, Pages -

Publisher

WILEY
DOI: 10.1002/admi.201900961

Keywords

electromagnetic interference shielding; mechanical properties; MXenes; Ni chains; synergistic effects

Funding

  1. Excellent Young Scientist Foundation of NSFC [11522216]
  2. National Natural Science Foundation of China [11872087]
  3. Beijing Municipal Natural Science Foundation [2182033]
  4. Aeronautical Science Foundation of China [2016ZF51054]
  5. 111 Project [B14009]
  6. Project of the Science and Technology Commission of Military Commission [17-163-12ZT-004-002-01]
  7. Foundation of Shock and Vibration of Engineering Materials and Structures Key Laboratory of Sichuan Province [18kfgk01]
  8. Fundamental Research Funds for the Central Universities [YWF-19-BJ-J-55]

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Developing high-performance electromagnetic interference (EMI) shielding materials has become increasingly important along with the upcoming 5G communication era and the boom of wearable devices. However, the large thickness and poor mechanical properties of most of EMI shielding materials cannot satisfy the above critical requirements. Here, flexible and ultrathin poly(vinylidene fluoride) (PVDF)/MXene/Ni chain composite films are fabricated. Interestingly, by combining quasi-1D Ni chains and 2D MXenes, the average EMI shielding effectiveness of the PVDF/MXene/Ni chain composite films can reach 19.3 dB with only 0.10 mm thickness, and increases to 34.4 dB with 0.36 mm thickness. Besides, the tensile strength, Young's modulus, and toughness of the PVDF/MXene/Ni chain composite films are 41.9 +/- 1.6 MPa, 1.18 +/- 0.007 GPa, and 2.9 +/- 0.08 MJ m(-3), respectively. All of which are better than when using MXenes or Ni chains alone at the same loading. It is attributed to synergistic effects induced by unique 3D network constituted by MXenes and Ni chains. Moreover, the possible synergistic mechanisms for enhanced EMI shielding and mechanical properties are discussed. This work offers a promising solution for EMI shielding challenges in modern smaller and smaller wearable devices.

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