4.7 Article

Hybridizing polypyrrole chains with laminated and two-dimensional Ti3C2Tx toward high-performance electromagnetic wave absorption

Journal

APPLIED SURFACE SCIENCE
Volume 434, Issue -, Pages 283-293

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.apsusc.2017.10.140

Keywords

Ti3C2Tx MXenes; Polypyrrole; Heterostructure; EM wave absorption

Funding

  1. National Nature Science Foundation of China [51673040, 21676056, 21376051]
  2. Natural Science Foundation of Jiangsu Province [BK20171357]
  3. Prospective Joint Research Project of Jiangsu Province [BY2016076-01]
  4. Fundamental Research Funds for the Central Universities [2242015k30001]
  5. Scientific Innovation Research Foundation of College Graduate in Jiangsu Province [KYLX16_0266]
  6. Priority Academic Program Development of Jiangsu Higher Education Institutions (PADA) [1107047002]
  7. Fund Project for Transformation of Scientific and Technological Achievements of Jiangsu Province of China [BA2016105]

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In this study, multilayer sandwich heterostructural Ti3C2Tx MXenes decorated with polypyrrole chains have been synthesized successfully via HF etching treatment and in-situ chemical oxidative polymerization approach. The hybrids were investigated as EM wave absorbers for the first time. It is found that the composites consisting of 25 wt% Ti3C2Tx/PPy hybrids in a paraffin matrix exhibit a minimum reflection loss of 49.2 dB (similar to 99.99% absorption) at the thickness of 3.2 mm and a maximum effective absorption bandwidth of 4.9 GHz (12.4-17.3 GHz) corresponding to an absorber thickness of 2.0 mm. Additionally, a broad effective absorption bandwidth of 13.7 GHz (4.3-18.0 GHz) can be reached up by adjusting the thickness from 1.5 to 5.0 mm. Furthermore, the highest effective absorption bandwidth of 5.7 GHz can be reached when the mass fraction is 15 wt%. The enhanced comprehensive electromagnetic wave absorption has close correlation with the well-designed heterogeneous multilayered microstructure, generated heterogeneous interfaces, conductive paths, surface functional groups, localized defects and synergistic effect between laminated Ti3C2Tx and conductive polypyrrole network, which significantly improve impedance matching and attenuation abilities. The superior absorbing performance together with strong absorption and broad bandwidth endows the Ti3C2Tx/PPy hybrids with the potential prospect to be advanced EM wave absorbers. (C) 2017 Elsevier B.V. All rights reserved.

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