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Multifunctional MXene/FeNi3 heterointerfaces enable remarkable microwave absorption and integrated energy conversion

  • Na Chen*
  • , Jia Xin Li
  • , Zhen Jie Guan
  • , Jian Tang Jiang
  • , Kang Jun Wang
  • , Ye Tang Pan
  • *Corresponding author for this work
  • Shenyang Institute of Chemical Technology
  • School of Materials Science and Engineering, Harbin Institute of Technology
  • Beijing Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

To fulfill the electromagnetic wave absorption (EMA) demands for radar stealth and oxygen evolution reaction (OER) for seawater electrolysis on marine floating wind-power hydrogen production platforms, this study reports the rational design and construction of multifunctional Ti3C2Tx MXene/FeNi3 heterostructures via electrostatic adsorption and subsequent solvothermal reduction. The resulting heterostructures simultaneously achieve high-efficiency tunable EMA, photothermal conversion and greatly enhanced OER performance. Specifically, FeNi3 particles strengthen the synergistic interactions between heterointerface resonance and magnetic coupling, and the tailored heterostructures facilitate multiple scattering, both of them result in matched impedance and optimized electromagnetic attenuation. As expected, the heterointerfaces of MXene/FeNi3-2 display a broad effective absorption bandwidth of 7.47 GHz at 2.04 mm, a remarkable reflection loss of −65.92 dB, and a radar cross-section as low as −45.98 dB·m2. Meanwhile, benefiting from the enhanced localized surface plasmon resonance, the heterointerfaces demonstrate rapid and reversible photothermal response, reaching equilibrium temperatures of 56.7–105.2 °C under optical power densities of 100–200 mW·cm−2 with excellent sustained performance over 6 h. Additionally, outstanding OER activity is achieved with a low overpotential 424 mV and robust long-duration stability over 300 h. This work offers a feasible strategy for high-performance EMA and a new reference for advanced multifunctional materials for marine hydrogen platforms.

Original languageEnglish
Article number168154
JournalApplied Surface Science
Volume751
DOIs
Publication statusPublished - 1 Jan 2027
Externally publishedYes

Keywords

  • Energy conversion
  • Heterointerfaces
  • Magnetic particles
  • Microwave absorption
  • TiCT MXene

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