4.7 Article

Atomic-Scale Layer-by-Layer Deposition of FeSiAl@ZnO@Al2O3 Hybrid with Threshold Anti-Corrosion and Ultra-High Microwave Absorption Properties in Low-Frequency Bands

Journal

NANO-MICRO LETTERS
Volume 13, Issue 1, Pages -

Publisher

SHANGHAI JIAO TONG UNIV PRESS
DOI: 10.1007/s40820-021-00678-4

Keywords

Atomic layer deposition; Magnetic alloy; Dual-oxide-shells; Microwave absorption; Anti-corrosion

Funding

  1. National Natural Science Foundation of China [51972045, 5197021414]
  2. Fundamental Research Funds for the Chinese Central Universities, China [ZYGX2019J025]
  3. Sichuan Science and Technology Program [2020JDRC0015, 2020JDRC0045]
  4. Sichuan Science and Technology Innovation Talent Project [2021JDRC0021]
  5. RMIT University
  6. RMIT Micro Nano Research Facility (MNRF) in the Victorian node of the Australian National Fabrication Facility (ANFF)
  7. RMIT Microscopy and Microanalysis Facility (RMMF)

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The research introduces a dual-oxide shell to enhance the anti-corrosion properties of magnetic microwave absorbers, leading to improved microwave absorption performance and corrosion resistance. The designed absorber demonstrates record-high microwave absorption in low-frequency bands and significantly increased anti-corrosion capabilities, showing promise for next-generation MAs.
Developing highly efficient magnetic microwave absorbers (MAs) is crucial, and yet challenging for anti-corrosion properties in extremely humid and salt-induced foggy environments. Herein, a dual-oxide shell of ZnO/Al2O3 as a robust barrier to FeSiAl core is introduced to mitigate corrosion resistance. The FeSiAl@ZnO@Al2O3 layer by layer hybrid structure is realized with atomic-scale precision through the atomic layer deposition technique. Owing to the unique hybrid structure, the FeSiAl@ZnO@Al2O3 exhibits record-high microwave absorbing performance in low-frequency bands covering L and S bands with a minimum reflection loss (RLmin) of -50.6 dB at 3.4 GHz. Compared with pure FeSiAl (RLmin of -13.5 dB, a bandwidth of 0.5 GHz), the RLmin value and effective bandwidth of this designed novel absorber increased up to similar to 3.7 and similar to 3 times, respectively. Furthermore, the inert ceramic dual-shells have improved 9.0 times the anti-corrosion property of FeSiAl core by multistage barriers towards corrosive medium and obstruction of the electric circuit. This is attributed to the large charge transfer resistance, increased impedance modulus |Z|(0.01 Hz), and frequency time constant of FeSiAl@ZnO@Al2O3. The research demonstrates a promising platform toward the design of next-generation MAs with improved anti-corrosion properties.

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