| Literature DB >> 34328577 |
Wei Tian1,2, Jinyao Li3, Yifan Liu3, Rashad Ali3, Yang Guo4, Longjiang Deng5, Nasir Mahmood6, Xian Jian7,8,9.
Abstract
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 ~ 3.7 and ~ 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.Entities:
Keywords: Anti-corrosion; Atomic layer deposition; Dual-oxide-shells; Magnetic alloy; Microwave absorption
Year: 2021 PMID: 34328577 PMCID: PMC8324648 DOI: 10.1007/s40820-021-00678-4
Source DB: PubMed Journal: Nanomicro Lett ISSN: 2150-5551