| Literature DB >> 34755916 |
Zhengchen Wu1, Han-Wen Cheng1, Chen Jin1, Bintong Yang1, Chunyang Xu1, Ke Pei1, Huibin Zhang1, Ziqi Yang1, Renchao Che1.
Abstract
Electromagnetic (EM) wave absorption materials possess exceptionally high EM energy loss efficiency. With vigorous developments in nanotechnology, such materials have exhibited numerous advanced EM functions, including radiation prevention and antiradar stealth. To achieve improved EM performance and multifunctionality, the elaborate control of microstructures has become an attractive research direction. By designing them as core-shell structures with different dimensions, the combined effects, such as interfacial polarization, conduction networks, magnetic coupling, and magnetic-dielectric synergy, can significantly enhance the EM wave absorption performance. Herein, the advances in low-dimensional core-shell EM wave absorption materials are outlined and a selection of the most remarkable examples is discussed. The derived key information regarding dimensional design, structural engineering, performance, and structure-function relationship are comprehensively summarized. Moreover, the investigation of the cutting-edge mechanisms is given particular attention. Additional applications, such as oxidation resistance and self-cleaning functions, are also introduced. Finally, insight into what may be expected from this rapidly expanding field and future challenges are presented.Entities:
Keywords: core-shell structures; electromagnetic wave absorption; low-dimensional materials; multifunctional devices
Year: 2022 PMID: 34755916 DOI: 10.1002/adma.202107538
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849