TY - JOUR
T1 - Two-dimensional confinement engineering of SiO2 nanosheets supported nano-cobalt for high-efficiency microwave absorption
AU - Hao, Zhiwang
AU - Zhou, Jie
AU - Liu, Dong
AU - Zhang, Zi
AU - Zhang, Tianrong
AU - Sun, Jiqiang
AU - Xu, Jun
AU - Yang, Naitao
AU - Wu, Hongjing
N1 - Publisher Copyright:
© 2023 Elsevier B.V.
PY - 2023/10/1
Y1 - 2023/10/1
N2 - Advanced electromagnetic (EM) absorbers containing magnetic and dielectric components have garnered substantial attention due to rapid expansion of wireless communication equipment. However, the EM absorbing performance of magnetic materials is greatly hindered by the substantial decrease in permeability at gigahertz frequencies, commonly referred to the Snoek limit. Confinement engineering provides effective strategy for precisely modulating particle size in a confined region to enhance the surface anisotropy and thereby surpass the Snoek limit. Herein, a novel space-confined strategy is proposed to develop two-dimensional (2D) SiO2 nanosheets that involves manipulating the topological exfoliation of CaSi2 with CoCl2 and thereafter high-temperature reduction. The resulting SiO2 supported nano-Co (Co-2DSiO2) heterostructure exhibits uniform dispersion and nearly single domain size. Contributing to the magnetic-dielectric synergistic effect, fascinating EM properties can be achieved by regulating the size of nano-Co at varied temperatures, and the Co-2DSiO2 delivers the optimal reflection loss of –51.6 dB at 2.5 mm and the effective absorption bandwidth of 4.6 GHz. Electronic structures of Co-2DSiO2 were simulated by theoretical calculation, further verifying the potential mechanism of enhanced dielectric loss and analyzing the formation of heterostructure. The proposed confinement strategy lays the groundwork for the development of advanced absorbers and provides a universal approach for other metal-based SiO2 nanosheets with tunable structures.
AB - Advanced electromagnetic (EM) absorbers containing magnetic and dielectric components have garnered substantial attention due to rapid expansion of wireless communication equipment. However, the EM absorbing performance of magnetic materials is greatly hindered by the substantial decrease in permeability at gigahertz frequencies, commonly referred to the Snoek limit. Confinement engineering provides effective strategy for precisely modulating particle size in a confined region to enhance the surface anisotropy and thereby surpass the Snoek limit. Herein, a novel space-confined strategy is proposed to develop two-dimensional (2D) SiO2 nanosheets that involves manipulating the topological exfoliation of CaSi2 with CoCl2 and thereafter high-temperature reduction. The resulting SiO2 supported nano-Co (Co-2DSiO2) heterostructure exhibits uniform dispersion and nearly single domain size. Contributing to the magnetic-dielectric synergistic effect, fascinating EM properties can be achieved by regulating the size of nano-Co at varied temperatures, and the Co-2DSiO2 delivers the optimal reflection loss of –51.6 dB at 2.5 mm and the effective absorption bandwidth of 4.6 GHz. Electronic structures of Co-2DSiO2 were simulated by theoretical calculation, further verifying the potential mechanism of enhanced dielectric loss and analyzing the formation of heterostructure. The proposed confinement strategy lays the groundwork for the development of advanced absorbers and provides a universal approach for other metal-based SiO2 nanosheets with tunable structures.
KW - Confinement engineering
KW - Microwave absorption
KW - Synergistic effect
KW - Two-dimensional nanosheets
UR - http://www.scopus.com/inward/record.url?scp=85167617461&partnerID=8YFLogxK
U2 - 10.1016/j.cej.2023.145296
DO - 10.1016/j.cej.2023.145296
M3 - 文章
AN - SCOPUS:85167617461
SN - 1385-8947
VL - 473
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 145296
ER -