TY - JOUR
T1 - Constructing porous CoFe2O4-Co3Fe7@C nanoflakes with tunable Co3Fe7 ratio for wideband microwave absorption at thin matching thickness
AU - Cao, Boyuan
AU - Fu, Yonggang
AU - Chen, Diancheng
AU - Wang, Xiangyu
AU - Zhu, Hongsong
AU - Liu, Tong
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/8/1
Y1 - 2025/8/1
N2 - The flake-like magnetic materials with intrinsic anisotropy show promise for electromagnetic absorption, however, their absorption performance remains challenged by impedance mismatch and high matching thickness caused by a lack of reasonable composition and structure design. This work synthesized the novel porous CoFe2O4-Co3Fe7@C nanoflakes (NFs) by the hydrothermal method and hydrogen reduction. The CoFe2O4@C composite with a carbon-coated core-shell structure was synthesized via a dopamine-mediated approach and high-temperature calcination, followed by precisely controlled hydrogen reduction at varying temperatures to fabricate porous CoFe2O4-Co3Fe7@C NFs with tunable Co3Fe7 phase content. Notably, samples reduced at 300 °C achieved minimum reflection loss (RLmin) values of −119.7 dB, with thin matching thicknesses of 1.8 mm. Meanwhile, it exhibited maximum effective absorption bandwidths (EAB) of 9.2 GHz, significantly superior to most CoFe-based absorbers. The distinctive flake-like morphology and porous structures, coupled with abundant heterogeneous interfaces brought by the presence of CoFe2O4 and Co3Fe7 phase facilitate multiple polarization mechanisms, enhancing dielectric loss, which, together with well-matched magnetic losses enhanced by the Co3Fe7 phase, significantly augments the absorption performance. This study highlights the potential of CoFe2O4-Co3Fe7@C NFs as promising candidates for high-efficiency microwave absorbers and proposes novel design strategies for developing broadband microwave absorbers with thin matching thickness.
AB - The flake-like magnetic materials with intrinsic anisotropy show promise for electromagnetic absorption, however, their absorption performance remains challenged by impedance mismatch and high matching thickness caused by a lack of reasonable composition and structure design. This work synthesized the novel porous CoFe2O4-Co3Fe7@C nanoflakes (NFs) by the hydrothermal method and hydrogen reduction. The CoFe2O4@C composite with a carbon-coated core-shell structure was synthesized via a dopamine-mediated approach and high-temperature calcination, followed by precisely controlled hydrogen reduction at varying temperatures to fabricate porous CoFe2O4-Co3Fe7@C NFs with tunable Co3Fe7 phase content. Notably, samples reduced at 300 °C achieved minimum reflection loss (RLmin) values of −119.7 dB, with thin matching thicknesses of 1.8 mm. Meanwhile, it exhibited maximum effective absorption bandwidths (EAB) of 9.2 GHz, significantly superior to most CoFe-based absorbers. The distinctive flake-like morphology and porous structures, coupled with abundant heterogeneous interfaces brought by the presence of CoFe2O4 and Co3Fe7 phase facilitate multiple polarization mechanisms, enhancing dielectric loss, which, together with well-matched magnetic losses enhanced by the Co3Fe7 phase, significantly augments the absorption performance. This study highlights the potential of CoFe2O4-Co3Fe7@C NFs as promising candidates for high-efficiency microwave absorbers and proposes novel design strategies for developing broadband microwave absorbers with thin matching thickness.
KW - CoFe alloy
KW - CoFeO
KW - Impedance matching
KW - Microwave absorption
KW - Nanoflakes
UR - https://www.scopus.com/pages/publications/105007037607
U2 - 10.1016/j.cej.2025.164379
DO - 10.1016/j.cej.2025.164379
M3 - 文章
AN - SCOPUS:105007037607
SN - 1385-8947
VL - 517
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 164379
ER -