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Molybdenum blue preassembly strategy to design bimetallic Fe_(0.54)Mo_(0.73)/Mo_(2)C@C for tuneable and low-frequency electromagnetic wave absorption
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作者 Peng He Runze Ma +5 位作者 Chen Li Ling Ran Wentao Yuan Yuyang Han Lianwen Deng Jun Yan 《Inorganic Chemistry Frontiers》 2022年第9期1931-1942,共12页
Advanced electromagnetic wave absorption nanomaterials can play an important role in addressing the issue of increasing electromagnetic pollution in the wireless communication field.Herein,a series of coralloid bimeta... Advanced electromagnetic wave absorption nanomaterials can play an important role in addressing the issue of increasing electromagnetic pollution in the wireless communication field.Herein,a series of coralloid bimetallic Fe_(0.54)Mo_(0.73)/Mo_(2)C@C(FMC)composites synthesized by a molybdenum blue preassembly strategy is presented as low-frequency electromagnetic wave absorbers with tunable frequency for the first time.Molybdenum blue,an ideal platform for molecular preassembly,retained abundant interfaces during the process of transformation in a confined space and promoted interfacial polarization,while bimetallic Fe_(0.54)Mo_(0.73) particles significantly improved the electromagnetic wave absorption properties of Mo_(2)C@C(MC).The minimum reflection loss(RL)continuously moved from a high-frequency region(Ku band)to a low-frequency region(S band)as the content of Fe_(0.54)Mo_(0.73) particles increased.The optimized FMC-5 exhibited an excellent electromagnetic wave absorption performance with a minimum RL value of−48.91 dB at 4.08 GHz.This work not only provides a deeper insight into designing high-performance electromagnetic wave absorbers with tunable frequency,but also offers a framework for the exploration of preparing polyoxometalate-functionalized derivative materials by a preassembly strategy. 展开更多
关键词 coralloid bimetallic electromagnetic wave absorption molybdenum blue preassembly strategy preassembly strategy molybdenum blue molecular preassemblyretained bimetallic Fe Mo Mo C C advanced electromagnetic wave absorption nanomaterials
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