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多功能纳米组装多孔分级材料及其用于集成微波吸收、电磁干扰屏蔽和储能的器件。

Multifunctional Nanocrystalline-Assembled Porous Hierarchical Material and Device for Integrating Microwave Absorption, Electromagnetic Interference Shielding, and Energy Storage.

机构信息

School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, 100081, China.

School of Mechatronical Engineering, Shanxi Datong University, Datong, 037003, China.

出版信息

Small. 2023 Jun;19(25):e2208101. doi: 10.1002/smll.202208101. Epub 2023 Mar 18.

DOI:10.1002/smll.202208101
PMID:36932880
Abstract

Multifunctional applications including efficient microwave absorption and electromagnetic interference (EMI) shielding as well as excellent Li-ion storage are rarely achieved in a single material. Herein, a multifunctional nanocrystalline-assembled porous hierarchical NiO@NiFe O /reduced graphene oxide (rGO) heterostructure integrating microwave absorption, EMI shielding, and Li-ion storage functions is fabricated and tailored to develop high-performance energy conversion and storage devices. Owing to its structural and compositional advantages, the optimized NiO@NiFe O /15rGO achieves a minimum reflection loss of -55 dB with a matching thickness of 2.3 mm, and the effective absorption bandwidth is up to 6.4 GHz. The EMI shielding effectiveness reaches 8.69 dB. NiO@NiFe O /15rGO exhibits a high initial discharge specific capacity of 1813.92 mAh g , which reaches 1218.6 mAh g after 289 cycles and remains at 784.32 mAh g after 500 cycles at 0.1 A g . In addition, NiO@NiFe O /15rGO demonstrates a long cycling stability at high current densities. This study provides an insight into the design of advanced multifunctional materials and devices and provides an innovative method of solving current environmental and energy problems.

摘要

多功能应用,包括高效微波吸收和电磁干扰(EMI)屏蔽以及优异的锂离子存储,很少能在单一材料中实现。在此,我们制备并定制了一种多功能纳米晶组装多孔分级 NiO@NiFe O/还原氧化石墨烯(rGO)异质结构,集成了微波吸收、EMI 屏蔽和锂离子存储功能,以开发高性能的能量转换和存储设备。由于其结构和组成优势,优化的 NiO@NiFe O/15rGO 在 2.3 毫米的匹配厚度下实现了最小反射损耗为-55dB,有效吸收带宽高达 6.4GHz。EMI 屏蔽效能达到 8.69dB。NiO@NiFe O/15rGO 表现出高的初始放电比容量为 1813.92mAh g,在 0.1Ag 下经过 289 次循环后达到 1218.6mAh g,经过 500 次循环后仍保持在 784.32mAh g。此外,NiO@NiFe O/15rGO 在高电流密度下表现出长的循环稳定性。本研究为先进多功能材料和器件的设计提供了思路,并为解决当前环境和能源问题提供了一种创新方法。

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