材料科学
微波食品加热
兴奋剂
无定形碳
介孔材料
吸收(声学)
无定形固体
掺杂剂
光电子学
碳纤维
电导率
纳米技术
电介质
化学工程
复合材料
结晶学
催化作用
物理化学
复合数
有机化学
化学
物理
量子力学
工程类
作者
Xueqing Zuo,Yifeng Zhang,Jie Tian,Chen Sun,Ningxuan Wen,Hao Zhang,Chengwei Li,Zeng Fan,Lujun Pan
标识
DOI:10.1002/adfm.202410224
摘要
Abstract The exceptional benefits of structural defects and doped atoms in carbon network regarding electromagnetic properties inspire the design of advanced carbon‐based microwave absorption (MA) materials. However, excessive structural defects decline the physical properties of materials, especially their conductivity. Therefore, it is a great challenge to balance structural defects and doped atoms to optimize conductive behavior for carbon‐based MA materials. The spiral carbon nanocoil (CNC), with coexisting amorphous and polycrystalline carbon structures and moderate conductivity, has significant MA properties but lacks pores and doped atoms. Herein, the amorphous carbon parts with relatively weak C─C bond energies are preferentially oxidized at 500 °C in air atmosphere to create pores and combine O atoms in the bodies of CNCs. Furthermore, the mechanism prioritizing the formation of O doping over defects is discovered. Benefiting from the synergistic interplay of structural defects and O dopants, the O‐enriched porous CNCs demonstrate enhanced conduction and polarization losses than the pure CNCs, realizing a wide effective absorption bandwidth of 7.3 GHz at a filling ratio of only 3 wt.%. Theoretical calculations further support these experimental results. The combination of structural defects and doped atoms may serve as an effective pathway for unlocking tunable dielectric properties of carbon‐based materials.
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