Citation:
Jun Wang, Xinxing Li, Yibo Wang, Yafei Mu, Xiaoming Guo, Di Lan, Dashuang Wang, Haifeng Li. 氟碳门控-多级异质界面协同驱动复合泡沫全X波段微波吸收[J]. Acta Physico-Chimica Sinica,
;2026, 42(11): 100405.
doi:
10.1016/j.actphy.2026.100405
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在通信和雷达隐身应用中,微波吸收材料亟需在有限厚度下实现高效衰减与稳定运行。然而,连续导电网络或高含量损耗相虽然能够增强电磁衰减,却容易因表面介电响应过高而导致阻抗失配;而单纯采用低极性聚合物进行包覆,又可能削弱内部活性界面,从而难以兼顾电磁波入射与能量转化。针对这一问题,本研究提出一种“氟碳门控-埋藏界面耗散”策略,构筑了由聚四氟乙烯(polytetrafluoroethylene,PTFE)/聚乙烯醇(poly(vinyl alcohol),PVA)基体、短切碳纤维(carbon fibers,CFs)和氧化钴微区(CoOx)组成的多孔复合泡沫,以下简称PPCFCs。通过在酸化短切碳纤维表面固定Co2+前驱体、PTFE/PVA发泡以及N2/空气分步热重构,所得复合材料形成了富氟表面组成,以及内部嵌有局部分散CoOx/CFs相关纳米晶微区的低有序碳质基体。氟碳表面有助于缓解空气/材料界面处的阻抗突变并降低液相润湿,而多孔骨架则能够延长电磁波的传播路径。在材料内部,非贯通的CFs微电流单元与CoOx纳米微区协同诱导受限电荷迁移、多级极化弛豫及辅助磁响应。最优样品PPCFC-3在厚度为2.8 mm时获得-52.61 dB的最小反射损耗,并在厚度为3.4 mm时实现X波段的有效覆盖。同时,该材料表现出较高的表观疏水性,并能够有效阻滞腐蚀介质的渗入。本研究通过表面阻抗调控和内部界面耗散的协同效应,为优化多孔微波吸收材料提供了一种空间分区设计方法。
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