材料科学
气凝胶
小旋翼机
纳米片
纳米技术
纳米孔
导电体
纳米尺度
反射损耗
MXenes公司
复合材料
复合数
纳米流体学
微电子
吸收(声学)
纳米结构
碳纳米管
热的
联轴节(管道)
插层(化学)
导电的
热导率
接口
蚀刻(微加工)
钻石
光电子学
微流控
超材料
分层(地质)
作者
Xiuhong Sun,Kangkang Gao,Jinhu Hu,Zhaolu Qin,Tao Lin,Mingliang Ma,Jiacheng Ma,Fan Wu,Wenhuan Huang,Ye‐Tang Pan
摘要
ABSTRACT Airborne electronic systems operating in extreme environments require lightweight protective materials that combine efficient electromagnetic attenuation, thermal protection, and mechanical robustness. However, conventional aerogel absorbers typically rely on pore engineering at a single length scale, making it difficult to simultaneously optimize these properties. Herein, we develop a decoupled multiscale structural engineering strategy based on a custom‐built freeze‐printing platform, in which pore structures at different length scales are regulated through distinct mechanisms and subsequently integrated into a hierarchical Gyroid architecture spanning from the nanoscale to the millimeter scale. Notably, the amino‐functionalized metal–organic framework employed for nanopore regulation can also intercalate between MXene nanosheets through interactions between its amino groups and the polar surface terminations of MXene, thereby suppressing nanosheet restacking, generating abundant MX@MOF heterointerfaces, and realizing the coupling of structural regulation and functionality. Building on these heterointerfaces, trypan blue directs PPy growth from discrete particles into fibrillar bridges, linking MX@MOF units into continuous conductive pathways enriched with electromagnetic‐loss sites. As a result, the optimized CS‐4 aerogel achieved a minimum reflection loss of −71.5 dB at only 2.45 mm and an effective absorption bandwidth of 6.26 GHz, while maintaining excellent thermal insulation, compressive strength, flame retardancy, and smoke suppression.
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