气凝胶
材料科学
制作
结构材料
反射损耗
吸附
吸收(声学)
复合材料
复合数
多孔性
纳米线
保温
先进复合材料
抗压强度
航空航天
碳化硅
纳米材料
超临界干燥
碳纳米管
微波食品加热
极化(电化学)
纳米颗粒
纳米技术
碳化物
纳米复合材料
异质结
作者
Baojie Zhang,Wanxin Zhi,Jinshuo Duan,Longfei Zhang,Furong Liang,Chen Ma
标识
DOI:10.26599/jac.2025.9221181
摘要
Silicon carbide (SiC) fiber aerogels are promising materials for renewable energy and aerospace applications. However, conventional SiC aerogels often suffer from limitations such as single pore structures, inadequate mechanical strength, and high production costs, which severely restrict their practical application. Here, we designed and fabricated a hierarchical porous SiC microtube/nanowire composite aerogel derived from kapok fibers via an in-situ conversion strategy. This approach directly utilizes kapok hollow fibers to construct the SiC microtubule while simultaneously inducing the self-growth of SiC nanowires, achieving controllable hierarchical pore fabrication in a single step. Compared to conventional methods, this strategy significantly simplifies the fabrication process and enhances multifunctional performance through structural synergy. The unique microtube-nanowire heterostructure confers excellent electromagnetic wave absorption (minimum reflection loss of -56.39 dB, effective absorption bandwidth of 6.04 GHz at 2.0 mm) by enhancing interfacial polarization and optimizing impedance matching. The nanowire bridging effect achieves a compressive strength of 2.85 MPa, surpassing mechanical limits of conventional aerogels. Additionally, the aerogel exhibits superior thermal insulation (0.021 W·m⁻¹·K⁻¹) and pollutant adsorption capacity (45–67 times its weight). This research offers a new approach for developing high-strength, multifunctional SiC aerogels.
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