Wang Xin, Chen Xiaoming, Wang Baichuan, He Qingyuan, Cao Jincao, Zhu Ye, Su Kewei, Yan Huiyi, Sun Pengsong, Li Runlang, Zhang Jie, Shao Jinyou
Micro- and Nanotechnology Research Center, State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an, 710049, China.
XJTU-POLIMI Joint School of Design and Innovation, Xi'an Jiaotong University, Xi'an, 710049, China.
Small. 2025 Jul;21(26):e2412744. doi: 10.1002/smll.202412744. Epub 2025 Feb 21.
Aerogels with porous structures offer an attractive approach to modulating electromagnetic parameters and enhancing electromagnetic wave (EMW) absorption performance. However, conventional aerogels are limited by their single-scale pore size and fixed orientation, which constrain their EMW absorption capabilities. This study introduces aerogels with dual-scale pores and dual-network structure constructed via constant-temperature freezing and secondary-infusion freezing method. Multiscale aerogels with both micrometer- and submillimeter-scale pores are constructed when the TiCT MXene and thermoplastic polyurethane solution is frozen and dried at a specific temperature, leading to an ultra-wide effective absorption bandwidth (EAB) reaching 10.41 GHz in the vertical direction. Furthermore, to address the poor EMW absorption in the parallel direction, a secondary infusion freezing method is applied to form an aerogel with a dual-network structure, which forms reflective interfaces perpendicular to the incident EMW in various directions. This adjustment enhances the EAB in the parallel direction from 1.58 to 5.93 GHz, marking a 275.32% enhancement, while the EAB in the vertical incident direction reaches 8.08 GHz. This design strategy overcomes the limitations of structural scale and arrangement direction, enriching the attenuation mechanisms of the absorber, while effectively reducing sensitivity to the direction of incoming EMW, offering new insights for designing efficient EMW absorbers.
具有多孔结构的气凝胶为调制电磁参数和增强电磁波(EMW)吸收性能提供了一种有吸引力的方法。然而,传统气凝胶受限于其单一尺度的孔径和固定的取向,这限制了它们的EMW吸收能力。本研究介绍了通过恒温冷冻和二次注入冷冻法构建的具有双尺度孔隙和双网络结构的气凝胶。当TiCT MXene和热塑性聚氨酯溶液在特定温度下冷冻干燥时,构建出具有微米级和亚毫米级孔隙的多尺度气凝胶,在垂直方向上实现了高达10.41 GHz的超宽有效吸收带宽(EAB)。此外,为了解决平行方向上较差的EMW吸收问题,采用二次注入冷冻法形成具有双网络结构的气凝胶,该结构在各个方向上形成垂直于入射EMW的反射界面。这种调整将平行方向上的EAB从1.58 GHz提高到5.93 GHz,提高了275.32%,而垂直入射方向上的EAB达到8.08 GHz。这种设计策略克服了结构尺度和排列方向的限制,丰富了吸收体的衰减机制,同时有效降低了对入射EMW方向的敏感性,为设计高效EMW吸收体提供了新的思路。