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多功能细菌纤维素衍生碳杂化气凝胶用于超宽频微波吸收和隔热。

Multifunctional bacterial cellulose‑derived carbon hybrid aerogel for ultrabroad microwave absorption and thermal insulation.

机构信息

Key Laboratory of Molecular Biophysics of the Ministry of Education, College of Life Science and Technology, Huazhong University of Science and Technology 430074 Wuhan, PR China.

Key Laboratory of Molecular Biophysics of the Ministry of Education, College of Life Science and Technology, Huazhong University of Science and Technology 430074 Wuhan, PR China.

出版信息

J Colloid Interface Sci. 2025 Jan;677(Pt B):804-815. doi: 10.1016/j.jcis.2024.08.120. Epub 2024 Aug 21.

Abstract

Carbon aerogel has gained intense attention as one of the most promising microwave absorption materials. It can overcome severe electromagnetic pollution, thanks to its 3D macroscopic structure and superb conductive loss capacity. However, there is still a big challenge to endow multifunctionality to carbon aerogel while maintaining its good electromagnetic wave absorption (EWA) so as to adapt wide practical application. Herein, a novel carbon-based aerogel consisting of Cu and TiO nanoparticles dispersed on carbon nanofiber framework was derived from carbonized bacterial cellulose (CBC) decorated with its mother bacteria via freeze-drying, in situ growth and carbonization strategies. The synthesized carbon-based CBC/Cu/TiO aerogel achieved an excellent EWA performance with a broad effective absorption bandwidth (EAB) of 8.32 GHz. It is attributed to the synergistic loss mechanism from multiple scattering, conductive network loss, interfacial polarization loss and dipolar polarization relaxation. Meanwhile, the obtained aerogel also shows an excellent thermal insulation with a 3-mm-thick sample generating a temperature gradient of over 42 °C at 85 °C and a maximum radar cross-section (RCS) reduction of 23.88 dB m owing to the cellular structure and synergistic effects of multi-components. Therefore, this study proposes a feasible design approach for creating lightweight, effective, and multifunctional CBC-based EWA materials, which offer a new platform to develop ultrabroad electromagnetic wave absorber under the guidance of RCS simulation.

摘要

碳气凝胶作为最有前途的微波吸收材料之一,受到了广泛关注。它具有 3D 宏观结构和卓越的导电损耗能力,可以克服严重的电磁污染。然而,在保持良好的电磁波吸收(EWA)性能的同时,赋予碳气凝胶多功能性仍然是一个巨大的挑战,以适应广泛的实际应用。在此,通过冷冻干燥、原位生长和碳化策略,从碳化细菌纤维素(CBC)上生长的其母体细菌制备了一种由 Cu 和 TiO 纳米粒子分散在碳纤维框架上的新型碳基气凝胶。所合成的基于碳的 CBC/Cu/TiO 气凝胶表现出优异的 EWA 性能,具有 8.32 GHz 的宽有效吸收带宽(EAB)。这归因于多重散射、导电网络损耗、界面极化损耗和偶极子极化弛豫的协同损耗机制。同时,所获得的气凝胶还具有优异的隔热性能,在 85°C 时,3mm 厚的样品产生超过 42°C 的温度梯度,最大雷达截面(RCS)降低 23.88 dB m,这是由于其蜂窝结构和多组分的协同效应。因此,本研究提出了一种可行的设计方法,用于创建轻量、有效和多功能的基于 CBC 的 EWA 材料,为在 RCS 模拟的指导下开发超宽带电磁波吸收器提供了新的平台。

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