Sun Zhengyang, Zhao Kongli, Yang Haisen, Liang Jingjing, Chen Zixu, Feng Junzong, Jiang Yonggang, Li Liangjun, Hu Yijie, Feng Jian
Science and Technology on Advanced Ceramic Fibers and Composites Laboratory, College of Aerospace Science and Engineering, National University of Defense Technology, Changsha 410073, P.R. China.
Polymer Materials and Engineering, College of Materials Science and Engineering, Donghua University, 2999 North Renmin Road, Shanghai 201620, P.R. China.
Langmuir. 2024 Sep 17;40(37):19304-19315. doi: 10.1021/acs.langmuir.4c02720. Epub 2024 Aug 30.
Aerogels are three-dimensional nanomaterials with low thermal conductivity, low density, high specific surface area, and high porosity. They have demonstrated remarkable performance advantages in thermal insulation, catalysis, and adsorption in recent years. However, their inherent brittleness and weak skeletal structure limit their applications. In order to improve the resilience and expand the capabilities of aerogels, it is essential to optimize their intrinsic properties. The chemical vapor deposition (CVD) method offers a number of advantages, including fine control, high selectivity, and the ability to modify the aerogel in both the outer surface and the inner layer. This approach allows for reinforcement of the gel skeleton while achieving functionalization. This paper reviews the research progress of aerogel modification by the CVD method with a focus on hydrophobic modification, structural improvement, antioxidant modification, catalytic modification, etc. In light of the current demand for aerogel applications and the difficulties encountered in modifying aerogels, this review proposes future research directions for aerogel modification by CVD.
气凝胶是具有低导热性、低密度、高比表面积和高孔隙率的三维纳米材料。近年来,它们在隔热、催化和吸附方面展现出显著的性能优势。然而,其固有的脆性和薄弱的骨架结构限制了它们的应用。为了提高气凝胶的弹性并扩展其功能,优化其固有特性至关重要。化学气相沉积(CVD)方法具有许多优点,包括精确控制、高选择性以及能够对外表面和内层气凝胶进行改性。这种方法在实现功能化的同时能够增强凝胶骨架。本文综述了采用CVD方法对气凝胶进行改性的研究进展,重点关注疏水改性、结构改进、抗氧化改性、催化改性等。鉴于当前对气凝胶应用的需求以及气凝胶改性中遇到的困难,本综述提出了通过CVD对气凝胶进行改性的未来研究方向。