Zhang Zishi, Wang Chaohai, Yao Yiyuan, Zhang Hao, Na Jongbeom, Zhou Yujun, Zhu Zhigao, Qi Junwen, Eguchi Miharu, Yamauchi Yusuke, Li Jiansheng
Jiangsu Key Laboratory of Chemical Pollution Control and Resources Reuse, School of Environmental and Biological Engineering, Nanjing University of Science and Technology Nanjing 210094 People's Republic of China
Australian Institute for Bioengineering and Nanotechnology (AIBN) and School of Chemical Engineering, Faculty of Engineering, The University of Queensland Brisbane Queensland 4072 Australia
Chem Sci. 2022 Jul 25;13(32):9159-9164. doi: 10.1039/d2sc02619h. eCollection 2022 Aug 17.
The organized assembly of nanoparticles into complex macroarchitectures opens up a promising pathway to create functional materials. Here, we demonstrate a scalable strategy to fabricate macroarchitectures with high compressibility and elasticity from hollow particle-based carbon nanofibers. This strategy causes zeolitic imidazolate framework (ZIF-8)-polyacrylonitrile nanofibers to assemble into centimetre-sized aerogels (ZIF-8/NFAs) with expected shapes and tunable functions on a large scale. On further carbonization of ZIF-8/NFAs, ZIF-8 nanoparticles are transformed into a hollow structure to form the carbon nanofiber aerogels (CNFAs). The resulting CNFAs integrate the properties of zero-dimensional hollow structures, one-dimensional nanofibers, and three-dimensional carbon aerogels, and exhibit a low density of 7.32 mg cm, high mechanical strength (rapid recovery from 80% strain), outstanding adsorption capacity, and excellent photo-thermal conversion potential. These results provide a platform for the future development of macroarchitectured assemblies from nanometres to centimetres and facilitate the design of multifunctional materials.
将纳米颗粒有组织地组装成复杂的宏观结构为制造功能材料开辟了一条充满希望的途径。在此,我们展示了一种可扩展的策略,用于由中空颗粒基碳纳米纤维制造具有高压缩性和弹性的宏观结构。该策略使沸石咪唑酯骨架(ZIF-8)-聚丙烯腈纳米纤维大规模组装成具有预期形状和可调功能的厘米级气凝胶(ZIF-8/NFAs)。在ZIF-8/NFAs进一步碳化后,ZIF-8纳米颗粒转变为中空结构,形成碳纳米纤维气凝胶(CNFAs)。所得的CNFAs整合了零维中空结构、一维纳米纤维和三维碳气凝胶的特性,并表现出7.32 mg cm的低密度、高机械强度(从80%应变快速恢复)、出色的吸附能力和优异的光热转换潜力。这些结果为从纳米到厘米的宏观结构组件的未来发展提供了一个平台,并促进了多功能材料的设计。