Wang Yifan, Ma Dehua, Deng Zhezhe, Peng Ying, Wang Youmei, Liu Benxue, Wang Xinqiang, Zhang Guanghui, Zhu Luyi, Xu Dong
State Key Laboratory of Crystal Materials and Institute of Crystal Materials, Shandong University, Jinan 250100, P. R. China.
ACS Appl Mater Interfaces. 2023 Sep 6;15(35):41880-41891. doi: 10.1021/acsami.3c07830. Epub 2023 Aug 25.
Recent advancements have introduced anisotropic structures, particularly 2D nanosheets, into aerogels, resulting in unique morphologies and exceptional properties that differ from those assembled by isotropic nanoparticles. However, exploration of the distinct porous networks and the resulting properties is limited. We focus on rare earth yttria (YO) aerogels as a case in point and demonstrate the synthesis of aerogels with nanosheet and nanoparticle assemblies using elaborative sol-gel chemistry. With the aid of X-ray computed tomography, three-dimensional visualizations of the aerogels provide relative compressive views of the porous network, revealing that the YO aerogel assembled by nanosheets possesses a hierarchical pore structure characterized by uneven pore distribution, particularly the presence of macropores throughout; in contrast, these consist of nanoparticles exhibiting a relative uniform pore distribution. High-temperature examinations indicate that the nanosheet aerogels are much more stable with a specific surface area of 64 m·g after being exposed at 1300 °C; meanwhile, the aerogels present durable and efficient thermal insulation performances. The exceptional thermal properties are attributed to the synergistic effects of the nanosheets' crystalline nature and the hierarchical porous network. The nanosheet YO aerogel also exhibited superior luminescent emission characteristics, further enhancing its potential for various applications. Our findings provide further insights into optimization of the microstructures in nanoporous aerogels, particularly through the utilization of anisotropic nanosheets.
最近的进展已将各向异性结构,特别是二维纳米片,引入气凝胶中,从而产生了与由各向同性纳米颗粒组装而成的气凝胶不同的独特形态和优异性能。然而,对独特的多孔网络及其产生的性能的探索有限。我们以稀土氧化钇(YO)气凝胶为例进行研究,并展示了利用精细的溶胶-凝胶化学合成具有纳米片和纳米颗粒组装体的气凝胶。借助X射线计算机断层扫描,气凝胶的三维可视化提供了多孔网络的相对压缩视图,揭示了由纳米片组装而成的YO气凝胶具有分级孔隙结构,其特征是孔隙分布不均匀,特别是贯穿其中存在大孔;相比之下,由纳米颗粒组成的气凝胶孔隙分布相对均匀。高温测试表明,纳米片气凝胶在1300°C下暴露后具有更高的稳定性,比表面积为64 m²·g;同时,这些气凝胶具有持久且高效的隔热性能。优异的热性能归因于纳米片的晶体性质和分级多孔网络的协同效应。纳米片YO气凝胶还表现出优异的发光发射特性,进一步增强了其在各种应用中的潜力。我们的研究结果为优化纳米多孔气凝胶的微观结构提供了进一步的见解,特别是通过利用各向异性纳米片。