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定向分级金属有机框架异质结构的选择性外延生长

Selective Epitaxial Growth of Oriented Hierarchical Metal-Organic Framework Heterostructures.

作者信息

Zhao Meiting, Chen Junze, Chen Bo, Zhang Xiao, Shi Zhenyu, Liu Zhengqing, Ma Qinglang, Peng Yongwu, Tan Chaoliang, Wu Xue-Jun, Zhang Hua

机构信息

Center for Programmable Materials, School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore.

Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Department of Chemistry, Institute of Molecular Aggregation Science, Tianjin University, Tianjin 300072, China.

出版信息

J Am Chem Soc. 2020 May 13;142(19):8953-8961. doi: 10.1021/jacs.0c02489. Epub 2020 May 1.

Abstract

Metal-organic framework (MOF) heterostructures have shown promising applications in gas adsorption, gas separation, catalysis, and energy, arising from the synergistic effect of each component. However, owing to the difficulty in controlling the size, shape, nucleation, and growth of MOFs, it remains a great challenge to construct MOF heterostructures with precisely controlled orientation, morphology, dimensionality, and spatial distribution of each component. Here, we report a seeded epitaxial growth method to prepare a series of hierarchical MOF heterostructures by engineering the structures, sizes, dimensionalities, morphologies, and lattice parameters of both MOF seeds and the secondary MOFs. In these heterostructures, PCN-222 (also known as MOF-545) nanorods selectively grow along the major axis of the ellipsoid-like PCN-608 nanoparticles, on the two end facets of the hexagonal prism-like NU-1000 nanorods, and on the two basal planes of the hexagonal PCN-134 nanoplates, while Zr-BTB nanosheets selectively grow on the six edge facets of PCN-134 nanoplates. The selective epitaxial growth of MOFs opens the way to synthesize different hierarchical heterostructures with tunable architectures and dimensionalities, which could process various promising applications.

摘要

金属有机框架(MOF)异质结构由于各组分的协同效应,在气体吸附、气体分离、催化和能源领域展现出了广阔的应用前景。然而,由于难以控制MOF的尺寸、形状、成核和生长,构建具有精确可控的各组分取向、形态、维度和空间分布的MOF异质结构仍然是一个巨大的挑战。在此,我们报道了一种种子外延生长方法,通过设计MOF种子和次级MOF的结构、尺寸、维度、形态和晶格参数,制备了一系列分级MOF异质结构。在这些异质结构中,PCN-222(也称为MOF-545)纳米棒选择性地沿着类椭球形PCN-608纳米颗粒的主轴生长,在六棱柱形NU-1000纳米棒的两个端面以及六方PCN-134纳米片的两个底面生长,而Zr-BTB纳米片则选择性地在PCN-134纳米片的六个边缘面上生长。MOF的选择性外延生长为合成具有可调结构和维度的不同分级异质结构开辟了道路,这些异质结构可用于各种有前景的应用。

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