Luo Yi, Ahmad Momin, Schug Alexander, Tsotsalas Manuel
Institute of Functional Interfaces (IFG), Karlsruhe Institute of Technology (KIT), Hermann-von-Helmholtz-Platz 1, D-76344, Eggenstein-Leopoldshafen, Germany.
Steinbuch Centre for Computing, Karlsruhe Institute of Technology (KIT), Hermann-von-Helmholtz-Platz 1, D-76344, Eggenstein-Leopoldshafen, Germany.
Adv Mater. 2019 Jun;31(26):e1901744. doi: 10.1002/adma.201901744. Epub 2019 May 20.
Controlled synthesis across several length scales, ranging from discrete molecular building blocks to size- and morphology-controlled nanoparticles to 2D sheets and thin films and finally to 3D architectures, is an advanced and highly active research field within both the metal-organic framework (MOF) domain and the overall material science community. Along with synthetic progress, theoretical simulations of MOF structures and properties have shown tremendous progress in both accuracy and system size. Further advancements in the field of hierarchically structured MOF materials will allow the optimization of their performance; however, this optimization requires a deep understanding of the different synthesis and processing techniques and an enhanced implementation of material modeling. Such modeling approaches will allow us to select and synthesize the highest-performing structures in a targeted rational manner. Here, recent progress in the synthesis of hierarchically structured MOFs and multiscale modeling and associated simulation techniques is presented, along with a brief overview of the challenges and future perspectives associated with a simulation-based approach toward the development of advanced hierarchically structured MOF materials.
从离散的分子构建块到尺寸和形态可控的纳米颗粒,再到二维薄片和薄膜,最后到三维结构,跨越多个长度尺度的可控合成是金属有机框架(MOF)领域以及整个材料科学界内一个先进且高度活跃的研究领域。随着合成技术的进步,MOF结构和性能的理论模拟在准确性和系统规模方面都取得了巨大进展。分级结构MOF材料领域的进一步发展将使其性能得到优化;然而,这种优化需要深入了解不同的合成和加工技术,并加强材料建模的应用。此类建模方法将使我们能够有针对性地、合理地选择和合成性能最佳的结构。在此,本文介绍了分级结构MOF合成、多尺度建模及相关模拟技术的最新进展,并简要概述了基于模拟方法开发先进分级结构MOF材料所面临的挑战和未来展望。