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缓冲配位调制作为控制各向异性金属有机骨架中晶体形态和分子扩散的一种手段。

Buffered Coordination Modulation as a Means of Controlling Crystal Morphology and Molecular Diffusion in an Anisotropic Metal-Organic Framework.

机构信息

Department of Chemical and Biomolecular Engineering, University of California, Berkeley, Berkeley, California 94720, United States.

Department of Chemistry, University of California, Berkeley, Berkeley, California 94720, United States.

出版信息

J Am Chem Soc. 2021 Apr 7;143(13):5044-5052. doi: 10.1021/jacs.1c00136. Epub 2021 Mar 30.

Abstract

Significant advances have been made in the synthesis of chemically selective environments within metal-organic frameworks, yet materials development and industrial implementation have been hindered by the inability to predictively control crystallite size and shape. One common strategy to control crystal growth is the inclusion of coordination modulators, which are molecular species designed to compete with the linker for metal coordination during synthesis. However, these modulators can simultaneously alter the pH of the reaction solution, an effect that can also significantly influence crystal morphology. Herein, noncoordinating buffers are used to independently control reaction pH during metal-organic framework synthesis, enabling direct interrogation of the role of the coordinating species on crystal growth. We demonstrate the efficacy of this strategy in the synthesis of low-dispersity single-crystals of the framework Co(dobdc) (dobdc= 2,5-dioxido-1,4-benzenedicarboxylate) in a pH 7-buffered solution using cobalt(II) acetate as the metal source. Density functional theory calculations reveal that acetate competitively binds to Co during crystallization, and by using a series of cobalt(II) salts with carboxylate anions of varying coordination strength, it is possible to control crystal growth along the -direction. Finally, we use zero length column chromatography to show that crystal morphology has a direct impact on guest diffusional path length for the industrially important hydrocarbon -xylene. Together, these results provide molecular-level insight into the use of modulators in governing crystallite morphology and a powerful strategy for the control of molecular diffusion rates within metal-organic frameworks.

摘要

在金属有机骨架中合成化学选择性环境方面已经取得了重大进展,但由于无法预测性地控制微晶的大小和形状,材料的开发和工业应用受到了阻碍。控制晶体生长的一种常见策略是包含配位调节剂,这些调节剂是设计用于在合成过程中与配体竞争金属配位的分子物种。然而,这些调节剂也可以同时改变反应溶液的 pH 值,这种效应也会显著影响晶体形态。在此,非配位缓冲剂被用于在金属有机骨架合成过程中独立控制反应 pH 值,从而能够直接探究配位物种对晶体生长的作用。我们展示了这种策略在使用乙酸钴作为金属源,在 pH 7 缓冲溶液中合成低分散度单晶 Co(dobdc)(dobdc=2,5-二氧代-1,4-苯二甲酸根)中的有效性。密度泛函理论计算表明,在结晶过程中乙酸根与 Co 竞争结合,通过使用一系列具有不同配位强度的羧酸根阴离子的钴(II)盐,可以控制晶体沿方向生长。最后,我们使用零长度柱色谱法表明,晶体形态对工业上重要的烃 -二甲苯的客体扩散路径长度有直接影响。这些结果共同提供了关于调节剂在控制微晶形态方面的使用的分子水平的见解,以及一种控制金属有机骨架内分子扩散速率的强大策略。

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