氯化钠调合沸石咪唑骨架(ZIF-8)及其与CO2相互作用的实验与计算研究

Lita Priandani, Amarilis Aliefa, Oka Pradipta Arjasa, Fajar Inggit Pambudi
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引用次数: 0

摘要

大气中CO2浓度的升高成为功能材料研究的动力之一。无论是为了减少二氧化碳的排放,还是为了增加二氧化碳衍生物的经济价值,二氧化碳的捕获和利用比以往任何时候都更加重要。本研究将Zn2+金属节点与2-甲基咪唑酸配体结合,形成沸石型咪唑酸框架(ZIF-8)材料,合成了金属有机框架(MOFs)。ZIF-8在原位合成过程中加入氯化钠来调节晶体形态,使用水或甲醇作为溶剂。根据x射线衍射图的细化,成功制备了ZIF-8材料,其单位胞参数与现有标准相当接近。红外光谱也证实了ZIF-8的形成,通过Zn2+与2-甲基咪唑酸配体的配位揭示了Zn−N的伸缩振动模式。通过扫描电镜和透射电镜观察,晶体形态呈现出不同的形状,主要形状为菱形十二面体。利用红外光谱技术,结合密度泛函理论和分子动力学等计算技术,研究了ZIF-8与CO2的相互作用,以阐明CO2结合位点的性质。版权所有©2023作者,BCREC集团出版。这是一篇基于CC BY-SA许可(https://creativecommons.org/licenses/by-sa/4.0)的开放获取文章。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Experimental and Computational Study of Zeolitic Imidazole Framework (ZIF-8) Synthesis Modulated with Sodium Chloride and Its Interaction with CO2
The increase of CO2 level in atmosphere becomes one of the driving forces for research on functional materials. Capturing and utilizing of CO2 are more important than ever, both to reduce CO2 emission and to increase the economic value of CO2 derivatives. In this study, synthesis of metal-organic frameworks (MOFs) was conducted by combining Zn2+ metal nodes and 2-methylimidazolate ligand to form zeolitic imidazolate frameworks (ZIF-8) materials. ZIF-8 was synthesised with the addition of sodium chloride to modulate the crystal morphology during the in-situ synthesis, using either water or methanol as the solvent. According to the refinement of the X-ray diffraction pattern, the ZIF-8 materials were successfully prepared and have unit cell parameters that are reasonably close to the available standard. The formation of ZIF-8 is also confirmed by IR spectroscopy, which reveals the stretching vibration mode of Zn−N from the coordination between Zn2+ and 2-methylimidazolate ligand. The crystal morphology exhibits different shape, as observed in SEM and TEM studies, with the dominant shape being a rhombic dodecahedron. The interaction between ZIF-8 and CO2 was investigated via ex-situ IR spectroscopy, combined with several computational techniques such as density functional theory and molecular dynamics, to elucidate the nature of the CO2 binding sites. Copyright © 2023 by Authors, Published by BCREC Group. This is an open access article under the CC BY-SA License (https://creativecommons.org/licenses/by-sa/4.0).
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