沸石咪唑盐骨架
密度泛函理论
电子结构
带隙
配体(生物化学)
X射线光电子能谱
锌
材料科学
结晶学
咪唑酯
单独一对
化学
无机化学
计算化学
纳米技术
金属有机骨架
物理化学
分子
化学工程
有机化学
光电子学
吸附
工程类
受体
生物化学
作者
Joshua Edzards,Holger‐Dietrich Saßnick,Ana Guilherme Buzanich,Ana M. Valencia,Franziska Emmerling,Sebastian Beyer,Caterina Cocchi
标识
DOI:10.1021/acs.jpcc.3c06054
摘要
High Resolution Image Download MS PowerPoint Slide Due to their favorable properties and high porosity, zeolitic imidazolate frameworks (ZIFs) have recently received much limelight for key technologies such as energy storage, optoelectronics, sensorics, and catalysis. Despite widespread interest in these materials, fundamental questions regarding the zinc coordination environment remain poorly understood. By focusing on zinc(II)2-methylimidazolate (ZIF-8) and its tetrahedrally coordinated analogues with Br-, Cl-, and H-substitution in the 2-ring position, we aim to clarify how variations in the local environment of Zn impact the charge distribution and the electronic properties of these materials. Our results from density-functional theory confirm the presence of a Zn coordinative bond with a large polarization that is quantitatively affected by different substituents on the organic ligand. Moreover, our findings suggest that the variations in the Zn coordination induced by the functionalization have a negligible effect on the electronic structure of the considered compounds. On the other hand, halogen terminations of the ligands lead to distinct electronic contributions in the vicinity of the frontier region which ultimately reduce the band gap size by a few hundred millielectron volts. Experimental results obtained from X-ray absorption spectroscopy (Zn K -edge) confirm the trends predicted by theory and, together with them, contribute to a better understanding of the structure–property relationships that are needed to tailor ZIFs for target applications.
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