化学
卤化物
碘化物
溴化物
晶体结构
硫脲
无机化学
溶剂
吸收光谱法
离子
结晶学
氯化物
配体(生物化学)
铜
光化学
分子
吸收(声学)
结晶
吸光度
配位复合体
超分子化学
溶剂变色
溶剂效应
高分子化学
六氟磷酸盐
锌
作者
Andrey Kuzovlev,Mikhail D. Zybalov,Semyon V. Kharin,Stepan S. Burlakov,Alexander G. Martynov,Alexey S. Kubasov,Владимир В. Чернышев,В. А. Тафеенко,L. A. Aslanov,Vladimir S. Tyurin,Sergey Dunaev
标识
DOI:10.1021/acs.inorgchem.5c04334
摘要
A series of copper(I) halide complexes coordinated by a cyclic thiourea ligand featuring methyl, acetyl, and m -nitrophenyl substituents has been synthesized and structurally elucidated. These complexes were studied using a combination of X-ray single-crystal and powder diffraction, IR, NMR, and UV–vis spectroscopy, alongside DFT calculations. The results revealed a remarkable structural diversity dictated by the halide anion and the solvent used. Copper(I) chloride and bromide form mononuclear complexes with a CuHalL 2 composition, while copper(I) iodide forms polynuclear complexes in a 1:1 stoichiometry, exhibiting a unique polymorphism. CuI forms complexes with both polymeric chains and cyclic structures, depending on the solvent used for synthesis and crystallization. DFT calculations were used to characterize the molecular structure and absorption spectra of the complexes. Application of simplified TD-DFT approximation allowed us to assign UV–vis absorbance bands to metal-to-ligand charge transfer (MLCT) transitions. These findings demonstrate a powerful approach to controlling the nuclearity and architecture of copper(I) coordination complexes through variations in anions and crystallization conditions.
科研通智能强力驱动
Strongly Powered by AbleSci AI