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基于膦配体的三种碘化锌配合物:合成、结构、光学性质及含时密度泛函理论计算

Three zinc iodide complexes based on phosphane ligands: syntheses, structures, optical properties and TD-DFT calculations.

作者信息

Chen Di, Wang Qiu Hua, Chai Wen Xiang, Song Li

机构信息

Department of Chemistry, Zhejiang Sci-Tech University, Hangzhou 310018, People's Republic of China.

College of Materials Science and Engineering, China Jiliang University, Hangzhou 310018, People's Republic of China.

出版信息

Acta Crystallogr C Struct Chem. 2018 Mar 1;74(Pt 3):342-350. doi: 10.1107/S2053229618002607. Epub 2018 Feb 23.

Abstract

Three zinc iodide complexes based on phosphane ligands, namely diiodidobis(triphenylphosphane-κP)zinc(II), [ZnI(CHP)], (1), diiodidobis[tris(4-methylphenyl)phosphane-κP]zinc(II), [ZnI(CHP)], (2), and [bis(diphenylphosphoryl)methane-κO,O']zinc(II) tetraiodidozinc(II), [Zn(CHOP)][ZnI], (3), have been synthesized and characterized. Single-crystal X-ray diffraction revealed that the structures of (1) and (2) are both mononuclear four-coordinated ZnI complexes containing two monodentate phosphane ligands, respectively. Surprisingly, (2) spontaneously forms an acentric structure, suggesting it might be a potential second-order NLO material. The crystal structure of complex (3) is composed of two parts, namely a [Zn(dppmO)] cation [dppmO is bis(diphenylphosphoryl)methane] and a [ZnI] anion. The UV-Vis absorption spectra, thermal stabilities and photoluminescence spectra of the title complexes have also been studied. Time-dependent density functional theory (TD-DFT) calculations reveal that the low-energy UV absorption and the corresponding light emission both result from halide-ligand charge-transfer (XLCT) excited states.

摘要

合成并表征了三种基于膦配体的碘化锌配合物,即二碘双(三苯基膦-κP)锌(II),[ZnI(CHP)],(1);二碘双[三(4-甲基苯基)膦-κP]锌(II),[ZnI(CHP)],(2);以及[双(二苯基磷酰基)甲烷-κO,O']锌(II)四碘锌(II),[Zn(CHOP)][ZnI],(3)。单晶X射线衍射表明,(1)和(2)的结构均为单核四配位的ZnI配合物,分别含有两个单齿膦配体。令人惊讶的是,(2)自发形成了非中心结构,表明它可能是一种潜在的二阶非线性光学材料。配合物(3)的晶体结构由两部分组成,即一个[Zn(dppmO)]阳离子[dppmO为双(二苯基磷酰基)甲烷]和一个[ZnI]阴离子。还研究了标题配合物的紫外-可见吸收光谱、热稳定性和光致发光光谱。含时密度泛函理论(TD-DFT)计算表明,低能量紫外吸收和相应的光发射均源于卤化物-配体电荷转移(XLCT)激发态。

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