Facultad de Ciencias Básicas and Universidad Tecnológica de Bolívar, Campus Tecnológico s/n, 131001 Cartagena, Colombia.
Departamento de Química Física, Universidad de Sevilla, c/Prof. García González and s/n, 41012 Sevilla, Spain.
Molecules. 2019 Mar 19;24(6):1088. doi: 10.3390/molecules24061088.
Metal dithiolene complexes-M(dmit)₂-are key building blocks for magnetic, conducting, and optical molecular materials, with singular electronic structures resulting from the mixing of the metal and dmit ligand orbitals. Their use in the design of magnetic and conducting materials is linked to the control of the unpaired electrons and their localized/delocalized nature. It has been recently found that UV⁻Vis light can control the spin distribution of some [Cu(dmit)₂] salts in a direct and reversible way. In this work, we study the optical response of these salts and the origin of the differences observed in the EPR spectra under UV⁻Vis irradiation by means of wave function-based quantum chemistry methods. The low-lying states of the complex have been characterized and the electronic transitions with a non-negligible oscillator strength have been identified. The population of the corresponding excited states promoted by the UV⁻Vis absorption produces significant changes in the spin distribution, and could explain the changes observed in the system upon illumination. The interaction between neighbor [Cu(dmit)₂] complexes is weakly ferromagnetic, consistent with the relative orientation of the magnetic orbitals and the crystal packing, but in disagreement with previous assignments. Our results put in evidence the complex electronic structure of the [Cu(dmit)₂] radical and the relevance of a multideterminantal approach for an adequate analysis of their properties.
金属二硫烯配合物-M(dmit)_2-是磁性、导电和光学分子材料的关键构建块,其独特的电子结构源于金属和 dmit 配体轨道的混合。它们在磁性和导电材料的设计中的应用与未成对电子的控制及其局域/离域性质有关。最近发现,紫外-可见光可以以直接和可逆的方式控制一些[Cu(dmit)_2]盐的自旋分布。在这项工作中,我们通过基于波函数的量子化学方法研究了这些盐的光响应以及在紫外-可见辐照下 EPR 光谱中观察到的差异的起源。已经对配合物的低能态进行了表征,并确定了具有不可忽略振子强度的电子跃迁。紫外-可见吸收所激发的相应激发态的布居产生了自旋分布的显著变化,这可以解释光照下系统观察到的变化。相邻[Cu(dmit)_2]配合物之间的相互作用是弱铁磁的,与磁轨道的相对取向和晶体堆积一致,但与以前的分配不一致。我们的结果表明[Cu(dmit)_2]自由基的复杂电子结构以及多行列式方法对其性质进行适当分析的相关性。