TUM School of Natural Sciences, Department Chemie, Technische Universität München, Lichtenbergstraße 4, 85747, Garching, Germany.
Department of Chemistry and Materials Science, Aalto University, 00076, Aalto, Finland.
Angew Chem Int Ed Engl. 2023 Jul 17;62(29):e202304088. doi: 10.1002/anie.202304088. Epub 2023 Jun 13.
C donor dyads in which the carbon cage is covalently linked to an electron-donating unit have been discussed as one possibility for an electron-transfer system, and it has been shown that spherical [Ge ] cluster anions show a close relation to fullerenes with respect to their electronic structure. However, the optical properties of these clusters and of functionalized cluster derivatives are almost unknown. We now report on the synthesis of the intensely red [Ge ] cluster linked to an extended π-electron system. [Ge {Si(TMS) } {CH C=N}-DAB(II) ] (1 ) is formed upon the reaction of [Ge {Si(TMS) } ] with bromo-diazaborole DAB(II) -Br in CH CN (TMS=trimethylsilyl; DAB(II)=1,3,2-diazaborole with an unsaturated backbone; Dipp=2,6-di-iso-propylphenyl). Reversible protonation of the imine entity in 1 yields the deep green, zwitterionic cluster [Ge {Si(TMS) } {CH C=N(H)}-DAB(II) ] (1-H) and vice versa. Optical spectroscopy combined with time-dependent density functional theory suggests a charge-transfer excitation between the cluster and the antibonding π* orbital of the imine moiety as the cause of the intense coloration. An absorption maximum of 1-H in the red region of the electromagnetic spectrum and the corresponding lowest-energy excited state at λ=669 nm make the compound an interesting starting point for further investigations targeting the design of photo-active cluster compounds.
C 供体偶联物中,碳笼与供电子单元通过共价键连接,被认为是电子转移体系的一种可能性,并且已经表明,球形 [Ge ] 团簇阴离子在电子结构方面与富勒烯具有密切关系。然而,这些团簇和功能化团簇衍生物的光学性质几乎未知。我们现在报道了与扩展的π电子体系相连的强烈红色 [Ge ] 团簇的合成。[Ge {Si(TMS) } {CH C=N}-DAB(II) ](1)是通过[Ge {Si(TMS) } ]与溴代二氮硼烷 DAB(II)-Br 在 CH CN 中的反应形成的(TMS=三甲基硅基;DAB(II)=1,3,2-二氮硼烷,具有不饱和主链;Dipp=2,6-二异丙基苯基)。1 中亚胺实体的可逆质子化生成深绿色的两性离子团簇[Ge {Si(TMS) } {CH C=N(H)}-DAB(II) ](1-H),反之亦然。结合时间分辨密度泛函理论的光谱研究表明,电荷转移激发是团簇和亚胺部分的反键π*轨道之间的原因,这导致了强烈的着色。1-H 在电磁光谱的红色区域的吸收最大值和相应的最低能量激发态在 λ=669nm 处,使得该化合物成为进一步设计光活性团簇化合物的有趣起点。