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配位环境通过铼(I)三联吡啶二羰基配合物中的远程取代作用阻止进入配体内电荷转移态。

Coordination Environment Prevents Access to Intraligand Charge-Transfer States through Remote Substitution in Rhenium(I) Terpyridinedicarbonyl Complexes.

作者信息

Fernández-Terán Ricardo J, Sévery Laurent

机构信息

Department of Chemistry, University of Zurich, Winterthurerstrasse 190, CH-8057 Zurich, Switzerland.

出版信息

Inorg Chem. 2021 Feb 1;60(3):1325-1333. doi: 10.1021/acs.inorgchem.0c02914. Epub 2020 Dec 10.

DOI:10.1021/acs.inorgchem.0c02914
PMID:33301310
Abstract

Six rhenium(I) κ-dicarbonyl complexes with 4'-(4-substituted phenyl)terpyridine ligands were evaluated in their ground and excited states. These complexes, bearing substituents of different electron-donating strengths-from CN to NMe-were studied by a combination of transient IR (TRIR), electrochemistry, and IR spectroelectrochemistry, as well as time-dependent density functional theory (TD-DFT). They exhibit panchromatic absorption and can act as stronger photoreductants than their tricarbonyl counterparts. The ground- and excited-state potentials, absorption maxima, and lifetimes (250-750 ps) of these complexes correlate well with the Hammett σ substituent constants, showing the systematic effect of remote substitution in the ligand framework. TRIR spectroscopy allowed us to assign the lowest singlet and triplet excited states to a metal-to-ligand charge-transfer (MLCT) character. This result contrasts our previous report on analogous κ-tricarbonyl complexes, where remote substitution switched the character from MLCT to intraligand charge transfer. With the help of TD-DFT calculations, we dissect the geometric and electronic effects of coordination of the third pyridine, local symmetries, and increasing conjugation length. These results give valuable insights for the design of complexes with long-lived triplet excited states and enhanced absorption throughout the visible spectrum, while showcasing the boundaries of the excited-state switching strategy via remote substitution.

摘要

对六种含有4'-(4-取代苯基)三联吡啶配体的铼(I) κ-二羰基配合物的基态和激发态进行了评估。通过瞬态红外光谱(TRIR)、电化学、红外光谱电化学以及含时密度泛函理论(TD-DFT)相结合的方法,研究了这些带有从氰基到NMe不同给电子强度取代基的配合物。它们呈现出全色吸收,并且比其三羰基类似物能作为更强的光还原剂。这些配合物的基态和激发态势能、吸收最大值以及寿命(250 - 750皮秒)与哈米特σ取代常数有很好的相关性,显示出配体骨架中远程取代的系统效应。TRIR光谱使我们能够将最低单重态和三重态激发态归为金属到配体的电荷转移(MLCT)特征。这一结果与我们之前关于类似κ-三羰基配合物的报道形成对比,在之前的报道中远程取代使特征从MLCT转变为配体内电荷转移。借助TD-DFT计算,我们剖析了第三个吡啶配位的几何和电子效应、局部对称性以及共轭长度的增加。这些结果为设计具有长寿命三重态激发态并在整个可见光谱范围内增强吸收的配合物提供了有价值的见解,同时展示了通过远程取代实现激发态切换策略的局限性。

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