Hayes Dugan, Kohler Lars, Chen Lin X, Mulfort Karen L
Division of Chemical Sciences and Engineering , Argonne National Laboratory , Argonne , Illinois 60439 , United States.
Department of Chemistry , Northwestern University , Evanston , Illinois 60208 , United States.
J Phys Chem Lett. 2018 Apr 19;9(8):2070-2076. doi: 10.1021/acs.jpclett.8b00468. Epub 2018 Apr 10.
In this work, we present the photoinduced charge separation dynamics of four molecular dyads composed of heteroleptic Cu(I)bis(phenanthroline) chromophores linked directly to the common electron acceptor naphthalene diimide. The dyads were designed to allow us to (1) detect any kinetic preference for directionality during photoinduced electron transfer across the heteroleptic complex and (2) probe the influence of excited-state flattening on intramolecular charge separation. Singular value decomposition of ultrafast optical transient absorption spectra demonstrates that charge transfer occurs with strong directional preference, and charge separation occurs up to 35 times faster when the acceptor is linked to the sterically blocking ligand. Further, the charge-separated state in these dyads is stabilized by polar solvents, resulting in dramatically longer lifetimes for dyads with minimal substitution about the Cu(I) center. This unexpected but exciting observation suggests a new approach to the design of Cu(I)bis(phenanthroline) chromophores that can support long-lived vectorial charge separation.
在这项工作中,我们展示了由异质配位的Cu(I)双(菲咯啉)发色团直接连接到常见电子受体萘二酰亚胺组成的四个分子二元体系的光致电荷分离动力学。设计这些二元体系是为了让我们能够:(1)检测光致电子转移穿过异质配位络合物时在方向性上的任何动力学偏好;(2)探究激发态扁平化对分子内电荷分离的影响。超快光学瞬态吸收光谱的奇异值分解表明,电荷转移具有很强的方向偏好,并且当受体与空间位阻配体相连时,电荷分离速度加快多达35倍。此外,这些二元体系中的电荷分离态在极性溶剂中得到稳定,导致Cu(I)中心周围取代最少的二元体系寿命显著延长。这一意外但令人兴奋的观察结果为设计能够支持长寿命矢量电荷分离的Cu(I)双(菲咯啉)发色团提供了一种新方法。