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Direct tyrosine oxidation using the MLCT excited states of rhenium polypyridyl complexes

机译:使用rh多吡啶基配合物的MLCT激发态直接酪氨酸氧化

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Rhenium(I) polypyridyl complexes have been designed for the intramolecular photogeneration of tyrosyl radical. Tyrosine (Y) and phenylalanine (F) have each been separately appended to a conventional Re-1(bpy)(CO)(3)CN framework via an amide linkage to the bipyridine (bpy) ligand. Comparative time-resolved emission quenching and transient absorption spectra of Re(bpy-Y)(CO)(3)CN and Re(bpy-F)(CO)(3)CN show that Y is oxidized only upon its deprotonation at pH 12. In an effort to redirect electron transport so that it is more compatible with intramolecular Y oxidation, polypyridyl Re-1 complexes have been prepared with the amide bond functionality located on a pendant phosphine ligand. A [Re(phen)(PP-Bn)(CO)(2)](PF6) (PP = bis(diphenylphosphino)ethylene) complex has been synthesized and crystallographically characterized. Electrochemistry and phosphorescence measurements of this complex indicate a modest excited-state potential for tyrosine oxidation, similar to that for the (bpy)Re-1(CO)(3)CN framework. The excited-state oxidation potential can be increased by introducing a monodentate phosphine to the Re-1(NN)(CO)(3)(+) framework (NN = polypyridyl). In this case, Y is oxidized at all pHs when appended to the triphenylphosphine (P) of [Re(phen)(P-Y)(CO3)](PF6). Analysis of the pH dependence of the rate constant for tyrosyl radical generation is consistent with a proton-coupled electron transfer (PCET) quenching mechanism.
机译:hen(I)聚吡啶基配合物已被设计用于分子内酪氨酸自由基的光生。酪氨酸(Y)和苯丙氨酸(F)已分别通过与联吡啶(bpy)配体的酰胺键连接到常规Re-1(bpy)(CO)(3)CN骨架上。 Re(bpy-Y)(CO)(3)CN和Re(bpy-F)(CO)(3)CN的时间分辨发射猝灭和瞬态吸收光谱表明,Y仅在其pH值为12的去质子时才被氧化为了使电子传输重定向,使其与分子内Y氧化更相容,已经制备了具有位于膦侧基配体上的酰胺键官能团的聚吡啶基Re-1配合物。合成了[Re(phen)(PP-Bn)(CO)(2)](PF6)(PP =双(二苯基膦基)乙烯)配合物,并进行了晶体学表征。该络合物的电化学和磷光测量表明,酪氨酸氧化具有适度的激发态电势,类似于(bpy)Re-1(CO)(3)CN骨架的电势。可以通过将单齿膦引入Re-1(NN)(CO)(3)(+)骨架(NN =聚吡啶基)来增加激发态的氧化电势。在这种情况下,当Y附着在[Re(phen)(P-Y)(CO3)](PF6)的三苯基膦(P)上时,在所有pH下都会被氧化。酪氨酸自由基生成速率常数对pH值的依赖性分析与质子偶联电子转移(PCET)猝灭机理一致。

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