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首页> 外文期刊>Nanoscale >Tuning the reorganization energy of electron transfer in supramolecular ensembles - metalloporphyrin, oligophenylenevinylenes, and fullerene - and the impact on electron transfer kinetics
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Tuning the reorganization energy of electron transfer in supramolecular ensembles - metalloporphyrin, oligophenylenevinylenes, and fullerene - and the impact on electron transfer kinetics

机译:优化重组电子的能量在超分子集合体-转移金属卟啉、oligophenylenevinylenes和富勒烯,并对电子传递的影响动力学

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摘要

Oligo(p-phenylenevinylene) (oPPV) wires of various lengths featuring pyridyls at one terminal and C-60 moieties at the other, have been used as molecular building blocks in combination with porphyrins to construct a novel class of electron donor-acceptor architectures. These architectures, which are based on non-covalent, directional interactions between the zinc centers of the porphyrins and the pyridyls, have been characterized by nuclear magnetic resonance spectroscopy and mass spectrometry. Complementary physico-chemical assays focused on the interactions between electron donors and acceptors in the ground and excited states. No appreciable electron interactions were noted in the ground state, which was being probed by electrochemistry, absorption spectroscopy, etc.; the electron acceptors are sufficiently decoupled from the electron donors. In the excited state, a different picture evolved. In particular, steady-state and time-resolved fluorescence and transient absorption measurements revealed substantial electron donor-acceptor interactions. These led, upon photoexcitation of the porphyrins, to tunable intramolecular electron-transfer processes, that is, the oxidation of porphyrin and the reduction of C-60. In this regard, the largest impact stems from a rather strong distance dependence of the total reorganization energy in stark contrast to the distance independence seen for covalently linked conjugates.
机译:益生元(p-phenylenevinylene) (oPPV)各种电线长度在一个终端和吡啶基C-60半个,用作在结合分子构建模块卟啉构建小说类的电子新的架构。架构是基于共价,定向锌中心之间的交互卟啉和吡啶基的核磁共振的特征光谱和质谱分析。理化分析关注的电子给体和之间的相互作用受体在基态和激发态。明显的电子相互作用被发现基态,被探测电化学、吸收光谱等。电子受体足够解耦从电子给体。不同的进化。稳态和时间分辨荧光瞬态吸收测量显示大量电子亲水相互作用。这些领导,在光致激发卟啉,可调的分子内电子转换过程,即卟啉氧化和减少C-60。在这方面,最大的影响力来自而强烈的总距离的依赖重组能量形成鲜明对比距离独立的共价相连配合。

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