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Ugi 四组分反应作为一种简洁的模块化合成工具,用于光诱导电子转移给体-蒽醌偶联物。

The Ugi four-component reaction as a concise modular synthetic tool for photo-induced electron transfer donor-anthraquinone dyads.

机构信息

Heinrich-Heine Universität Düsseldorf, Institut für Organische Chemie und Makromolekulare Chemie, Universitätsstraße 1, D-40225 Düsseldorf, Germany.

Heinrich-Heine Universität Düsseldorf, Institut für Anorganische Chemie und Strukturchemie, Universitätsstraße 1, D-40225 Düsseldorf, Germany.

出版信息

Beilstein J Org Chem. 2014 May 5;10:1006-16. doi: 10.3762/bjoc.10.100. eCollection 2014.

Abstract

Phenothiazinyl and carbazolyl-donor moieties can be covalently coupled to an anthraquinone acceptor unit through an Ugi four-component reaction in a rapid, highly convergent fashion and with moderate to good yields. These novel donor-acceptor dyads are electronically decoupled in the electronic ground state according to UV-vis spectroscopy and cyclic voltammetry. However, in the excited state the inherent donor luminescence is efficiently quenched. Previously performed femtosecond spectroscopic measurements account for a rapid exergonic depopulation of the excited singlet states into a charge-separated state. Calculations of the Gibbs energy of photo-induced electron transfer from readily available UV-vis spectroscopic and cyclovoltammetric data applying the Weller approximation enables a quick evaluation of these novel donor-acceptor dyads. In addition, the X-ray structure of a phenothiazinyl-anthraquinone dyad supports short donor-acceptor distances by an intramolecular π-stacking conformation, an important assumption also implied in the calculations of the Gibbs energies according to the Weller approximation.

摘要

苯并噻嗪基和咔唑基供体部分可以通过 Ugi 四组分反应与蒽醌受体单元以快速、高收敛的方式连接,产率中等至良好。根据紫外可见光谱和循环伏安法,这些新型给体-受体二聚体在电子基态下是电子离域的。然而,在激发态下,固有供体发光被有效地猝灭。先前进行的飞秒光谱测量表明,激发单线态会迅速进行非辐射去激发,形成电荷分离态。根据 Weller 近似,从易于获得的紫外可见光谱和循环伏安数据计算光致电子转移的吉布斯自由能,可以快速评估这些新型给体-受体二聚体。此外,苯并噻嗪基-蒽醌二聚体的 X 射线结构通过分子内π堆积构象支持短的给体-受体距离,这也是根据 Weller 近似计算吉布斯自由能时所隐含的重要假设。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c902/4077531/2322e8d257bd/Beilstein_J_Org_Chem-10-1006-g002.jpg

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