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Identification of a new electron transfer relaxation pathway in photoexcited pyrrole dimers

机译:在光激发的吡咯二聚体中鉴定新的电子转移弛豫途径

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摘要

Photoinduced electron transfer is central to many biological processes and technological applications, such as the harvesting of solar energy and molecular electronics. The electron donor and acceptor units involved in electron transfer are often held in place by covalent bonds, π–π interactions or hydrogen bonds. Here, using time-resolved photoelectron spectroscopy and ab initio calculations, we reveal the existence of a new, low-energy, photoinduced electron-transfer mechanism in molecules held together by an NH⋯π bond. Specifically, we capture the electron-transfer process in a pyrrole dimer, from the excited π-system of the donor pyrrole to a Rydberg orbital localized on the N-atom of the acceptor pyrrole, mediated by an N–H stretch on the acceptor molecule. The resulting charge-transfer state is surprisingly long lived and leads to efficient electronic relaxation. We propose that this relaxation pathway plays an important role in biological and technological systems containing the pyrrole building block.
机译:光诱导电子转移对于许多生物过程和技术应用至关重要,例如太阳能和分子电子学的收获。参与电子转移的电子供体和受体单元通常通过共价键,π-π相互作用或氢键保持在适当位置。在这里,使用时间分辨光电子能谱和从头算计算,我们揭示了由NH⋯π键结合在一起的分子中存在一种新的,低能的光诱导电子转移机制。具体来说,我们捕获了吡咯二聚体中的电子转移过程,从供体吡咯的激发π系统到受体吡咯N原子上的Rydberg轨道,该受体由受体分子的N–H伸展介导。产生的电荷转移状态寿命极长,并导致有效的电子弛豫。我们提出,这种弛豫途径在包含吡咯结构单元的生物和技术系统中起着重要作用。

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