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Hole-transfer induced energy transfer in perylene diimide dyads with a donor-spacer-acceptor motif

机译:带有给体-间隔体-受体基序的di二酰亚胺二元化合物中的空穴转移诱导的能量转移

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摘要

We investigate the photoinduced dynamics of perylene diimide dyads based on a donor-spacer-acceptor motif with polyyne spacers of varying length by pump-probe spectroscopy, time resolved fluorescence, chemical variation and quantum chemistry. While the dyads with pyridine based polyyne spacers undergo energy transfer with near-unity quantum efficiency, in the dyads with phenyl based polyyne spacers the energy transfer efficiency drops below 50%. This suggests the presence of a competing electron transfer process from the spacer to the energy donor as the excitation sink. Transient absorption spectra, however, reveal that the spacer actually mediates the energy transfer dynamics. The ground state bleach features of the polyyne spacers appear due to the electron transfer decay with the same time constant present in the rise of the ground state bleach and stimulated emission of the perylene energy acceptor. Although the electron transfer process initially quenches the fluorescence of the donor it does not inhibit energy transfer to the perylene energy acceptor. The transient signatures reveal that electron and energy transfer processes are sequential and indicate that the donor-spacer electron transfer state itself is responsible for the energy transfer. Through the introduction of a Dexter blocker unit into the spacer we can clearly exclude any through bond Dexter-type energy transfer. Ab initio calculations on the donor-spacer and the donor-spacer-acceptor systems reveal the existence of a bright charge transfer state that is close in energy to the locally excited state of the acceptor. Multipole-multipole interactions between the bright charge transfer state and the acceptor state enable the energy transfer. We term this mechanism coupled hole-transfer FRET. These dyads represent a first example that shows how electron transfer can be connected to energy transfer for use in novel photovoltaic and optoelectronic devices.
机译:我们通过泵探针光谱,时间分辨荧光,化学变化和量子化学研究了基于长度可变的聚炔间隔基的供体-间隔基-受体基序的per二酰亚胺二聚体的光诱导动力学。尽管具有基于吡啶的聚炔间隔基的二元组以接近统一的量子效率进行能量转移,但是在具有基于苯基的聚炔间隔基的二元组中,能量转移效率下降到50%以下。这表明存在从隔离物到能量供体作为激发阱的竞争性电子转移过程。然而,瞬态吸收光谱表明,间隔物实际上介导了能量转移动力学。聚炔间隔基的基态漂白特征是由于电子传递衰减而出现的,同时基态漂白剂的上升和the能量受体的受激发射具有相同的时间常数。尽管电子转移过程最初会淬灭供体的荧光,但它不会抑制能量转移至per能量受体。瞬态特征表明电子和能量转移过程是顺序的,表明供体-间隔子电子转移状态本身是能量转移的原因。通过将Dexter阻断剂单元引入间隔基,我们可以清楚地排除任何通过键结合的Dexter型能量转移。对供体-间隔体和供体-间隔体-受体系统的从头算计算表明,存在着一个明亮的电荷转移状态,该状态在能量上与受体的局部激发态接近。亮电荷转移状态和受体状态之间的多极-多极相互作用实现了能量转移。我们称这种机制为空穴转移FRET。这些二元组代表了第一个示例,该示例显示了如何将电子传输连接到能量传输以用于新型光伏和光电设备。

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