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Controlling Electron Transfer in Donor−Bridge−Acceptor Molecules Using Cross-Conjugated Bridges

机译:使用交叉共轭桥控制电子在供体-桥-受体分子中的转移

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Photoinitiated charge separation (CS) and recombination (CR) in a series of donor−bridge−acceptor (D−B−A) molecules with cross-conjugated, linearly conjugated, and saturated bridges have been compared and contrasted using time-resolved spectroscopy. The photoexcited charge transfer state of 3,5-dimethyl-4-(9-anthracenyl)julolidine (DMJ−An) is the donor, and naphthalene-1,8:4,5-bis(dicarboximide) (NI) is the acceptor in all cases, along with 1,1-diphenylethene, trans-stilbene, diphenylmethane, and xanthone bridges. Photoinitiated CS through the cross-conjugated 1,1-diphenylethene bridge is about 30 times slower than through its linearly conjugated trans-stilbene counterpart and is comparable to that observed through the diphenylmethane bridge. This result implies that cross-conjugation strongly decreases the π orbital contribution to the donor−acceptor electronic coupling so that electron transfer most likely uses the bridge σ system as its primary CS pathway. In contrast, the CS rate through the cross-conjugated xanthone bridge is comparable to that observed through the linearly conjugated trans-stilbene bridge. Molecular conductance calculations on these bridges show that cross-conjugation results in quantum interference effects that greatly alter the through-bridge donor−acceptor electronic coupling as a function of charge injection energy. These calculations display trends that agree well with the observed trends in the electron transfer rates.
机译:使用时间分辨光谱法比较和对比了具有交叉共轭,线性共轭和饱和桥的一系列供体桥受体(DBA)分子中的光引发电荷分离(CS)和重组(CR)。 3,5-二甲基-4-(9-蒽基)甲萘啶(DMJ-An)的光激发电荷转移态是供体,萘-1,8:4,5-双(二甲叉酰亚胺)(NI)是受体在所有情况下,以及1,1-二苯乙烯,反式二苯乙烯,二苯甲烷和黄酮桥。通过交叉共轭的1,1-二苯乙烯桥进行光引发的CS的速度比通过线性共轭的反式二苯乙烯桥对应的光引发的CS慢约30倍,并且与通过二苯基甲烷桥观察到的光引发的CS相当。该结果暗示交叉共轭极大地降低了对施主-受主电子耦合的π轨道贡献,因此电子转移最有可能使用电桥σ系统作为其主要CS路径。相反,通过交叉共轭conjugate吨酮桥的CS速率与通过线性共轭反式二苯乙烯桥所观察到的CS速率相当。在这些桥上的分子电导计算表明,交叉共轭导致量子干扰效应,该效应极大地改变了作为电荷注入能量的函数的贯穿桥供体-受体电子耦合。这些计算显示的趋势与观察到的电子传输速率趋势非常吻合。

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