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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Energy and Charge Transfer Dynamics in Fully Decorated Benzyl Ether Dendrimers and Their Disubstituted Analogues
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Energy and Charge Transfer Dynamics in Fully Decorated Benzyl Ether Dendrimers and Their Disubstituted Analogues

机译:完全装饰的苄基醚树枝状大分子及其二取代类似物的能量和电荷转移动力学

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We examine the photophysics of a series of molecules consisting of a benzthiadiazole core surrounded by a network of benzyl ether arms terminated by aminopyrene chromophores,which function as both energy and electron donors.Three classes of molecules are studied: dendrimers whose peripheries are fully decorated with aminopyrene donors (F),disubstituted dendrimers whose peripheries contain only two donors (D),and linear analogues in which a pair of benzyl ether arms link two donors to the central core (L).The electronic energy transfer (EET) and charge transfer (CT) rates are determined by fluorescence lifetime measurements on the energy donors and electron acceptors,respectively.In all three types of molecules,the EET time scales as the square root of the generation number G,consistent with the flexible nature of the benzyl ether framework.Transient anisotropy measurements confirm that donor-donor energy hopping does not play a major role in determining the EET times.The CT dynamics occur on the nanosecond time scale and lead to stretched exponential decays,probably due to conformational disorder.Measurements at 100 deg C confirm that conformational fluctuations play a role in the CT dynamics.The average CT time increases with G in the L and D molecules but decreases for the F dendrimers.This divergent behavior as G increases is attributed to the competing effects of larger donor-acceptor distances (which lengthen the CT time) versus a larger number of donors (which shorten the average CT time).This work illustrates two important points about light-harvesting and charge-separation dendrimers.First,the use of a flexible dendrimer framework can lead to a more favorable scaling of the EET time (and thus the light-harvesting efficiency) with dendrimer size,relative to what would be expected for a fully extended dendrimer.Second,fully decorated dendrimers can compensate for the distance-dependent slowdown in CT rate as G increases by providing additional pathways for the CT reaction to occur.
机译:我们研究了一系列由苯并噻二唑核组成的分子的光物理性质,苯并噻二唑核被苄基醚臂的网络所包围,该苄基醚臂被氨基,生色团封端,既充当能量供体,又充当电子供体。研究了三类分子:树枝状聚合物,其外围被充分修饰氨基py供体(F),外围仅包含两个供体的双取代树枝状聚合物(D)和一对苄基醚臂将两个供体连接到中心核(L)的线性类似物。电子能量转移(EET)和电荷转移(CT)速率分别通过在能量供体和电子受体上的荧光寿命测量来确定。在所有三种类型的分子中,EET时间标度是世代数G的平方根,与苄基醚的柔性性质一致瞬态各向异性测量结果证实,供体-供体能量跳跃在确定EET时间方面没有主要作用.CT动力学在十亿分之一秒的时间尺度上,可能导致扩展的指数衰减,这可能是由于构象紊乱所致。在100摄氏度下进行的测量证实构象波动在CT动力学中起作用。平均CT时间随着L和D分子中G的增加而增加,但F树枝状聚合物的这种减少行为。随着G的增加,这种发散行为归因于更大的供体-受体距离(延长了CT时间)与更大数量的供体(缩短了平均CT时间)之间的竞争效应。首先,使用灵活的树枝状大分子骨架可以使EET时间(与树状大分子相比)更有利地扩展EET时间(从而提高光收集效率)。其次,装饰完整的树状聚合物可通过为G提供额外的途径来补偿随着G的增加而导致的CT速率的距离依赖性减慢。 CT反应发生。

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