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Mechanisms of triplet energy transfer across the inorganic nanocrystal/organic molecule interface

机译:三联能量转移过无机纳米晶/有机分子界面的机制

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The mechanisms of triplet energy transfer across the inorganic nanocrystal/organic molecule interface remain poorly understood. Many seemingly contradictory results have been reported, mainly because of the complicated trap states characteristic of inorganic semiconductors and the ill-defined relative energetics between semiconductors and molecules used in these studies. Here we clarify the transfer mechanisms by performing combined transient absorption and photoluminescence measurements, both with sub-picosecond time resolution, on model systems comprising lead halide perovskite nanocrystals with very low surface trap densities as the triplet donor and polyacenes which either favour or prohibit charge transfer as the triplet acceptors. Hole transfer from nanocrystals to tetracene is energetically favoured, and hence triplet transfer proceeds via a charge separated state. In contrast, charge transfer to naphthalene is energetically unfavourable and spectroscopy shows direct triplet transfer from nanocrystals to naphthalene; nonetheless, this "direct" process could also be mediated by a high-energy, virtual charge-transfer state.
机译:穿过无机纳米晶体/有机分子界面穿过的三重态能量转移的机制仍然难以理解。已经报道了许多看似矛盾的结果,主要是因为无机半导体的特征复杂的陷阱状态以及这些研究中使用的半导体和分子之间的不定义的相对能量。在这里,我们通过在包含具有非常低的表面捕获纳米晶体的模型系统上进行组合的瞬态吸收和光致发光测量来阐明转移机制,所述模型系统包括具有非常低的表面捕获密度作为三重态供体和多种子遗传物的铅,它们有利于或禁止电荷转移作为三联受体。从纳米晶体到四烯的空穴转移能够大致青睐,因此通过电荷分离状态进行三态转印。相比之下,对萘的电荷转移是能量不利的,并且光谱学显示从纳米晶体到萘的直接三重态转移;尽管如此,这种“直接”过程也可以由高能,虚拟电荷转移状态介导。

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