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首页> 外文期刊>ACS nano >Directing Energy Transport in Organic Photovoltaic Cells Using Interfacial Exciton Gates
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Directing Energy Transport in Organic Photovoltaic Cells Using Interfacial Exciton Gates

机译:使用界面激子门指导有机光伏电池中的能量传输

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摘要

Exciton transport in organic semiconductors is a critical, mediating process in many optoelectronic devices. Often, the diffusive and subdiffusive nature of excitons in these systems can limit device performance, motivating the development of strategies to direct exciton transport. In this work, directed exciton transport is achieved with the incorporation of exciton permeable interfaces. These interfaces introduce a symmetry-breaking imbalance in exciton energy transfer, leading to directed motion. Despite their obvious utility for enhanced exciton harvesting in organic photovoltaic cells (OPVs), the emergent properties of these interfaces are as yet uncharacterized. Here, directed exciton transport is conclusively demonstrated in both dilute donor and energy-cascade OPVs where judicious optimization of the interface allows exciton transport to the donor acceptor heterojunction to occur considerably faster than when relying on simple diffusion. Generalized systems incorporating multiple exciton permeable interfaces are also explored, demonstrating the ability to further harness this phenomenon and expeditiously direct exciton motion, overcoming the diffusive limit.
机译:在许多光电器件中,有机半导体中的激子传输是至关重要的介导过程。通常,激子在这些系统中的扩散性和亚扩散性可能会限制器件的性能,从而刺激了直接激子运输策略的发展。在这项工作中,通过引入激子可渗透的界面实现了定向激子的传输。这些界面在激子能量传递中引入了打破对称性的不平衡,从而导致定向运动。尽管它们明显可用于增强有机光伏电池(OPV)中的激子捕获,但这些界面的新兴特性尚未表征。在这里,定向激子传输在稀释的供体和能级联的OPV中得到了最终证明,其中界面的明智优化使激子向供体受体异质结的传输比依赖简单扩散的发生要快得多。还探索了包含多个激子可渗透界面的通用系统,展示了进一步利用这种现象并迅速引导激子运动,克服扩散极限的能力。

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