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Origin of low sensitizing efficiency of quantum dots in organic solar cells

机译:有机太阳能电池中量子点低敏化效率的起因

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摘要

Organic semiconductors are of great interest for application in cheap and flexible solar cells. They have a typical absorption onset in the visible. Infrared light can be harvested by use of lead-chalcogenide quantum dot sensitizers. However, bulk-heterojunction solar cells with quantum-dot sensitizers are inefficient. Here we use ultrafast transient absorption and time-domain terahertz spectroscopy to show that charge localization on the quantum dot leads to enhanced coulomb attraction of its counter charge in the organic semiconductor. This localization-enhanced coulomb attraction is the fundamental cause of the poor efficiency of these photovoltaic architectures. It is of prime importance for improving solar cell efficiency to directly photogenerate spatially separated charges. This can be achieved when both charges are delocalized. Our findings provide a rationalization in the development of photovoltaic architectures that exploit quantum dots to harvest the near-infrared part of the solar spectrum more efficiently.
机译:有机半导体对于廉价和柔性太阳能电池的应用具有极大的兴趣。它们在可见光中具有典型的吸收开始。可以通过使用硫属元素化物铅量子点敏化剂来收集红外光。然而,具有量子点敏化剂的体异质结太阳能电池效率低下。在这里,我们使用超快瞬态吸收和时域太赫兹光谱来表明,量子点上的电荷局部化会导致其反电荷在有机半导体中的库仑吸引力增强。这种本地化增强的库仑吸引力是这些光伏架构效率低下的根本原因。对于提高太阳能电池效率以直接光生空间分离的电荷至关重要。当两个电荷都被移域时,可以实现这一点。我们的发现为开发利用量子点更有效地收集太阳光谱的近红外部分的光伏体系结构提供了合理化依据。

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