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Breaking the Space Charge Limit in Organic Solar Cells by a Novel Plasmonic-Electrical Concept

机译:通过新颖的等离子电概念突破有机太阳能电池的空间电荷极限

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As a fundamental electrostatic limit, space charge limit (SCL) for photocurrent is a universal phenomenon and of paramount importance for organic semiconductors with unbalanced photocarriers mobility and high exciton generation. Here we proposed a new plasmonic-electrical concept to manipulate electrical properties of organic devices including photocarriers recombination, transport and collection. As a proof-of-concept, organic solar cells (OSCs) comprising metallic planar and grating electrodes are systematically investigated with normal and inverted device structures. Interestingly, although strong plasmonic resonances induce abnormally dense photocarriers around a grating anode, the grating-inverted OSC is exempt from space charge accumulation (limit) and degradation of electrical properties in contrast to the planar-inverted and planar-normal ones. The particular reason is that plasmonically induced photocarriers redistribution shortens the transport path of low-mobility holes, which are collected by the grating anode. The work demonstrated and explained the SCL breaking with the plasmonic-electrical effect. Most importantly, the plasmonic-electrical concept will open up a new way to manipulate both optical and electrical properties of semiconductor devices simultaneously.
机译:作为基本的静电极限,光电流的空间电荷极限(SCL)是普遍现象,并且对于具有不平衡的光载流子迁移率和高激子产生的有机半导体至关重要。在这里,我们提出了一种新的等离子电学概念,以控制有机器件的电学性质,包括光载流子的重组,运输和收集。作为概念验证,包括金属平面电极和光栅电极的有机太阳能电池(OSC)已通过常规和倒置的器件结构进行了系统研究。有趣的是,尽管强等离子共振会在光栅阳极周围诱导异常密集的光载流子,但与平面倒置和平面法向的相比,光栅倒置的OSC不受空间电荷累积(极限)和电性能下降的影响。特殊的原因是,由等离子体引起的光载流子的重新分布缩短了由光栅阳极收集的低迁移率空穴的传输路径。这项工作演示并解释了SCL的等离子体电效应。最重要的是,等离子电学概念将为同时操纵半导体器件的光学和电学性质开辟新的途径。

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