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Photoconversion Mechanism at the pn-Homojunction Interface in Single Organic Semiconductor

机译:单个有机半导体中pn结界面处的光转换机理

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摘要

Clarifying critical differences in free charge generation and recombination processes between inorganic and organic semiconductors is important for developing efficient organic photoconversion devices such as solar cells (SCs) and photodetector. In this study, we analyzed the dependence of doping concentration on the photoconversion process at the organic -homojunction interface in a single organic semiconductor using the temperature dependence of characteristics and energy structure measurements. Even though the organic -homojunction SC devices were fabricated using a single host material and the doping technique resembling an inorganic -homojunction, the charge generation and recombination mechanisms are similar to that of conventional donor/acceptor (D/A) type organic SCs; that is, the charge separation happens from localized exciton and charge transfer (CT) state being separated by the energy offset between adjacent molecules, and the recombination happens from localized charge carrier at two adjacent molecules. The determining factor for photoconversion processes is the localized nature of charges in organic semiconductors. The results demonstrated that controlling the delocalization of the charges is important to realize efficient organic photoconversion devices.
机译:澄清无机和有机半导体之间自由电荷产生和复合过程中的关键差异对于开发高效的有机光电转换器件(例如太阳能电池(SC)和光电探测器)非常重要。在这项研究中,我们使用特性的温度依赖性和能量结构测量来分析单个有机半导体中有机-同质结界面处掺杂浓度对光转化过程的依赖性。即使使用单一基质材料制造有机均质结SC器件,并且掺杂技术类似于无机均质结,其电荷产生和复合机理也与常规的施主/受主(D / A)型有机SC相似。也就是说,电荷分离是由于局部激子和电荷转移(CT)状态被相邻分子之间的能量偏移所分开而发生的,重组发生于两个相邻分子处的局部电荷载体之间。光转换过程的决定因素是有机半导体中电荷的局部性质。结果表明,控制电荷的离域对于实现有效的有机光电转换装置很重要。

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