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Columnar-Structured Low-Concentration Donor Molecules in Bulk Heterojunction Organic Solar Cells

机译:体异质结有机太阳能电池中的柱状结构低浓度供体分子

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We investigate the arrangement of donor molecules in vacuum-deposited bulk heterojunction (BHJ) 1,1-bis-(4-bis(4-methyl-phenyl)-amino-phenyl)-cyclohexane (TAPC):C_(70)-based organic solar cells (OSCs). Even a low dose of donors (~10%) forms columnar structures that provide pathways for efficient hole transport in the BHJ layer; however, these structures disappear at donor concentrations below 10%, generating disconnected and isolated hole pathways. The formation of columnar donor structures is confirmed by the contrast of the contact potential difference, measured by Kelvin probe force microscopy, and by the trap-assisted charge injection at low donor concentrations. The mobility of electrons and holes is well balanced in OSCs owing to the preservation of the hole mobility at such low donor concentrations, consequently maximizing the internal quantum efficiency of the OSCs. A high power conversion efficiency of 6.24% was achieved in inverted TAPC:C_(70) (1:9) OSCs.
机译:我们研究基于真空沉积的本体异质结(BHJ)1,1-双-(4-双(4-甲基-苯基)-氨基-苯基)-环己烷(TAPC):C_(70)的供体分子的排列有机太阳能电池(OSC)。即使是低剂量的供体(约10%)也会形成柱状结构,为BHJ层中的有效空穴传输提供途径。然而,这些结构在供体浓度低于10%时消失,从而产生不连续和孤立的空穴通道。柱状施主结构的形成是通过接触电势差的对比来确定的,该接触电势差通过开尔文探针力显微镜测量,并且通过在低施主浓度下的陷阱辅助电荷注入来确定。由于在这样低的施主浓度下保持空穴迁移率,因此电子和空穴的迁移率在OSC中得到了很好的平衡,因此使OSC的内部量子效率最大化。在倒置的TAPC:C_(70)(1:9)OSC中实现了6.24%的高功率转换效率。

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