首页> 外文期刊>Advanced functional materials >Alternating Copolymers of Cyclopenta2,l-b;3,4-b' dithiophene and Thieno3,4-cpyrrole-4,6-dione for High-Performance Polymer Solar Cells
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Alternating Copolymers of Cyclopenta2,l-b;3,4-b' dithiophene and Thieno3,4-cpyrrole-4,6-dione for High-Performance Polymer Solar Cells

机译:环戊烷的交替共聚物2,l-b;3,4-b'二噻吩和噻吩并3,4-c吡咯-4,6-二酮用于高性能聚合物太阳能电池

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摘要

A series of alternating copolymers of cyclopenta2,l-b;3,4-b'dithiophene (CPDT) and thieno3,4-cpyrrole-4,6-dione (TPD) have been prepared and characterized for polymer solar cell (PSC) applications. Different alkyl side chains, including butyl (Bu), hexyl (He), octyl (Oc), and 2-ethylhexyl (EH), are introduced to the TPD unit in order to adjust the packing of the polymer chain in the solid state, while the hexyl side chain on the CPDT unit remains unchanged to simplify discussion. The polymers in this series have a simple main chain structure and can be synthesized easily, have a narrow band gap and a broad light absorption. The different alkyl chains on the TPD unit not only significantly influence the solubility and chain packing, but also fine tune the energy levels of the polymers. The polymers with Oc or EH group have lower HOMO (highest occupied molecular orbital) and LUMO (lowest unoccupied molecular orbital) energy levels, resulting higher open circuit voltages (V_(oc) of the PSC devices. Power conversion efficiencies (PCEs) up to 5.5 and 6.4 are obtained from the devices of the Oc substituted polymer (PCP-DTTPD-Oc) with PC_(61)BM and PC_(71)BM, respectively. This side chain effect on the PSC performance is related to the formation of a fine bulk heterojunc-tion structure of polymer and PCBM domains, as observed with atomic force microscopy.
机译:环戊二烯[2,l-b;3,4-b']二噻吩(CPDT)和噻吩并[3,4-c]吡咯-4,6-二酮(TPD)已被制备并表征用于聚合物太阳能电池(PSC)应用。TPD单元引入了不同的烷基侧链,包括丁基(Bu)、己基(He)、辛基(Oc)和2-乙基己基(EH),以调整聚合物链在固态下的堆积,而CPDT单元上的己基侧链保持不变,以简化讨论。该系列聚合物主链结构简单,易于合成,带隙窄,光吸收宽。TPD装置上不同的烷基链不仅显著影响溶解度和链堆积,而且对聚合物的能级也有微调。具有 Oc 或 EH 基团的聚合物具有较低的 HOMO(最高占用分子轨道)和 LUMO(最低未占用分子轨道)能级,导致 PSC 器件的开路电压 (V_(oc) 较高。具有 PC_(61)BM 和 PC_(71)BM 的 Oc 取代聚合物 (PCP-DTTPD-Oc) 器件分别获得了高达 5.5% 和 6.4% 的功率转换效率 (PCE)。这种对PSC性能的侧链效应与聚合物和PCBM结构域的精细体异质结合结构的形成有关,如原子力显微镜所观察到的那样。

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