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Enhanced Performance of PDPP3T/${rm PC}_{60}{rm BM}$ Solar Cells Using High Boiling Solvent and UV–Ozone Treatment

机译:PDPP3T / $ {rm PC} _ {60} {rm BM} $太阳能电池的高沸腾溶剂和紫外线臭氧处理性能增强

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摘要

Using higher temperature without any additives, poly(diketopyrrolopyrrole-terthiophene) was successfully dissolved with ${rm PC}_{60}{rm BM}$ in a commonly used high-boiling point solvent namely chlorobenzene (CB). Use of CB allowed us to heat the blend solution at a higher temperature, which leads to improved nanoscale phase separation between donor and acceptor, which is important for an efficient exciton dissociation. Devices were fabricated in both regular and inverted bulk heterojunction structure for comparison by spin coating an active layer. Inverted structure solar cells exhibited higher power conversion efficiency than regular structure with significant improvement in current density, possibly attributed to increased light absorption in the active layer due to less parasitic absorption in the PEDOT:PSS and the Ca layer, which were used in normal structures. Furthermore, ultraviolet (UV) ozone treatment of ZnO film improved the solar cell performance. A UV ozone treatment of 5 min was found to be the optimal time resulting in the highest device efficiency (4.45%) with short circuit current density of 9.3 ${rm mA}/{rm cm}^{2}$, open circuit voltage of 0.69, and fill factor 69.5% without the need for any solvent additives.
机译:在没有任何添加剂的情况下使用较高的温度,聚(二酮基吡咯并吡咯-对噻吩)已成功地与$ {rm PC} _ {60} {rm BM} $溶解在常用的高沸点溶剂即氯苯(CB)中。 CB的使用使我们能够在更高的温度下加热共混溶液,从而改善了供体和受体之间的纳米级相分离,这对于有效的激子离解很重要。器件以规则本体和反向本体异质结结构制造,用于通过旋涂有源层进行比较。倒置结构太阳能电池比常规结构具有更高的功率转换效率,电流密度显着提高,这可能归因于在正常结构中使用的PEDOT:PSS和Ca层中较少的寄生吸收,从而增加了有源层的光吸收。此外,ZnO膜的紫外线(UV)臭氧处理提高了太阳能电池的性能。发现5分钟的紫外线臭氧处理是最佳的时间,这是获得最高器件效率(4.45%)的最佳条件,短路电流密度为9.3 $ {rm mA} / {rm cm} ^ {2} $,开路电压0.69,填充系数69.5%,无需任何溶剂添加剂。

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