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Enhancement of Performance and Mechanism Studies of All-Solution Processed Small-Molecule based Solar Cells with an Inverted Structure

机译:全溶液处理的小分子结构倒置太阳能电池的性能增强和机理研究

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Both solution-processed polymers and small molecule based solar cells have achieved PCEs over 9% with the conventional device structure. However, for the practical applications of photovoltaic technology, further enhancement of both device performance and stability are urgently required, particularly for the inverted structure devices, since this architecture will probably be most promising for the possible coming commercialization. In this work, we have fabricated both conventional and inverted structure devices using the same small molecular donor/acceptor materials and compared the performance of both device structures, and found that the inverted structure based device gave significantly improved performance, the highest PCE so far for inverted structure based device using small molecules as the donor. Furthermore, the inverted device shows a remarkable stability with almost no obvious degradation after three months. Systematic device physics and charge generation dynamics studies, including optical simulation, light-intensity-dependent current voltage experiments, photocurrent density-effective voltage analyses, transient absorption measurements, and electrical simulations, indicate that the significantly enhanced performance using inverted device is ascribed to the increasing of J(sc) compared to the conventional device, which in turn is mainly attributed to the increased absorption of photons in the active layers, rather than the reduced nongeminate recombination.
机译:溶液处理的聚合物和基于小分子的太阳能电池均通过常规器件结构实现了超过9%的PCE。然而,对于光伏技术的实际应用,迫切需要进一步提高设备性能和稳定性,特别是对于倒置结构的设备,因为这种结构对于可能的商业化可能是最有希望的。在这项工作中,我们使用相同的小分子供体/受体材料制造了常规和倒置结构器件,并比较了两种器件结构的性能,发现基于倒置结构的器件性能得到了显着改善,是迄今为止最高的PCE。倒置结构的装置,使用小分子作为供体。此外,倒置装置显示出显着的稳定性,三个月后几乎没有明显的降解。系统的器件物理和电荷产生动力学研究,包括光学仿真,与光强度有关的电流电压实验,光电流密度有效电压分析,瞬态吸收测量和电仿真,均表明使用倒置器件显着增强了性能。与常规装置相比,J(sc)的增加,这主要归因于活性层中光子吸收的增加,而不是非gegege重组的减少。

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