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Charge Transport Modulation of a Flexible Quantum Dot Solar Cell Using a Piezoelectric Effect

机译:利用压电效应的柔性量子点太阳能电池的电荷传输调制

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摘要

Colloidal quantum dots are promising materials for flexible solar cells, as they have a large absorption coefficient at visible and infrared wavelengths, a band gap that can be tuned across the solar spectrum, and compatibility with solution processing. However, the performance of flexible solar cells can be degraded by the loss of charge carriers due to recombination pathways that exist at a junction interface as well as the strained interface of the semiconducting layers. The modulation of the charge carrier transport by the piezoelectric effect is an effective way of resolving and improving the inherent material and structural defects. By inserting a porous piezoelectric poly(vinylidenefluoride-trifluoroethylene) layer so as to generate a converging electric field, it is possible to modulate the junction properties and consequently enhance the charge carrier behavior at the junction. This study shows that due to a reduction in the recombination and an improvement in the carrier extraction, a 38% increase in the current density along with a concomitant increase of 37% in the power conversion efficiency of flexible quantum dots solar cells can be achieved by modulating the junction properties using the piezoelectric effect.
机译:胶体量子点是用于柔性太阳能电池的有前途的材料,因为它们在可见光和红外波长处具有大的吸收系数,可以在整个太阳光谱范围内调节带隙,并且与溶液处理兼容。然而,由于存在于结界面以及半导体层的应变界面处的重组途径,电荷载流子的损失会降低柔性太阳能电池的性能。压电效应对载流子传输的调制是解决和改善固有材料和结构缺陷的有效方法。通过插入多孔的压电聚(偏二氟乙烯-三氟乙烯)层以产生会聚电场,可以调节结性质并因此增强结处的电荷载流子性能。这项研究表明,由于重组的减少和载流子提取的改善,柔性量子点太阳能电池的功率转换效率可实现电流密度增加38%和功率增加37%的同时使用压电效应调节结特性。

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