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Stable high-performance perovskite solar cells based on inorganic electron transporting bi-layers

机译:基于无机电子传输双层的稳定高性能钙钛矿太阳能电池

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As one of the significant electron transporting materials (ETMs) in efficient planar heterojunction perovskite solar cells (PSCs), SnO2 can collect/transfer photo-generated carriers produced in perovskite active absorbers and suppress the carrier recombination at interfaces. In this study, we demonstrate that a mild solution-processed SnO2 compact layer can be an eminent ETM for planar heterojunction PSCs. Here, the device based on chemical-bath-deposited SnO2 electron transporting layer (ETL) exhibits a power conversion efficiency (PCE) of 16.10% and with obvious hysteresis effect (hysteresis index = 19.5%), owing to the accumulation and recombination of charge carriers at the SnO2/perovskite interface. In order to improve the carrier dissociation and transport process, an ultrathin TiO2 film was deposited on the top of the SnO2 ETL passivating nonradiative recombination center. The corresponding device based on the TiO2@SnO2 electron transporting bi-layer (ETBL) exhibited a high PCE (17.45%) and a negligible hysteresis effect (hysteresis index = 1.5%). These findings indicate that this facile solution-processed TiO2@SnO2 ETBL paves a scalable and inexpensive way for fabricating hysteresis-less and high-performance PSCs.
机译:作为高效平面杂交连通钙钛矿太阳能电池(PSC)中的重要电子传输材料(ETMS)之一,SnO2可以收集/转移在钙钛矿活性吸收剂中产生的光产生的载体,并在界面处抑制载体重组。在这项研究中,我们证明了一种温和的解决方案处理的SnO2紧凑层可以是平面异质结PSC的突出ETM。这里,基于化学浴沉积的SnO2电子传输层(ETL)的装置表现出16.10%的功率转换效率(PCE),并且由于电荷的积累和重组,具有明显的滞后效果(滞后指数= 19.5%) SnO2 / Perovskite接口的运营商。为了改善载体解离和运输过程,将超薄TiO 2膜沉积在SnO2 EtL钝化的非抗体重组中心的顶部。基于TiO2 @ SnO2电子传输双层(ETBL)的相应装置表现出高PCE(17.45%)和可忽略的滞后效果(滞后指数= 1.5%)。这些发现表明,这种容易解决的加工TiO2 @ sno2 etbl为制造滞后和高性能pscs铺平可扩展且廉价的方式。

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