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Author Correction: Titanium-carbide MXenes for work function and interface engineering in perovskite solar cells

机译:作者更正:用于钙钛矿太阳能电池的功函数和界面工程的碳化钛MXenes

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摘要

To improve the efficiency of perovskite solar cells, careful device design and tailored interface engineering are needed to enhance optoelectronic properties and the charge extraction process at the selective electrodes. Here, we use two-dimensional transition metal carbides (MXene Ti3C2Tx) with various termination groups (T-x) to tune the work function (WF) of the perovskite absorber and the TiO2 electron transport layer (ETL), and to engineer the perovskite/ETL interface. Ultraviolet photoemission spectroscopy measurements and density functional theory calculations show that the addition of Ti3C2Tx to halide perovskite and TiO2 layers permits the tuning of the materials' WFs without affecting other electronic properties. Moreover, the dipole induced by the Ti3C2Tx at the perovskite/ETL interface can be used to change the band alignment between these layers. The combined action of WF tuning and interface engineering can lead to substantial performance improvements in MXene-modified perovskite solar cells, as shown by the 26% increase of power conversion efficiency and hysteresis reduction with respect to reference cells without MXene.
机译:为了提高钙钛矿太阳能电池的效率,需要仔细的设备设计和量身定制的接口工程来增强光电性能和选择性电极上的电荷提取过程。在这里,我们使用具有各种终止基团(Tx)的二维过渡金属碳化物(MXene Ti3C2Tx)来调节钙钛矿吸收剂和TiO2电子传输层(ETL)的功函数(WF),并设计钙钛矿/ ETL。接口。紫外光发射光谱测量和密度泛函理论计算表明,在卤化钙钛矿和TiO2层中添加Ti3C2Tx可以调节材料的WF,而不会影响其他电子性能。此外,在钙钛矿/ ETL界面处由Ti3C2Tx诱导的偶极子可用于改变这些层之间的能带排列。 WF调整和界面工程的共同作用可以导致MXene改性钙钛矿太阳能电池的性能大幅提高,相对于不含MXene的参比电池,功率转换效率提高了26%,磁滞降低了。

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