Multi-functional MXene quantum dots enhance the quality of perovskite polycrystalline films and charge transport for solar cells

MXenes公司 钙钛矿(结构) 材料科学 微晶 量子点 能量转换效率 电导率 光电子学 晶界 纳米技术 化学 结晶学 复合材料 物理化学 冶金 微观结构
作者
Junli Nie,Bingqiang Niu,Yijin Wang,He Zhang,Xingmao Zhang,Huanhuan Zheng,Yimin Lei,Peng Zhong,Xiaohua Ma
出处
期刊:Journal of Colloid and Interface Science [Elsevier BV]
卷期号:646: 517-528 被引量:11
标识
DOI:10.1016/j.jcis.2023.05.058
摘要

Recently, two-dimensional (2D) transition metal carbon/nitride (MXenes) find applications in perovskite solar cells (PSCs), due to their high conductivity, tunable electronic structures, and rich surface chemistry, etc. However, the integration of 2D MXenes into PSCs is limited by their large lateral sizes and relatively-small surface volume ratios, and the roles of MXenes in PSCs are still ambiguous. In this paper, zero-dimensional (0D) MXene quantum dots (MQDs) with an average size of 2.7 nm are obtained through clipping step by step combining a chemical etching and a hydrothermal reaction, which display rich terminals (i.e., -F, -OH, -O) and unique optical properties. The 0D MQDs incorporated into SnO2 electron transport layers (ETLs) of PSCs exhibit multifunction: 1) increasing the electrical conductivity of SnO2, 2) promoting better alignments of energy band positions at the perovskite/ETL interface, 3) improving the film quality of atop polycrystalline perovskite. Particularly, the MQDs not only tightly bond with the Sn atom for decreasing the defects of SnO2, but also interact with the Pb2+ of perovskite. As a result, the defect density of PSCs is significantly decreased from 5.21×1021 to 6.4×1020 cm-3, leading to enhanced charge transport and reduced nonradiative recombination. Furthermore, the power conversion efficiency (PCE) of PSCs is substantially improved from 17.44% to 21.63% using the MQDs-SnO2 hybrid ETL compared with the SnO2 ETL. Besides, the stability of the MQDs-SnO2-based PSC is greatly enhanced, with only ~4% degradation of the initial PCE after storage in ambient condition (25°C, RH: 30~40%) for 1128 h, as compared to that of the reference device with a rapid degradation of ~60% of initial PCE after 460 h. And MQDs-SnO2-based PSC also presents higher thermal stability than SnO2-based device with continuous heating for 248 h at 85 oC. The unique MQDs exhibited in this work might also find other exciting applications such as light-emitting diodes, photodetectors, and fluorescent probes.
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