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调控界面层中的载流子复合以提升钙钛矿/有机叠层太阳能电池的效率和稳定性

Regulating Charge Carrier Recombination in the Interconnecting Layer to Boost the Efficiency and Stability of Monolithic Perovskite/Organic Tandem Solar Cells.

机构信息

Laboratory of Advanced Optoelectronic Materials, Suzhou Key Laboratory of Novel Semiconductor-optoelectronics Materials and Devices, College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou, 215123, P. R. China.

School of Microelectronics, Shandong University, Jinan, 250100, P. R. China.

出版信息

Adv Mater. 2023 Feb;35(6):e2208604. doi: 10.1002/adma.202208604. Epub 2022 Dec 18.

Abstract

The charge carriers of single-junction solar cells can be fluently extracted and then collected by electrodes, leading to weak charge carrier accumulation and low energy loss (E ). However, in tandem solar cells (TSCs), it is a considerable challenge to obtain a balance between the densities of the holes and electrons extracted from the two respective subcells to facilitate an efficient recombination in the interconnecting layer (ICL). Herein, a charge-carrier-dynamic management strategy for inorganic perovskite/organic TSCs is proposed, centered on the simultaneous regulation of the defect states of CsPbI Br perovskite in the front subcell and hole transport ability from the perovskite to ICL. The target hole density on the perovskite surface and the hole loss before reaching the ICL are significantly improved. As a result, the hole/electron density offset in the ICL can be effectively narrowed, leading to a balanced charge carrier recombination, which reduces the E in TSCs. The resulting inorganic perovskite/organic 0.062-cm TSC exhibits a remarkable power conversion efficiency (PCE) of 23.17% with an ultrahigh open-circuit voltage (V ) of 2.15 V, and the PCE of the 1.004-cm device (21.69%) exhibited a weak size-dependence. This charge-carrier-dynamic management strategy can also effectively enhance the operational and ultraviolet-light stabilities of the TSCs.

摘要

单结太阳能电池的载流子可以流畅地被电极提取和收集,导致载流子积累较弱,能量损失低(E)。然而,在串联太阳能电池(TSC)中,从两个子电池中提取的空穴和电子的密度之间达到平衡,以促进在互连层(ICL)中的有效复合,这是一个相当大的挑战。本文提出了一种用于无机钙钛矿/有机 TSC 的载流子动力学管理策略,其核心是同时调节前子电池中 CsPbI Br 钙钛矿的缺陷态和钙钛矿到 ICL 的空穴传输能力。在 ICL 中,钙钛矿表面的目标空穴密度和到达 ICL 之前的空穴损耗显著提高。结果,ICL 中的空穴/电子密度偏移可以有效缩小,导致载流子复合平衡,从而降低 TSC 中的 E。所得的无机钙钛矿/有机 0.062-cm TSC 表现出显著的 23.17%功率转换效率(PCE),具有超高的开路电压(V)为 2.15 V,而 1.004-cm 器件的 PCE(21.69%)表现出较弱的尺寸依赖性。这种载流子动力学管理策略还可以有效地增强 TSC 的工作稳定性和耐紫外光稳定性。

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