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分子材料作为钙钛矿太阳能电池的界面层和添加剂

Molecular materials as interfacial layers and additives in perovskite solar cells.

作者信息

Vasilopoulou Maria, Fakharuddin Azhar, Coutsolelos Athanassios G, Falaras Polycarpos, Argitis Panagiotis, Yusoff Abd Rashid Bin Mohd, Nazeeruddin Mohammad Khaja

机构信息

Institute of Nanoscience and Nanotechnology, National Center for Scientific Research "Demokritos", 15341 Agia Paraskevi, Attica, Greece.

Department of Physics, University of Konstanz, D-78464, Konstanz, Germany.

出版信息

Chem Soc Rev. 2020 Jul 6;49(13):4496-4526. doi: 10.1039/c9cs00733d.

Abstract

Solar cells based on organo-metal halide perovskites have gained unprecedented research interest over the last few years due to their low-cost solution processability, high power conversion efficiency, which has recently reached a certified value of 25.2%, and abundance of raw materials. Nevertheless, the best efficiencies remain below the Shockley-Queisser theoretical limit of 32.5% due to several losses arising from either defect traps present in the bulk of the perovskite absorber or at the device heterointerfaces. While bulk defects are detrimental for the device performance by mainly limiting the open circuit voltage, interfacial layers are also crucial. They dictate the charge transfer/transport from the perovskite layer to the collecting electrodes, hence influencing the device photocurrent, but also act as protective barriers against oxygen and moisture penetration. Molecular materials and additives are widely used to improve the bulk properties of perovskite absorbers through the formation of high-quality perovskite films with superior optoelectronic properties, and improved crystallinity, and also of electronically clean interfaces with minimum losses during charge transfer/transport. In this review, we analyze the predominant pathways that contribute to voltage and current losses due to poor interfaces and also due to non-radiative recombination losses arising from inferior perovskite morphology and its inherent polycrystalline and highly defective nature. We then discuss strategies for achieving interfacial organic and inorganic molecular materials for application as electron and hole transport layers in perovskite solar cells with ideal energy levels, high charge mobilities and improved thermal, photo, and structural stability. Moreover, the prerequisites for molecular additives to achieve dimensionality engineering, defect passivation, molecular cross-linking, interfacial energy alignment and electronic doping are thoroughly discussed. Finally, we examine prospects for future research directions and commercialization.

摘要

近年来,基于有机金属卤化物钙钛矿的太阳能电池因其低成本的溶液可加工性、高功率转换效率(最近已达到25.2%的认证值)以及丰富的原材料而受到了前所未有的研究关注。然而,由于钙钛矿吸收体本体或器件异质界面中存在的缺陷陷阱导致的多种损耗,其最佳效率仍低于肖克利-奎塞尔理论极限的32.5%。虽然本体缺陷主要通过限制开路电压对器件性能产生不利影响,但界面层也至关重要。它们决定了电荷从钙钛矿层到收集电极的转移/传输,从而影响器件的光电流,同时还充当防止氧气和水分渗透的保护屏障。分子材料和添加剂被广泛用于通过形成具有优异光电性能、改善的结晶度以及在电荷转移/传输过程中损失最小的电子清洁界面的高质量钙钛矿薄膜来改善钙钛矿吸收体的本体性能。在这篇综述中,我们分析了由于界面不良以及由于钙钛矿形态不佳及其固有的多晶和高度缺陷性质导致的非辐射复合损失而导致电压和电流损失的主要途径。然后,我们讨论了实现界面有机和无机分子材料的策略,这些材料可用于具有理想能级、高电荷迁移率以及改善的热、光和结构稳定性的钙钛矿太阳能电池中的电子和空穴传输层。此外,还深入讨论了分子添加剂实现维度工程、缺陷钝化、分子交联、界面能量对准和电子掺杂的先决条件。最后,我们研究了未来研究方向和商业化的前景。

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