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面向高稳定性和高性能的锡基钙钛矿太阳能电池

Sn-Based Perovskite Solar Cells towards High Stability and Performance.

作者信息

Ayaydah Wafa', Raddad Eman, Hawash Zafer

机构信息

Department of Physics, Birzeit University, Birzeit, Ramallah 71939, Palestine.

出版信息

Micromachines (Basel). 2023 Mar 31;14(4):806. doi: 10.3390/mi14040806.

Abstract

Recent years have witnessed rapid development in the field of tin-based perovskite solar cells (TPSCs) due to their environmental friendliness and tremendous potential in the photovoltaic field. Most of the high-performance PSCs are based on lead as the light-absorber material. However, the toxicity of lead and the commercialization raise concerns about potential health and environmental hazards. TPSCs can maintain all the optoelectronic properties of lead PSCs, as well as feature a favorable smaller bandgap. However, TPSCs tend to undergo rapid oxidation, crystallization, and charge recombination, which make it difficult to unlock the full potential of such perovskites. Here, we shed light on the most critical features and mechanisms affecting the growth, oxidation, crystallization, morphology, energy levels, stability, and performance of TPSCs. We also investigate the recent strategies, such as interfaces and bulk additives, built-in electric field, and alternative charge transport materials that are used to enhance the performance of the TPSCs. More importantly, we have summarized most of the recent best-performing lead-free and lead-mixed TPSCs. This review aims to help future research in TPSCs to produce highly stable and efficient solar cells.

摘要

近年来,基于锡的钙钛矿太阳能电池(TPSCs)领域发展迅速,这归因于其环境友好性以及在光伏领域的巨大潜力。大多数高性能的钙钛矿太阳能电池(PSCs)以铅作为吸光材料。然而,铅的毒性以及商业化引发了对潜在健康和环境危害的担忧。TPSCs 能够保持铅基 PSCs 的所有光电特性,并且具有更有利的较小带隙。然而,TPSCs 容易发生快速氧化、结晶和电荷复合,这使得难以充分发挥此类钙钛矿的潜力。在此,我们阐明了影响 TPSCs 的生长、氧化、结晶、形态、能级、稳定性和性能的最关键特征及机制。我们还研究了近期的策略,例如界面和体相添加剂、内建电场以及用于提高 TPSCs 性能的替代电荷传输材料。更重要的是,我们总结了近期大多数性能最佳的无铅和含铅混合 TPSCs。本综述旨在助力 TPSCs 的未来研究,以生产出高度稳定且高效的太阳能电池。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/665c/10143209/83fc0e9279aa/micromachines-14-00806-g001.jpg

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