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锡铅钙钛矿太阳能电池的协同表面改性

Synergistic Surface Modification of Tin-Lead Perovskite Solar Cells.

作者信息

Hu Shuaifeng, Zhao Pei, Nakano Kyohei, Oliver Robert D J, Pascual Jorge, Smith Joel A, Yamada Takumi, Truong Minh Anh, Murdey Richard, Shioya Nobutaka, Hasegawa Takeshi, Ehara Masahiro, Johnston Michael B, Tajima Keisuke, Kanemitsu Yoshihiko, Snaith Henry J, Wakamiya Atsushi

机构信息

Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto, 611-0011, Japan.

Research Center for Computational Science, Institute for Molecular Science, Okazaki, 444-8585, Japan.

出版信息

Adv Mater. 2023 Mar;35(9):e2208320. doi: 10.1002/adma.202208320. Epub 2023 Jan 22.

Abstract

Interfaces in thin-film photovoltaics play a pivotal role in determining device efficiency and longevity. In this work, the top surface treatment of mixed tin-lead (≈1.26 eV) halide perovskite films for p-i-n solar cells is studied. Charge extraction is promoted by treating the perovskite surface with piperazine. This compound reacts with the organic cations at the perovskite surface, modifying the surface structure and tuning the interfacial energy level alignment. In addition, the combined treatment with C pyrrolidine tris-acid (CPTA) reduces hysteresis and leads to efficiencies up to 22.7%, with open-circuit voltage values reaching 0.90 V, ≈92% of the radiative limit for the bandgap of this material. The modified cells also show superior stability, with unencapsulated cells retaining 96% of their initial efficiency after >2000 h of storage in N and encapsulated cells retaining 90% efficiency after >450 h of storage in air. Intriguingly, CPTA preferentially binds to Sn sites at film surface over Pb due to the energetically favored exposure of the former, according to first-principles calculations. This work provides new insights into the surface chemistry of perovskite films in terms of their structural, electronic, and defect characteristics and this knowledge is used to fabricate state-of-the-art solar cells.

摘要

薄膜光伏中的界面在决定器件效率和寿命方面起着关键作用。在这项工作中,研究了用于p-i-n太阳能电池的混合锡铅(≈1.26 eV)卤化物钙钛矿薄膜的表面处理。通过用哌嗪处理钙钛矿表面来促进电荷提取。该化合物与钙钛矿表面的有机阳离子反应,改变表面结构并调整界面能级排列。此外,与C吡咯烷三酸(CPTA)的联合处理减少了滞后现象,并使效率高达22.7%,开路电压值达到0.90 V,约为此材料带隙辐射极限的92%。改性后的电池还表现出优异的稳定性,未封装的电池在氮气中储存>2000小时后仍保留其初始效率的96%,封装的电池在空气中储存>450小时后仍保留90%的效率。有趣的是,根据第一性原理计算,由于前者在能量上更有利的暴露,CPTA在薄膜表面优先与Sn位点结合而不是Pb位点。这项工作在钙钛矿薄膜的结构、电子和缺陷特性方面为其表面化学提供了新的见解,并利用这些知识制造了最先进的太阳能电池。

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