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通过铯掺杂的SnO管理界面缺陷和电荷载流子动力学以用于空气稳定的钙钛矿太阳能电池。

Managing Interfacial Defects and Charge-Carriers Dynamics by a Cesium-Doped SnO for Air Stable Perovskite Solar Cells.

作者信息

Adnan Muhammad, Lee Wonjong, Irshad Zobia, Kim Sunkyu, Yun Siwon, Han Hyeji, Chang Hyo Sik, Lim Jongchul

机构信息

Graduate School of Energy Science and Technology, Chungnam National University, Daejeon, 34134, Republic of Korea.

出版信息

Small. 2024 Sep;20(37):e2402268. doi: 10.1002/smll.202402268. Epub 2024 May 11.

Abstract

A high-quality nanostructured tin oxide (SnO) has garnered massive attention as an electron transport layer (ETL) for efficient perovskite solar cells (PSCs). SnO is considered the most effective alternative to titanium oxide (TiO) as ETL because of its low-temperature processing and promising optical and electrical characteristics. However, some essential modifications are still required to further improve the intrinsic characteristics of SnO, such as mismatch band alignments, charge extraction, transportation, conductivity, and interfacial recombination losses. Herein, an inorganic-based cesium (Cs) dopant is used to modify the SnO ETL and to investigate the impact of Cs-dopant in curing interfacial defects, charge-carrier dynamics, and improving the optoelectronic characteristics of PSCs. The incorporation of Cs contents efficiently improves the perovskite film quality by enhancing the transparency, crystallinity, grain size, and light absorption and reduces the defect states and trap densities, resulting in an improved power conversion efficiency (PCE) of ≈22.1% with Cs:SnO ETL, in-contrast to pristine SnO-based PSCs (20.23%). Moreover, the Cs-modified SnO-based PSCs exhibit remarkable environmental stability in a relatively higher relative humidity environment (>65%) and without encapsulation. Therefore, this work suggests that Cs-doped SnO is a highly favorable electron extraction material for preparing highly efficient and air-stable planar PSCs.

摘要

高质量的纳米结构氧化锡(SnO)作为高效钙钛矿太阳能电池(PSC)的电子传输层(ETL)受到了广泛关注。由于其低温处理以及良好的光学和电学特性,SnO被认为是氧化钛(TiO)作为ETL的最有效替代物。然而,仍需要一些必要的改进来进一步改善SnO的固有特性,如能带失配、电荷提取、传输、导电性以及界面复合损失。在此,使用一种无机铯(Cs)掺杂剂来修饰SnO ETL,并研究Cs掺杂剂对消除界面缺陷、电荷载流子动力学以及改善PSC光电特性的影响。Cs含量的掺入通过提高透明度、结晶度、晶粒尺寸和光吸收,有效改善了钙钛矿薄膜质量,并降低了缺陷态和陷阱密度,与原始SnO基PSC(20.23%)相比,使用Cs:SnO ETL时功率转换效率(PCE)提高到了约22.1%。此外,Cs修饰的SnO基PSC在相对较高的相对湿度环境(>65%)且无封装的情况下表现出显著的环境稳定性。因此,这项工作表明,Cs掺杂的SnO是制备高效且空气稳定的平面PSC的高度理想的电子提取材料。

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