Impurity-healing interface engineering for efficient perovskite submodules

IF 48.5 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Nature Pub Date : 2024-09-26 DOI:10.1038/s41586-024-08073-w
Haifei Wang, Shuojian Su, Yuetian Chen, Meng Ren, Shaowei Wang, Yao Wang, Chen Zhu, Yanfeng Miao, Chuying Ouyang, Yixin Zhao
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Abstract

An issue that affects the scaling-up development of perovskite photovoltaics is the marked efficiency drop when enlarging the device area, caused by the inhomogeneous distribution of defected sites1–3. In the narrow band gap formamidinium lead iodide (FAPbI3), the native impurities of PbI2 and δ-FAPbI3 non-perovskite could induce unfavoured non-radiative recombination, as well as inferior charge transport and extraction4,5. Here we develop an impurity-healing interface engineering strategy to address the issue in small-area solar cells and large-scale submodules. With the introduction of a functional cation, 2-(1-cyclohexenyl)ethyl ammonium, two-dimensional perovskite with high mobility is rationally constructed on FAPbI3 to horizontally cover the film surface and to vertically penetrate the grain boundaries of three-dimensional perovskites. This unique configuration not only comprehensively transforms the PbI2 and δ-FAPbI3 impurities into stable two-dimensional perovskite and realizes uniform defect passivation but also provides interconnecting channels for efficient carrier transport. As a result, the FAPbI3-based small-area (0.085 cm2) solar cells achieve a champion efficiency of more than 25.86% with a notably high fill factor of 86.16%. The fabricated submodules with an aperture area of 715.1 cm2 obtain a certified record efficiency of 22.46% with a good fill factor of 81.21%, showcasing the feasibility and effectualness of the impurity-healing interface engineering for scaling-up promotion with well-preserved photovoltaic performance. An impurity-healing interface engineering strategy is developed to address the issue in small-area solar cells and large-scale submodules.

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用于高效过氧化物子模块的杂质修复界面工程
扩大设备面积时效率会显著下降,这是缺陷位点分布不均匀造成的1-3。在窄带隙甲脒碘化铅(FAPbI3)中,PbI2 的原生杂质和 δ-FAPbI3 非包晶石会导致不利的非辐射性重组,以及劣质的电荷传输和提取4,5。通过引入功能阳离子 2-(1-环己烯基)乙基铵,我们在 FAPbI3 上合理地构建了具有高迁移率的二维(2D)过氧化物,使其水平覆盖薄膜表面,垂直渗透到三维过氧化物的晶界。这种独特的构型不仅能将 PbI2 和 δ-FAPbI3 杂质全面转化为稳定的二维包晶,实现均匀的缺陷钝化,还能为载流子的高效传输提供互连通道。因此,基于 FAPbI3 的小面积(0.085 平方厘米)太阳能电池的冠军效率超过 25.86%,填充因子 (FF) 显著高达 86.16%。更令人鼓舞的是,孔径面积为 715.1 平方厘米的子模块获得了 22.46% 的认证最高效率和 81.21% 的良好填充因子,证明了杂质愈合界面工程在保持良好光伏性能的前提下进行放大推广的可行性和有效性。
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来源期刊
Nature
Nature 综合性期刊-综合性期刊
CiteScore
90.00
自引率
1.20%
发文量
3652
审稿时长
3 months
期刊介绍: Nature is a prestigious international journal that publishes peer-reviewed research in various scientific and technological fields. The selection of articles is based on criteria such as originality, importance, interdisciplinary relevance, timeliness, accessibility, elegance, and surprising conclusions. In addition to showcasing significant scientific advances, Nature delivers rapid, authoritative, insightful news, and interpretation of current and upcoming trends impacting science, scientists, and the broader public. The journal serves a dual purpose: firstly, to promptly share noteworthy scientific advances and foster discussions among scientists, and secondly, to ensure the swift dissemination of scientific results globally, emphasizing their significance for knowledge, culture, and daily life.
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