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具有3D/3D双层钙钛矿异质结的全钙钛矿串联太阳能电池。

All-perovskite tandem solar cells with 3D/3D bilayer perovskite heterojunction.

作者信息

Lin Renxing, Wang Yurui, Lu Qianwen, Tang Beibei, Li Jiayi, Gao Han, Gao Yuan, Li Hongjiang, Ding Changzeng, Wen Jin, Wu Pu, Liu Chenshuaiyu, Zhao Siyang, Xiao Ke, Liu Zhou, Ma Changqi, Deng Yu, Li Ludong, Fan Fengjia, Tan Hairen

机构信息

National Laboratory of Solid State Microstructures, College of Engineering and Applied Sciences, Frontiers Science Center for Critical Earth Material Cycling, Nanjing University, Nanjing, China.

School of Physical Sciences, University of Science and Technology of China, Hefei, China.

出版信息

Nature. 2023 Aug;620(7976):994-1000. doi: 10.1038/s41586-023-06278-z. Epub 2023 Jun 8.

Abstract

All-perovskite tandem solar cells promise higher power-conversion efficiency (PCE) than single-junction perovskite solar cells (PSCs) while maintaining a low fabrication cost. However, their performance is still largely constrained by the subpar performance of mixed lead-tin (Pb-Sn) narrow-bandgap (NBG) perovskite subcells, mainly because of a high trap density on the perovskite film surface. Although heterojunctions with intermixed 2D/3D perovskites could reduce surface recombination, this common strategy induces transport losses and thereby limits device fill factors (FFs). Here we develop an immiscible 3D/3D bilayer perovskite heterojunction (PHJ) with type II band structure at the Pb-Sn perovskite-electron-transport layer (ETL) interface to suppress the interfacial non-radiative recombination and facilitate charge extraction. The bilayer PHJ is formed by depositing a layer of lead-halide wide-bandgap (WBG) perovskite on top of the mixed Pb-Sn NBG perovskite through a hybrid evaporation-solution-processing method. This heterostructure allows us to increase the PCE of Pb-Sn PSCs having a 1.2-µm-thick absorber to 23.8%, together with a high open-circuit voltage (V) of 0.873 V and a high FF of 82.6%. We thereby demonstrate a record-high PCE of 28.5% (certified 28.0%) in all-perovskite tandem solar cells. The encapsulated tandem devices retain more than 90% of their initial performance after 600 h of continuous operation under simulated one-sun illumination.

摘要

全钙钛矿叠层太阳能电池有望在保持低制造成本的同时,比单结钙钛矿太阳能电池(PSC)具有更高的功率转换效率(PCE)。然而,它们的性能在很大程度上仍受混合铅锡(Pb-Sn)窄带隙(NBG)钙钛矿子电池性能不佳的限制,这主要是由于钙钛矿薄膜表面的陷阱密度较高。尽管具有混合二维/三维钙钛矿的异质结可以减少表面复合,但这种常见策略会导致传输损耗,从而限制器件的填充因子(FF)。在这里,我们开发了一种在Pb-Sn钙钛矿-电子传输层(ETL)界面具有II型能带结构的不混溶三维/三维双层钙钛矿异质结(PHJ),以抑制界面非辐射复合并促进电荷提取。双层PHJ是通过混合蒸发-溶液处理方法在混合Pb-Sn NBG钙钛矿顶部沉积一层卤化铅宽带隙(WBG)钙钛矿形成的。这种异质结构使我们能够将具有1.2μm厚吸收层的Pb-Sn PSC 的PCE提高到23.8%,同时具有0.873 V的高开路电压(V)和82.6%的高FF。我们由此证明了全钙钛矿叠层太阳能电池创纪录的28.5%(认证为28.0%)的PCE。在模拟的一个太阳光照下连续运行600小时后,封装的叠层器件保留了其初始性能的90%以上。

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