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用于钙钛矿太阳能电池窄带隙FAPbI光吸收剂的四氟硼酸甲铵添加剂自发异质界面调制

Spontaneous Heterointerface Modulation by a Methylammonium Tetrafluoroborate Additive for a Narrow-Bandgap FAPbI Photoabsorber in Perovskite Solar Cells.

作者信息

Kubota Daisuke, Katoh Ryuzi, Kanda Hiroyuki, Yaguchi Hiroyuki, Murakami Takurou N, Nishimura Naoyuki

机构信息

National Institute of Advanced Industrial Science and Technology (AIST), 1-1-1 Higashi, Tsukuba, Ibaraki 305-8565, Japan.

Graduate School of Science and Engineering, Saitama University, Saitama-shi, Saitama 338-8570, Japan.

出版信息

ACS Appl Mater Interfaces. 2024 Oct 9;16(40):53918-53929. doi: 10.1021/acsami.4c11784. Epub 2024 Sep 25.

Abstract

Over the past decade, the photovoltaic (PV) performance of perovskite solar cells (PSCs) has been considerably improved with the development of perovskite photoabsorbers. Among these, formamidinium-lead-iodide (FAPbI) is a promising photoabsorber owing to its narrow bandgap and is mainly used in n-i-p-structured PSCs. The property modulation of FAPbI photoabsorbers while retaining their narrow bandgap is imperative for further development of PSCs. Molecular tetrafluoroborate anion (BF)-based materials can be used as additives in perovskite layers to prevent bandgap widening, while facilitating perovskite crystal growth; thus, they are suitable for FAPbI photoabsorbers in principle. However, BF-based additives for narrow-bandgap FAPbI photoabsorbers have not been developed. This is presumably because of the higher temperatures required for FAPbI formation than that for other wide-bandgap perovskites, which likely changes the effects of BF-based additives from those for wide-bandgap perovskites. In this study, we verified the applicability of methylammonium tetrafluoroborate (MABF) as an additive in narrow-bandgap FAPbI photoabsorbers for improving their PV performance primarily via the spontaneous modulation of the heterointerfaces between FAPbI and carrier-transport materials, rather than the bulk quality improvement of FAPbI perovskite. At the interface of the hole-transport material and FAPbI, MABF addition effectively eliminates the surface defects in all FAPbI components, even in the absence of BF over the heated FAPbI surface, suggesting a defect-suppression mechanism that differs from that observed in conventional ones. Moreover, at the interface of FAPbI and the TiO electron-transport material, the BF-derived species, which likely includes decomposed BF owing to the high-temperature heating, spontaneously segregates upon deposition, thereby modulating the heterointerface. Furthermore, in addition to the carrier mobility ratio in FAPbI (e:h ≈ 7:3), a time-resolved microwave conductivity measurement revealed that MABF addition eliminates carrier traps at the heterointerfaces. Our findings provide insights into promising FAPbI-based PSCs, offering a valuable tool for their further development.

摘要

在过去十年中,随着钙钛矿光吸收剂的发展,钙钛矿太阳能电池(PSC)的光伏性能有了显著提高。其中,甲脒碘化铅(FAPbI)因其窄带隙而成为一种有前景的光吸收剂,主要用于n-i-p结构的PSC中。在保持窄带隙的同时对FAPbI光吸收剂进行性能调制对于PSC的进一步发展至关重要。基于分子四氟硼酸根阴离子(BF)的材料可作为钙钛矿层中的添加剂,以防止带隙变宽,同时促进钙钛矿晶体生长;因此,它们原则上适用于FAPbI光吸收剂。然而,尚未开发出用于窄带隙FAPbI光吸收剂的基于BF的添加剂。这可能是因为FAPbI形成所需的温度高于其他宽带隙钙钛矿,这可能会使基于BF的添加剂的效果与宽带隙钙钛矿的效果有所不同。在本研究中,我们验证了四氟硼酸甲铵(MABF)作为窄带隙FAPbI光吸收剂添加剂的适用性,主要通过自发调制FAPbI与载流子传输材料之间的异质界面来提高其光伏性能,而不是改善FAPbI钙钛矿的整体质量。在空穴传输材料与FAPbI的界面处,添加MABF即使在加热的FAPbI表面不存在BF的情况下,也能有效消除所有FAPbI组分中的表面缺陷,这表明其缺陷抑制机制与传统机制不同。此外,在FAPbI与TiO电子传输材料的界面处,BF衍生的物种(可能包括由于高温加热而分解的BF)在沉积时会自发分离,从而调制异质界面。此外,除了FAPbI中的载流子迁移率比(e:h≈7:3)外,时间分辨微波电导率测量表明,添加MABF可消除异质界面处的载流子陷阱。我们的研究结果为基于FAPbI的有前景的PSC提供了见解,为其进一步发展提供了有价值的工具。

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