Tailored Lattice-Matched Carbazole Self-Assembled Molecule for Efficient and Stable Perovskite Solar Cells.

IF 15.6 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Journal of the American Chemical Society Pub Date : 2025-03-05 Epub Date: 2025-02-18 DOI:10.1021/jacs.5c00629
Hongzhuo Wu, Jiaxin Wu, Zuhong Zhang, Xiaoyu Guan, Luyao Wang, Lin-Long Deng, Guixiang Li, Antonio Abate, Meng Li
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Abstract

Self-assembled monolayer molecules have been widely employed as interfacial transport materials in inverted perovskite solar cells (PSCs), demonstrating high efficiency and improved device stability. However, self-assembling monolayer (SAM) molecules often suffer from aggregation and weak interactions with the perovskite layer, resulting in inefficient charge transfer and significant energy losses, ultimately limiting the power conversion efficiency and long-term stability of perovskite solar cells. In this work, we developed a series of novel skeleton-matching carbazole isomer SAMs based on the following key design principles: (1) introducing a benzene ring structure to distort the molecular skeleton of the SAM, thereby preventing aggregation and achieving a uniform distribution on fluorine-doped tin oxide (FTO) substrates; (2) strategically incorporating methoxy groups onto the benzene ring at different positions (ortho, meta, and para). These functional groups not only increase anchoring points with the perovskite layer but also fine-tune the molecular dipole moment. Among the SAMs, m-PhPACz exhibits the most favorable properties, with a maximum dipole moment of 2.4 D and an O-O distance that aligns excellently with the diagonal lead ions in the adjacent perovskite lattice, thereby enhancing SAM-perovskite interactions, facilitating efficient charge extraction, and improving interfacial stability. As a result, the new SAM-based PSCs achieved an impressive power conversion efficiency of 26.2%, with 12.9% improvement. Moreover, the devices demonstrated outstanding photothermal stability, retaining 96% of their initial PCE after 1000 h at 85 °C and maintaining 90% of their initial PCE after 300 h of UV-light exposure.

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用于高效稳定钙钛矿太阳能电池的定制晶格匹配咔唑自组装分子。
自组装单层分子被广泛用作倒钙钛矿太阳能电池(PSCs)的界面传输材料,具有高效率和提高器件稳定性的优点。然而,自组装单层(SAM)分子往往与钙钛矿层发生聚集和弱相互作用,导致电荷转移效率低下和能量损失显著,最终限制了钙钛矿太阳能电池的功率转换效率和长期稳定性。在这项工作中,我们基于以下关键设计原则开发了一系列新的骨架匹配咔唑异构体SAM:(1)引入苯环结构扭曲SAM的分子骨架,从而防止聚集并实现均匀分布在氟掺杂氧化锡(FTO)底物上;(2)在苯环的不同位置(邻位、间位和对位)上战略性地加入甲氧基。这些官能团不仅增加了钙钛矿层的锚点,而且对分子偶极矩进行了微调。在SAMs中,m-PhPACz表现出最有利的性能,最大偶极矩为2.4 D, O-O距离与相邻钙钛矿晶格中的对角铅离子排列良好,从而增强了sam -钙钛矿相互作用,促进了有效的电荷提取,提高了界面稳定性。结果,新的基于sam的psc实现了令人印象深刻的26.2%的功率转换效率,提高了12.9%。此外,该器件表现出出色的光热稳定性,在85°C下照射1000小时后保持96%的初始PCE,在紫外线照射300小时后保持90%的初始PCE。
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来源期刊
CiteScore
24.40
自引率
6.00%
发文量
2398
审稿时长
1.6 months
期刊介绍: The flagship journal of the American Chemical Society, known as the Journal of the American Chemical Society (JACS), has been a prestigious publication since its establishment in 1879. It holds a preeminent position in the field of chemistry and related interdisciplinary sciences. JACS is committed to disseminating cutting-edge research papers, covering a wide range of topics, and encompasses approximately 19,000 pages of Articles, Communications, and Perspectives annually. With a weekly publication frequency, JACS plays a vital role in advancing the field of chemistry by providing essential research.
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