Li Chi, Chen Yong, Li Yuheng, Zhang Zhewei, Yang Jing, Wang Yao, Gong Lijie, Yuan Zhen, Liang Lusheng, Liu Siyi, Zhu Yongxin, Lian Chongyan, Haider Mustafa, Guo Tie, Xu Xiaohua, Li Dongdong, Bi Enbing, Gao Peng
State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, 350002, China.
Laboratory for Advanced Functional Materials, Xiamen Institute of Rare Earth Materials, Haixi Institute, Chinese Academy of Sciences, Xiamen, 361021, China.
Angew Chem Int Ed Engl. 2025 Jun 2;64(23):e202502730. doi: 10.1002/anie.202502730. Epub 2025 Apr 2.
The inhomogeneity of hole-selective self-assembled molecular layers (SAMLs) often arises from the insufficient bonding between anchors and metal oxide, particularly on textured silicon surfaces when fabricating monolithic perovskite/silicon tandem solar cells (P/S-TSCs) and the hydrophobic carbazole complicates the fabrication of high-quality perovskite films. To address this, we developed a novel bidentate-anchored superwetting aromatic SAM based on an upside-down carbazole core as a hole-selective layer (HSL), denoted as ((9H-carbazole-3,6-diyl)bis(4,1-phenylene))bis(phosphonic acid) (2PhPA-CzH). The bisphosphonate-anchored exhibited enhanced adsorption capabilities and efficient hole extraction/transport, and the reversely substituted carbazole ring contributed a friendly super wetting underlayer that enabled high-quality perovskite films with minimized energetic mismatches, which 2PhPA-CzH played a pivotal role in dual interfacial energy regulation. Through these advancements, the optimized wide-bandgap (1.68 eV) PSCs demonstrated an improved PCE of 22.83% and excellent stability with T exceeding 1000 h under damp-heat conditions (ISOS-D-3, 85% RH, 85 °C), representing one of the best performances for SAMs as HSL-based PSCs. Notably, 2PhPA-CzH-functionalized recombination layers extended to submicron-pyramid texture SHJ to fabricate P/S-TSCs, achieving an impressive efficiency of 32.19% at an active area of 1 cm (certified 31.54%) while maintaining excellent photostability. This work offers guidance for designing multidentate-anchored SAMs to realize record PCE and excellent stability in P/S-TSCs.
空穴选择性自组装分子层(SAMLs)的不均匀性通常源于锚定基团与金属氧化物之间的键合不足,尤其是在制备单片钙钛矿/硅串联太阳能电池(P/S-TSCs)时,在有纹理的硅表面上,而疏水性咔唑使高质量钙钛矿薄膜的制备变得复杂。为了解决这个问题,我们开发了一种基于倒置咔唑核心的新型双齿锚定超润湿芳香族自组装分子层作为空穴选择性层(HSL),表示为((9H-咔唑-3,6-二基)双(4,1-亚苯基))双(膦酸)(2PhPA-CzH)。双膦酸酯锚定表现出增强的吸附能力和有效的空穴提取/传输,并且反向取代的咔唑环有助于形成友好的超润湿底层,能够实现具有最小能量失配的高质量钙钛矿薄膜,其中2PhPA-CzH在双重界面能量调节中起关键作用。通过这些进展,优化后的宽带隙(1.68 eV)钙钛矿太阳能电池(PSCs)表现出22.83%的提高的光电转换效率(PCE)和出色的稳定性,在湿热条件下(ISOS-D-3,85%相对湿度,85°C)T超过1000小时,代表了基于自组装分子层作为空穴选择性层的钙钛矿太阳能电池的最佳性能之一。值得注意的是,2PhPA-CzH功能化的复合层扩展到亚微米金字塔纹理的异质结(SHJ)以制备P/S-TSCs,在1 cm²的有源面积上实现了令人印象深刻的32.19%的效率(认证效率为31.54%),同时保持了出色的光稳定性。这项工作为设计多齿锚定自组装分子层以在P/S-TSCs中实现创纪录的光电转换效率和出色的稳定性提供了指导。