钙钛矿(结构)
材料科学
分子
光伏
光伏系统
共轭体系
能量转换效率
纳米技术
化学物理
光电子学
光谱学
小分子
聚合物
有机太阳能电池
压力(语言学)
接口(物质)
信号(编程语言)
纳米-
科技与社会
化学工程
曲面(拓扑)
作者
Chuanyao Luo,Zhongliang Yan,Tao Du,Zhiyuan Dai,Tanghao Liu,Bosen Zou,Wenbin Yuan,Yang Yang,Yao Liu,Xicheng Tang,Biao Zhang,Jan Seidel,Jae Sung Yun,Ruihao Chen,Renjun Guo,Jun Yin,Yang Bai,Tom Wu
标识
DOI:10.1038/s41467-026-76848-y
摘要
In perovskite photovoltaics, self-assembled molecules (SAMs) have demonstrated the ability to enhance interface quality, reduce charge recombination, and improve energy-level alignment. However, most symmetrical molecules for photovoltaic applications tend to self-aggregate, which hinders uniform film formation, reduces the active surface area, and limits interface contact and device efficiency. In this work, we propose a symmetry-breaking co-assembly (SBC) strategy to improve the performance of the widely employed SAM of 2-[3,6-Dimethoxy-9H-carbazol-9-yl)ethyl] phosphonic acid (MeO-2PACz) by coupling with another small conjugated molecule, dibenzo[b,d]thiophene-4-carboxylic acid (DTCA). The broken symmetry at the molecular level enables the synthesis of co-SAM layers with significantly improved uniformity and coverage. A quantitative protocol based on atomic force microscope-infrared spectroscopy (AFM-IR) has been developed to determine the surface coverage of SAM layers. When the surface coverage of co-SAM layers is maximized, the interfacial chemical reaction under electrical stress and the non-radiative recombination loss are effectively suppressed, resulting in power conversion efficiencies (PCEs) of 26.32% (certified as 25.67%) and 25.34% for areas of 0.08 cm2 and 1 cm2, respectively. The encapsulated device retains 93% of its initial PCE after operating at the maximum power point (MPP) for 1,150 hours, as evaluated following the ISOS-L-1 protocol. These results underscore the effectiveness of the SBC strategy in advancing perovskite photovoltaics, and the coverage-maximizing methodology may be generalized to other research domains involving SAMs. Perovskite solar cells need uniform self-assembled molecule layers, but symmetric molecules can clump and weaken interfaces. Luo et a. paired two molecules to break symmetry, improving coverage, efficiency and long-term stability.
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