钙钛矿(结构)
材料科学
图层(电子)
原子层沉积
沉积(地质)
光电子学
重组
单层
钙钛矿太阳能电池
能量转换效率
载流子寿命
光伏系统
热稳定性
热的
纳米技术
化学工程
阻塞(统计)
薄膜
原子力显微镜
科技与社会
载流子
无辐射复合
作者
Jie Zhang,Yuehui Li,Liman Huo,Bing Yin,Yudi Wang,Qingshun Dong,Guozhen Liu,Xin Lu,Wenqi Han,Wenrui Li,Yilin Gao,Zheng Lv,Zhiyong Wang,Lida Liu,Yantao Shi
标识
DOI:10.1002/anie.202516537
摘要
ABSTRACT Self‐assembled monolayers (SAM) have demonstrated significant potential for enhancing the performance of perovskite solar cells (PSCs). However, their incomplete surface coverage exposes defect sites on the NiO x surface, leading to detrimental non‐radiative recombination and exacerbating the perovskite degradation. To overcome these limitations, we developed a strategy of area‐selective atomic layer deposition (AS‐ALD) that precisely deposits an ultrathin AlO x layer on exposed NiO x surfaces while preserving SAM‐covered areas. This approach effectively suppresses charge recombination by blocking direct contact between NiO x and the perovskite while leveraging the intrinsic negative fixed charges in AlO x to attract holes and repel electrons. Importantly, the SAM‐covered areas remain unaffected, ensuring unhindered carrier extraction. Additionally, the deposited AlO x reduces the deleterious Ni 4+ content, which can readily trigger perovskite decomposition, thereby significantly enhancing device performance and stability. As a result, the PCE of PSCs increased to 26.41%, with perovskite modules achieving 20.88% efficiency over a 64.68 cm 2 active area. Device stability significantly improved with ∼ 95% initial PCE retained after 1500 h dark storage (ISOS‐D‐1), ∼ 80% after 800 h at 85°C (ISOS‐D‐2), ∼ 85% after 48 thermal cycles (ISOS‐T‐1), and ∼ 90% after 1300 h continuous 1‐sun illumination (ISOS‐L‐1, MPPT).
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