Toward scalable solar cells: optimizing atmospheric-pressure spatial atomic layer deposition SnOX for enhanced perovskite crystallization and performance

钙钛矿(结构) 材料科学 原子层沉积 图层(电子) 光电子学 光伏系统 氧化锡 基质(水族馆) 光伏 能量转换效率 沉积(地质) 保形涂层 表面粗糙度 结晶 氧化物 涂层 纳米技术 钙钛矿太阳能电池 旋涂 表面光洁度 氧化铟锡 薄膜 介孔材料 可扩展性 带隙 化学工程
作者
Yuhan Zhang,Denys Vidish,Qiaoyun Chen,Mahdi Hasanzadeh Azar,Kevin P. Musselman
出处
期刊:Solar Energy Materials and Solar Cells [Elsevier BV]
卷期号:300: 114233-114233
标识
DOI:10.1016/j.solmat.2026.114233
摘要

Perovskite solar cells (PSCs) hold immense promise for scalable photovoltaic technology, yet challenges in manufacturing high-performance electron transport layers (ETLs) persist. Atmospheric-pressure spatial atomic layer deposition (AP-SALD) offers a scalable alternative to conventional solution-based methods, but tin oxide (SnO X ) ETLs deposited via AP-SALD (SnO X SALD ) have underperformed compared to their nanoparticle-based counterparts (SnO X NP ). This study investigates the root causes of this performance gap by analyzing the energetic, chemical, and morphological properties of SnO X SALD ETLs and their interfaces with the perovskite. We demonstrate that post-annealing at 180 °C significantly improves SnO X SALD conductivity, enhancing device photovoltaic parameters. Furthermore, it is found that the conformal nature of AP-SALD exacerbates substrate roughness, adversely affecting perovskite crystallization, unlike spin-coating, which smoothens the surface. By optimizing the ETL thickness and employing smoother fluorine-doped tin oxide (FTO) substrates, SnO X SALD -based n-i-p PSCs achieve a power conversion efficiency (PCE) exceeding 20%, matching reference SnO X NP -based PSCs. These findings provide critical insights into interfacial engineering for scalable, high-performance PSCs, advancing AP-SALD toward industrial viability. • Atmospheric-pressure spatial ALD (AP-SALD) can deposit charge-transport layers at an industrial scale. • AP-SALD SnO X has not performed well in n-i-p perovskite solar cells. • Energetic, chemical, and morphological properties of SnO X made by AP-SALD and spin coating are compared. • Conductivity, thickness, and roughness of AP-SALD SnO X are optimized. • Efficiency of n-i-p perovskite solar cells with AP-SALD SnO X improves from ∼15% to >20%.
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