Crystallinity Control and Strain Release in Wide-Bandgap Perovskite Film via Seed-Induced Growth for Efficient Photovoltaics

材料科学 结晶度 能量转换效率 钙钛矿(结构) 带隙 化学工程 成核 退火(玻璃) 晶体生长 Crystal(编程语言) 热稳定性 粒度 纳米技术 光伏 光电子学 光伏系统 复合材料 结晶学 有机化学 化学 生物 工程类 程序设计语言 计算机科学 生态学
作者
H. Yang,Kai Wu,Haikuo Guo,Jiali Wei,Jingwei Guo,Rui Liu,Xin Wang,Yali Bai,Yue Xu,Tiantian Li,Chengjun Zhu,Fuhua Hou
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:16 (32): 42566-42576 被引量:6
标识
DOI:10.1021/acsami.4c08445
摘要

The seed method stands out as a straightforward and efficient approach for fabricating high-performance perovskite solar cells (PSCs). In this study, we propose the utilization of an antisolvent as an additive to induce crystal seeding, thereby facilitating the growth of wide-bandgap perovskite grains. Specifically, we introduce three commonly used antisolvents─ethyl acetate (EA), isopropanol (IPA), and chlorobenzene (CB)─directly into the perovskite precursor solution to generate perovskite seeds, which serve to promote subsequent nucleation. This antisolvent–crystal seeding method (ACSM) results in increased grain sizes, reduced film defects, and overall improved film quality. Consequently, the power conversion efficiencies (PCEs) of 1.647 eV PSCs with EA, IPA, and CB additives are recorded at 19.86%, 20.61%, and 20.45%, respectively, surpassing that of the reference device with a PCE of 18.83%. Furthermore, the stability of the PSCs prepared through ACSM is notably enhanced. Notably, PSCs optimized with IPA retain 75% of the original PCE after being stored in ambient air conditions (25 °C, RH ∼ 15%) for 30 days, better than the CB-added (64%) and the EA-added devices (53%), while the reference devices only retain 31% of the initial PCE. Moreover, even after continuous thermal annealing at 50 °C for 200 h, IPA-assisted devices demonstrate the best stability, followed by those with CB and EA, with the reference exhibiting the poorest stability.
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