Rapid microwave annealing of perovskite films: Exploring the mechanism of heat generation and influence on growth kinetics

退火(玻璃) 成核 能量转换效率 微波食品加热 材料科学 钙钛矿(结构) 晶体生长 Crystal(编程语言) 纳米技术 化学工程 电介质 化学物理 吸收边 光电子学 发热 热的 吸收(声学) 太阳能电池 钙钛矿太阳能电池 光伏 晶粒生长 快速热处理 薄膜 电子工程 粒度 晶界
作者
Syed Nazmus Sakib,D.N. Payne,Jincheol Kim,Shujuan Huang,Binesh Puthen Veettil
出处
期刊:Solar Energy Materials and Solar Cells [Elsevier BV]
卷期号:295: 113967-113967 被引量:1
标识
DOI:10.1016/j.solmat.2025.113967
摘要

Perovskite solar cells have gained significant attention in both research and industry due to their simple manufacturing process, low cost, abundance of constituent materials, and high-power conversion efficiency. Thermal annealing is crucial for achieving optimal crystal growth in perovskite films. Recently, microwave processing has emerged as a rapid and energy-efficient alternative to conventional hotplate annealing. By using microwave annealing, we reduced processing time to one-tenth of the traditional methods while simultaneously enhancing crystal quality. However, the underlying heat generation mechanism remains unclear, requiring further investigation to optimise the process and enable widespread adoption of this scalable technology. This work explores microwave absorption and heat generation mechanisms in rapidly grown MAPbI 3 perovskite films. Through simulations and experiments, we model the role of dielectric absorption and eddy current heating in perovskite/glass and perovskite/FTO layers, supported by structural, optical and electrical characterisation. Furthermore, we successfully mitigated the edge effect caused by electromagnetic wave diffraction, a common limitation of microwave annealing of semiconductors. We expanded classical nucleation theory with microwave-specific modifications, establishing a comprehensive framework that links microwave power to nucleation rates and grain growth. This work provides critical insights into optimising microwave processing parameters, advancing rapid thermal techniques for scalable, high-throughput perovskite solar cell manufacturing. • Implementation of rapid microwave annealing demonstrates enhanced crystal quality in MAPbI 3 perovskite. • A 30-s, 900 W microwave annealing surpasses the material quality improvements achieved by a 30-min hotplate annealing. • COMSOL modelling clarifies temperature distribution during microwave annealing, showing strong agreement with experiments. • Microwave absorption mainly happens in the FTO layers, demonstrating the heating produced from microwave fields.
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