Bilayer metal halide perovskite for efficient and stable solar cells and modules

Yanqing Zhu, Min Hu, Mi Xu, Bo Zhang, Fuzhi Huang, Yi-bing Cheng, Jianfeng Lu
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引用次数: 16

Abstract

To reach the target of carbon neutral, a transition from fossil energy to renewable energy is unavoidable. Photovoltaic technology is considered one of the most prominent sources of renewable energy. Recently, metal halide perovskite materials have attracted tremendous interest in the areas of optoelectronic devices due to their ease of processing and outstanding performance. To date, perovskite solar cells (PSCs) have shown high power conversion efficiency up to 25.7% and 31.3% for the perovskite-silicon tandem solar cells, which promises to revolutionize the PV landscape. However, the stability of PSCs under operating conditions has yet to match state-of-the-art silicon-based solar cell technology, in which the stability of the absorbing layer and relevant interfaces is the primary challenge. These issues become more serious in the larger area solar modules due to the additional interfaces and more defects within the perovskite. Bilayer perovskite film composed of a thin low dimensional perovskite layer and a three-dimensional perovskite layer shows great potential in fabricating solar cells with high efficiency and stability simultaneously. In this review, recent advancements, including composition design and processing methods for constructing bilayer perovskite films are discussed. We then analyze the challenges and resolutions in deposition bilayer perovskite films with scalable techniques. After summarizing the beneficial effect of the bilayer structure, we propose our thinking of feasible strategies to fabricate high efficiency perovskite solar modules with a long lifetime. Finally, we outline the directions for future work that will push the perovskite PV technology toward commercialization.
用于高效稳定的太阳能电池和组件的双层金属卤化物钙钛矿
要达到碳中和的目标,从化石能源向可再生能源的过渡是不可避免的。光伏技术被认为是最重要的可再生能源之一。近年来,金属卤化物钙钛矿材料因其易于加工和优异的性能在光电器件领域引起了人们的极大兴趣。迄今为止,钙钛矿太阳能电池(PSCs)已经显示出高达25.7%和31.3%的钙钛矿-硅串联太阳能电池的高功率转换效率,这有望彻底改变光伏领域。然而,PSCs在工作条件下的稳定性尚未达到最先进的硅基太阳能电池技术,其中吸收层和相关界面的稳定性是主要挑战。这些问题在大面积太阳能组件中变得更加严重,因为钙钛矿内部有额外的界面和更多的缺陷。由低维薄钙钛矿层和三维钙钛矿层组成的双层钙钛矿膜在高效稳定的同时制备太阳能电池方面显示出巨大的潜力。本文综述了近年来制备双层钙钛矿薄膜的研究进展,包括结构设计和制备方法。然后,我们用可扩展技术分析了沉积双层钙钛矿薄膜的挑战和解决方案。在总结了双层结构的有利作用后,提出了制备高效长寿命钙钛矿太阳能组件的可行策略思路。最后,我们概述了将钙钛矿光伏技术推向商业化的未来工作方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
7.40
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