光伏技术的革命:从背接触硅到背接触包晶体太阳能电池

Waqas Ahmad , Chi Li , Wei Yu , Peng Gao
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摘要

互嵌式背接触(IBC)电极配置是实现高效光伏(PV)电池的一种新方法。与传统的平面或夹层结构不同,IBC 结构将阴极和阳极接触电极置于太阳能电池的背面。本综述全面概述了背接触(BC)太阳能电池,首先介绍了背接触硅(BC-Si)太阳能电池诞生的历史背景及其发展到各种设计(如金属化包穿、发射极包穿和相互咬合配置)的过程。本综述强调背接触包晶太阳能电池(BC-PSCs),因为与传统的 PSC 架构相比,它们有可能实现更高的效率和更好的稳定性。在此,我们将根据后电极的位置讨论 BC-PSC 的分类,包括相互咬合和准相互咬合结构。通过研究开发各类 BC-PSC 时使用的各种电极图案技术,如光刻技术、微球光刻技术、裂膜光刻技术、网状多孔钛(Ti)电极、V 形凹槽和侧向结构过磷酸盐单晶/阴影掩膜,进一步分析了这些结构的实现方法。最后,本综述针对目前 BC-PSC 所面临的挑战提出了潜在的解决方案,以充分挖掘这项技术的潜力。本综述旨在让读者深入了解 BC 光伏技术(尤其是 BC-PSCs 技术)的最新进展,以及未来研究和创新的潜在方向。
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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Revolutionizing photovoltaics: From back-contact silicon to back-contact perovskite solar cells

Interdigitated back-contact (IBC) electrode configuration is a novel approach toward highly efficient Photovoltaic (PV) cells. Unlike conventional planar or sandwiched configurations, the IBC architecture positions the cathode and anode contact electrodes on the rear side of the solar cell. This review provides a comprehensive overview of back-contact (BC) solar cells, commencing with the historical context of the inception of the back-contact silicon (BC-Si) solar cells and its progression into various designs such as metallization wrap through, emitter wrap through, and interdigitated configurations. This review emphasizes back-contact perovskite solar cells (BC-PSCs), due to their potential for achieving higher efficiencies and better stability compared to traditional PSC architectures. Herein, we discuss the classification of BC-PSCs based on the position of rear electrodes, including interdigitated and quasi-interdigitated structures. These structures are further analyzed by investigating their implementation via various electrode patterning techniques, such as photolithography, microsphere lithography, cracked film lithography, network-like porous titanium (Ti) electrodes, v-shaped grooves, and lateral-structure perovskite single crystal/shadow masks, used in the development of various types of BC-PSCs. Finally, this review concludes by suggesting potential solutions to the current challenges associated with BC-PSCs to tap into the full potential of this technology. This review aims to provide readers with an in-depth understanding of the latest advancements in BC PV technology, particularly BC-PSCs, and the potential directions for future research and innovation.

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