探索 Perovskite/Antimony Selenide 四端串联太阳能电池的可行性和性能

Solar Pub Date : 2024-04-03 DOI:10.3390/solar4020010
Harigovind G. Menon, A. Amin, Xiaomeng Duan, S. N. Vijayaraghavan, Jacob Wall, Wenjun Xiang, K. Khawaja, Feng Yan
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引用次数: 0

摘要

串联太阳能电池是超越单结太阳能电池肖克利-奎塞尔极限的潜在解决方案。然而,要制造出既经济又高效的串联设备是一项重大挑战。在这项研究中,我们提出了利用宽带隙(1.6-1.8 eV)过氧化物顶部电池和窄带隙(1.2 eV)硒化锑(Sb2Se3)底部电池的四端(4T)串联太阳能电池的概念验证。通过使用一维(1D)太阳能电池电容模拟器(SCAPS),我们的计算表明了这种结构的可行性,并推算出高辉石/硒化锑(Sb2Se3)4T 串联器件的模拟性能为 23%。为了验证这一点,我们制作了两个带隙分别为 1.6 eV 和 1.77 eV 的宽带隙半透明透辉石电池。然后将这些电池与窄带隙硒化锑(1.2 eV)机械堆叠,形成串联结构,实验效率超过 15%。所获得的结果表明,设备性能大有可为,展示了将过氧化物晶顶电池与新兴的富土硒化锑薄膜太阳能技术相结合以提高设备整体效率的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the Feasibility and Performance of Perovskite/Antimony Selenide Four-Terminal Tandem Solar Cells
The tandem solar cell presents a potential solution to surpass the Shockley–Queisser limit observed in single-junction solar cells. However, creating a tandem device that is both cost-effective and highly efficient poses a significant challenge. In this study, we present proof of concept for a four-terminal (4T) tandem solar cell utilizing a wide bandgap (1.6–1.8 eV) perovskite top cell and a narrow bandgap (1.2 eV) antimony selenide (Sb2Se3) bottom cell. Using a one-dimensional (1D) solar cell capacitance simulator (SCAPS), our calculations indicate the feasibility of this architecture, projecting a simulated device performance of 23% for the perovskite/Sb2Se3 4T tandem device. To validate this, we fabricated two wide bandgap semitransparent perovskite cells with bandgaps of 1.6 eV and 1.77 eV, respectively. These were then mechanically stacked with a narrow bandgap antimony selenide (1.2 eV) to create a tandem structure, resulting in experimental efficiencies exceeding 15%. The obtained results demonstrate promising device performance, showcasing the potential of combining perovskite top cells with the emerging, earth-abundant antimony selenide thin film solar technology to enhance overall device efficiency.
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