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钙钛矿 III-V 族纳米线互穿串联太阳能电池的光学分析

Optical Analysis of Perovskite III-V Nanowires Interpenetrated Tandem Solar Cells.

作者信息

Tirrito Matteo, Manley Phillip, Becker Christiane, Unger Eva, Borgström Magnus T

机构信息

NanoLund and Division of Solid State Physics, Lund University, Box 118, 221 00 Lund, Sweden.

JCMwave GmbH, Bolivarallee 22, 14050 Berlin, Germany.

出版信息

Nanomaterials (Basel). 2024 Mar 14;14(6):518. doi: 10.3390/nano14060518.

Abstract

Multi-junction photovoltaics approaches are being explored to mitigate thermalization losses that occur in the absorption of high-energy photons. However, the design of tandem cells faces challenges such as light reflection and parasitic absorption. Nanostructures have emerged as promising solutions due to their anti-reflection properties, which enhances light absorption. III-V nanowires (NWs) solar cells can achieve strong power conversion efficiencies, offering the advantage of potentially integrating tunnel diodes within the same fabrication process. Metal halide perovskites (MHPs) have gained attention for their optoelectronic attributes and cost-effectiveness. Notably, both material classes allow for tunable bandgaps. This study explores the integration of MHPs with III-V NWs solar cells in both two-terminal and three-terminal configurations. Our primary focus lies in the optical analysis of a tandem design using III-V semiconductor nanowire arrays in combination with perovskites, highlighting their potential for tandem applications. The space offered by the compact footprint of NW arrays is used in an interpenetrated tandem structure. We systematically optimize the bottom cell, addressing reflectivity and parasitic absorption, and extend to a full tandem structure, considering experimentally feasible thicknesses. Simulation of a three-terminal structure highlights a potential increase in efficiency, decoupling the operating points of the subcells. The two-terminal analysis underscores the benefits of nanowires in reducing reflection and achieving a higher matched current between the top and the bottom cells. This research provides significant insights into NW tandem solar cell optics, enhancing our understanding of their potential to improve photovoltaic performance.

摘要

正在探索多结光伏方法,以减轻在高能光子吸收过程中发生的热化损失。然而,串联电池的设计面临诸如光反射和寄生吸收等挑战。由于纳米结构的抗反射特性能够增强光吸收,它们已成为有前景的解决方案。III-V族纳米线(NWs)太阳能电池可以实现很高的功率转换效率,具有在同一制造工艺中潜在集成隧道二极管的优势。金属卤化物钙钛矿(MHP)因其光电特性和成本效益而受到关注。值得注意的是,这两类材料都具有可调节的带隙。本研究探索了在两终端和三终端配置中将MHP与III-V族NWs太阳能电池集成。我们的主要重点在于对使用III-V族半导体纳米线阵列与钙钛矿结合的串联设计进行光学分析,突出它们在串联应用中的潜力。NW阵列紧凑的占地面积所提供的空间被用于互穿串联结构。我们系统地优化底部电池,解决反射率和寄生吸收问题,并扩展到完整的串联结构,同时考虑实验上可行的厚度。对三终端结构的模拟突出了效率潜在提高的可能性,使子电池的工作点解耦。两终端分析强调了纳米线在减少反射以及在顶部和底部电池之间实现更高匹配电流方面的优势。这项研究为NW串联太阳能电池光学提供了重要见解,增进了我们对其改善光伏性能潜力的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c8a/10974091/d96b9c002894/nanomaterials-14-00518-g001.jpg

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