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通过调整对太阳轨迹的角度响应来改进硅太阳能电池。

Improved silicon solar cells by tuning angular response to solar trajectory.

作者信息

Green Martin A, Zhou Zibo

机构信息

School of Photovoltaic and Renewable Energy Engineering (SPREE), University of New South Wales, Sydney, 2052, Australia.

出版信息

Nat Commun. 2025 Jan 2;16(1):251. doi: 10.1038/s41467-024-55681-1.

Abstract

Silicon solar cell costs are reducing dramatically with these cells now providing the majority of new electricity generation capacity worldwide. Cost reduction has been via economies of scale and steadily increasing sunlight energy conversion efficiency. The best experimental cells at 27.4% efficiency approach the 29.4% figure almost universally regarded as the limit on silicon cell performance. Here we show that assumptions in deducing this limit are too restrictive, since failing to incorporate sunlight directionality. Furthermore, we show how this directionality and the cell's angular response can be quantified compatibly, using projections of angular dependencies of both onto the solar module plane. Even simple schemes for exploiting directionality, including installing solar modules facing the equator at near-latitude tilt, increase theoretical limiting efficiency above 29.4%. Highest gains are for cells designed for sunlight tracking systems, including common 1-axis trackers, with such cells having theoretical efficiency limits > 30%. In this work, we provide a strategy for ongoing improvements in commercial cell efficiency over this decade, additionally lowering cost via reduced cell thickness.

摘要

硅太阳能电池成本正在大幅下降,目前全球新增发电能力的大部分由这些电池提供。成本降低得益于规模经济以及阳光能量转换效率的稳步提高。效率为27.4%的最佳实验性电池已接近几乎被普遍视为硅电池性能极限的29.4%这一数值。在此我们表明,推导此极限时所做的假设过于严格,因为未考虑阳光的方向性。此外,我们展示了如何利用两者在太阳能组件平面上的角度依赖性投影,来兼容地量化这种方向性和电池的角度响应。即使是利用方向性的简单方案,包括在接近纬度倾斜的情况下安装面向赤道的太阳能组件,也能将理论极限效率提高到29.4%以上。收益最高的是为阳光跟踪系统设计的电池,包括常见的单轴跟踪器,此类电池的理论效率极限>30%。在这项工作中,我们提供了一种在这十年中持续提高商用电池效率的策略,另外还可通过减小电池厚度来降低成本。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e19/11697001/29bc1da9fffa/41467_2024_55681_Fig1_HTML.jpg

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