On current collection from supporting layers in perovskite/c-Si tandem solar cells

Manvika Singh, P. Procel, Indra Syifai, Rik van Heerden, A. Weeber, M. Zeman, R. Santbergen, O. Isabella
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Abstract

The study of a two-terminal (2T) perovskite/c-Si tandem solar cell requires accurate and concurrent description of photons absorption and tunnelling-mediated charge transport. By analysing current collection across the device heterointerfaces, we investigated the effect of (i) perovskite thickness on the short-circuit current density (Jsc) of the tandem device and (ii) temperature on devices performance. We deployed an advanced opto-electrical modelling framework based on optical sub-models from GenPro4 and on self-consistent fundamental semiconductor equations implemented in TCAD Sentaurus . Using these simulations of perovskite/c-Si tandem solar cells, an in-depth analysis of the physics of current contribution of supporting layers has been carried out. Solving numerically the fundamental equations of semiconductors, we theoretically show for the first time that electron-hole pairs photo-generated in the TRJ can be collected, effectively boosting Jsc values well beyond (photocurrent density) Jph levels. In addition, a temperature-based study of these perovskite/c-Si tandem solar cells has been performed to evaluate the temperature coefficient which is useful for their energy yield simulations.
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钙钛矿/c-Si串联太阳能电池支撑层电流收集研究
研究双端(2T)钙钛矿/c-Si串联太阳能电池需要对光子吸收和隧穿介导的电荷输运进行准确和同步的描述。通过分析器件异质界面上的电流收集,我们研究了(i)钙钛矿厚度对串联器件的短路电流密度(Jsc)和(ii)温度对器件性能的影响。我们部署了一个先进的光电建模框架,该框架基于GenPro4的光学子模型和TCAD Sentaurus中实现的自洽基本半导体方程。利用这些钙钛矿/c-Si串联太阳能电池的模拟,深入分析了支撑层电流贡献的物理特性。通过数值求解半导体的基本方程,我们首次在理论上证明了TRJ中产生的电子-空穴对可以被收集,有效地提高了Jsc值,远远超过(光电流密度)Jph水平。此外,对这些钙钛矿/c-Si串联太阳能电池进行了基于温度的研究,以评估温度系数,这对它们的能量产率模拟有用。
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