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钙钛矿/硅串联太阳能电池具有双层界面钝化。

Perovskite/silicon tandem solar cells with bilayer interface passivation.

机构信息

LONGi Central R&D Institute, LONGi Green Energy Technology Co. Ltd, Xi'an, China.

College of Energy, Soochow Institute for Energy and Materials Innovations, Soochow University, Suzhou, China.

出版信息

Nature. 2024 Nov;635(8039):596-603. doi: 10.1038/s41586-024-07997-7. Epub 2024 Sep 5.

DOI:10.1038/s41586-024-07997-7
PMID:39236747
Abstract

Two-terminal monolithic perovskite/silicon tandem solar cells demonstrate huge advantages in power conversion efficiency compared with their respective single-junction counterparts. However, suppressing interfacial recombination at the wide-bandgap perovskite/electron transport layer interface, without compromising its superior charge transport performance, remains a substantial challenge for perovskite/silicon tandem cells. By exploiting the nanoscale discretely distributed lithium fluoride ultrathin layer followed by an additional deposition of diammonium diiodide molecule, we have devised a bilayer-intertwined passivation strategy that combines efficient electron extraction with further suppression of non-radiative recombination. We constructed perovskite/silicon tandem devices on a double-textured Czochralski-based silicon heterojunction cell, which featured a mildly textured front surface and a heavily textured rear surface, leading to simultaneously enhanced photocurrent and uncompromised rear passivation. The resulting perovskite/silicon tandem achieved an independently certified stabilized power conversion efficiency of 33.89%, accompanied by an impressive fill factor of 83.0% and an open-circuit voltage of nearly 1.97 V. To the best of our knowledge, this represents the first reported certified efficiency of a two-junction tandem solar cell exceeding the single-junction Shockley-Queisser limit of 33.7%.

摘要

两端式钙钛矿/硅叠层太阳能电池在能量转换效率方面相较于各自的单结器件具有显著优势。然而,在不影响其优异电荷传输性能的前提下,抑制宽带隙钙钛矿/电子传输层界面的界面复合仍然是钙钛矿/硅叠层电池的一个重大挑战。通过利用纳米级离散分布的氟化锂超薄层,然后再沉积二碘化二铵分子,我们设计了一种双层交织的钝化策略,将高效的电子提取与进一步抑制非辐射复合结合在一起。我们在基于提拉法的晶硅异质结电池上构建了钙钛矿/硅叠层器件,该电池具有轻度织构化的前表面和重度织构化的后表面,从而同时提高了光电流并保持了后表面的钝化效果。所得到的钙钛矿/硅叠层实现了独立认证的稳定能量转换效率为 33.89%,同时具有令人印象深刻的填充因子为 83.0%和接近 1.97 V 的开路电压。据我们所知,这是首次报道的两结串联太阳能电池的认证效率超过了单结肖克利-奎塞尔极限的 33.7%。

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