Tan Shuchen, Li Chongwen, Peng Cheng, Yan Wenjian, Bu Hongkai, Jiang Haokun, Yue Fang, Zhang Linbao, Gao Hongtao, Zhou Zhongmin
College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.
Department of Electrical and Computer Engineering, University of Toronto, 35 St. George Street, Toronto, ON, M5S 1A4, Canada.
Nat Commun. 2024 May 16;15(1):4136. doi: 10.1038/s41467-024-48552-2.
Mixed Sn-Pb perovskites have emerged as promising photovoltaic materials for both single- and multi-junction solar cells. However, achieving their scale-up and practical application requires further enhancement in stability. We identify that their poor thermal conductivity results in insufficient thermal transfer, leading to heat accumulation within the absorber layer that accelerates thermal degradation. A thermal regulation strategy by incorporating carboranes into perovskites is developed; these are electron-delocalized carbon-boron molecules known for their efficient heat transfer capability. We specifically select ortho-carborane due to its low thermal hysteresis. We observe its existence through the perovskite layer showing a decreasing trend from the buried interface to the top surface, effectively transferring heat and lowering the surface temperature by around 5 °C under illumination. o-CB also facilitates hole extraction at the perovskite/PEDOT:PSS interface and reduces charge recombination. These enable mixed Sn-Pb cells to exhibit improved thermal stability, retaining 80% of their initial efficiencies after aging at 85 °C for 1080 hours. When integrated into monolithic all-perovskite tandems, we achieve efficiencies of over 27%. A tandem cell maintains 87% of its initial PCE after 704 h of continuous operation under illumination.
混合锡铅钙钛矿已成为单结和多结太阳能电池中颇具前景的光伏材料。然而,要实现其规模化生产和实际应用,还需要进一步提高稳定性。我们发现,它们较差的热导率导致热传递不足,从而使吸收层内热量积聚,加速热降解。我们开发了一种通过将碳硼烷掺入钙钛矿中来进行热调节的策略;碳硼烷是电子离域的碳硼分子,以其高效的热传递能力而闻名。由于其低热滞现象,我们特别选择了邻碳硼烷。我们通过钙钛矿层观察到它的存在,从掩埋界面到顶面呈现出下降趋势,在光照下有效地传递热量并将表面温度降低约5°C。邻碳硼烷还促进了钙钛矿/PEDOT:PSS界面处的空穴提取,并减少了电荷复合。这些使得混合锡铅电池表现出更高的热稳定性,在85°C下老化1080小时后仍保留其初始效率的80%。当集成到单片全钙钛矿叠层电池中时,我们实现了超过27%的效率。一个叠层电池在光照下连续运行704小时后仍保持其初始光电转换效率的87%。