<p>Solution processing remains the dominant route to high-performance perovskite/silicon tandems, but it remains challenging to simultaneously achieve industrial scalability and long-term reliability.<sup>1-3</sup> Thermal evaporation is more industrially viable, yet it has not been successfully demonstrated for large-area perovskite/Si tandems, largely due to the thermal degradation of formamidinium iodide (FAI) during high-temperature evaporation. Here, we synthesize a formamidinium-based eutectic (Eu) that lowers the effective evaporation temperature of FAI by an average of 36 °C - below its degradation threshold - thereby enabling stable FAI evaporation without thermal degradation. As a result, the evaporated perovskite films exhibit enhanced crystallinity and atomic-scale compositional homogeneity. Sequentially evaporated perovskite/Si tandems achieve a steady-state efficiency of 31.5% (1 cm<sup>2</sup>). Benefiting from the uniformity of evaporation, we further demonstrate the first thermally evaporated large-area perovskite/Si tandem on a commercial half-cut G12 wafer, delivering a steady-state efficiency of 30.0% (200 cm<sup>2</sup>). Scaling the device area from 1 to 200 cm<sup>2</sup> incurs only a 3.99% relative efficiency loss, representing the lowest reported efficiency penalty for area scaling in perovskite-based tandems. The Eu-based tandem retains 95% of its initial efficiency after 2000 hours of damp-heat aging (85 °C/85% RH) and exhibits negligible power loss after two months of real-world outdoor operation.</p>

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Thermally evaporated perovskite/silicon tandems via formamidinium eutectic

  • Chao Luo,
  • Rui He,
  • Luo Ran,
  • Jingcong Hu,
  • Yuduan Wang,
  • Yu Shi,
  • Yi Mo,
  • Cheng Yan,
  • Yuxin Yao,
  • Zihao Zhu,
  • Chenxia Kan,
  • Xinyi Du,
  • Ling Kai Lee,
  • Qilin Zhou,
  • Nengxu Li,
  • Xiuxiu Niu,
  • Fengtao Pei,
  • Ming Lin,
  • Xi Wang,
  • Jinxi Chen,
  • Zhenrong Jia,
  • Tao Wang,
  • Zijing Dong,
  • Xiao Guo,
  • Meng Xin,
  • Xinyu Zhang,
  • Yuhui Jiang,
  • Peng Gao,
  • Keli Wang,
  • Yabin Ma,
  • Zhen Guan,
  • Jing Wei,
  • Sai Bai,
  • Yu Chen,
  • Wan-Jian Yin,
  • Qing Zhao,
  • Zhigang Xie,
  • Xueling Zhang,
  • Yifeng Chen,
  • Jifan Gao,
  • Yi Hou

摘要

Solution processing remains the dominant route to high-performance perovskite/silicon tandems, but it remains challenging to simultaneously achieve industrial scalability and long-term reliability.1-3 Thermal evaporation is more industrially viable, yet it has not been successfully demonstrated for large-area perovskite/Si tandems, largely due to the thermal degradation of formamidinium iodide (FAI) during high-temperature evaporation. Here, we synthesize a formamidinium-based eutectic (Eu) that lowers the effective evaporation temperature of FAI by an average of 36 °C - below its degradation threshold - thereby enabling stable FAI evaporation without thermal degradation. As a result, the evaporated perovskite films exhibit enhanced crystallinity and atomic-scale compositional homogeneity. Sequentially evaporated perovskite/Si tandems achieve a steady-state efficiency of 31.5% (1 cm2). Benefiting from the uniformity of evaporation, we further demonstrate the first thermally evaporated large-area perovskite/Si tandem on a commercial half-cut G12 wafer, delivering a steady-state efficiency of 30.0% (200 cm2). Scaling the device area from 1 to 200 cm2 incurs only a 3.99% relative efficiency loss, representing the lowest reported efficiency penalty for area scaling in perovskite-based tandems. The Eu-based tandem retains 95% of its initial efficiency after 2000 hours of damp-heat aging (85 °C/85% RH) and exhibits negligible power loss after two months of real-world outdoor operation.