<p>Achieving highly ordered and uniformly covered self-assembled monolayers with optimal packing configuration on textured silicon substrates remains a critical challenge for further improving the efficiency of perovskite/silicon tandem solar cells<sup><CitationRef AdditionalCitationIDS="CR2" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR3">3</CitationRef></sup>. Here we design an asymmetric self-assembled&#xa0;monolayer (named as HTL201) featuring an anchoring group and a spacer flanking a carbazole core, serving as a hole-selective layer for perovskite/silicon tandem solar cells. When compared with symmetric self-assembled&#xa0;monolayers with a nitrogen-bonded phosphonic acid group, the HTL201 molecule shows minimized steric hindrance and improved coverage on the transparent conductive oxide recombination layer. The strong coordination interaction between HTL201 and the perovskite film effectively reduces non-radiative recombination at the buried interface. Notably, the optimized energy-level alignment between the perovskite and HTL201, accompanied by an increase in the&#xa0;quasi-Fermi-level splitting value of the perovskite layer, enables an impressive voltage of nearly 2 V for perovskite/silicon tandem solar cells, resulting in a certified power conversion efficiency of up to 34.58% based on a silicon heterojunction solar cell.</p>

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Efficient perovskite/silicon tandem with asymmetric self-assembly molecule

  • Lingbo Jia,
  • Simeng Xia,
  • Jian Li,
  • Yuan Qin,
  • Bingbing Pei,
  • Lei Ding,
  • Jun Yin,
  • Tao Du,
  • Zheng Fang,
  • Yue Yin,
  • Jiang Liu,
  • Ying Yang,
  • Fu Zhang,
  • Xiaoyong Wu,
  • Qiaoyan Li,
  • Shuangshuang Zhao,
  • Hua Zhang,
  • Qibo Li,
  • Qi Jia,
  • Chi Liu,
  • Xiaobing Gu,
  • Bo Liu,
  • Xin Dong,
  • Jie Liu,
  • Tong Liu,
  • Yajun Gao,
  • Miao Yang,
  • Shi Yin,
  • Xiaoning Ru,
  • Hao Chen,
  • Bo Yang,
  • Zilong Zheng,
  • Wencai Zhou,
  • Maofeng Dou,
  • Simin Wang,
  • Shan Gao,
  • Lan Chen,
  • Minghao Qu,
  • Junxiong Lu,
  • Liang Fang,
  • Yichun Wang,
  • Hao Deng,
  • Jia Yu,
  • Xiaohong Zhang,
  • Minghui Li,
  • Xiting Lang,
  • Chuanxiao Xiao,
  • Qin Hu,
  • Chaowei Xue,
  • Linyu Ning,
  • Yongcai He,
  • Zhenguo Li,
  • Xixiang Xu,
  • Bo He

摘要

Achieving highly ordered and uniformly covered self-assembled monolayers with optimal packing configuration on textured silicon substrates remains a critical challenge for further improving the efficiency of perovskite/silicon tandem solar cells13. Here we design an asymmetric self-assembled monolayer (named as HTL201) featuring an anchoring group and a spacer flanking a carbazole core, serving as a hole-selective layer for perovskite/silicon tandem solar cells. When compared with symmetric self-assembled monolayers with a nitrogen-bonded phosphonic acid group, the HTL201 molecule shows minimized steric hindrance and improved coverage on the transparent conductive oxide recombination layer. The strong coordination interaction between HTL201 and the perovskite film effectively reduces non-radiative recombination at the buried interface. Notably, the optimized energy-level alignment between the perovskite and HTL201, accompanied by an increase in the quasi-Fermi-level splitting value of the perovskite layer, enables an impressive voltage of nearly 2 V for perovskite/silicon tandem solar cells, resulting in a certified power conversion efficiency of up to 34.58% based on a silicon heterojunction solar cell.