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Ge Bidirectional Diffusion to Simultaneously Engineer Back Interface and Bulk Defects in the Absorber for Efficient CZTSSe Solar Cells.

Jinlin WangJiazheng ZhouXiao XuFanqi MengChunxu XiangLicheng LouKang YinBiwen DuanHuijue WuJiangjian ShiYanhong LuoDongmei LiHao XinQingbo Meng
Published in: Advanced materials (Deerfield Beach, Fla.) (2022)
Aiming at a large open-circuit voltage (V OC ) deficit in Cu 2 ZnSn(S,Se) 4 (CZTSSe) solar cells, a new and effective strategy to simultaneously regulate the back interface and restrain bulk defects of CZTSSe absorbers is developed by directly introducing a thin GeO 2 layer on Mo substrates. Power conversion efficiency (power-to-efficiency) as high as 13.14% with a V OC of 547 mV is achieved for the champion device, which presents a certified efficiency of 12.8% (aperture area: 0.25667 cm 2 ). Further investigation reveals that Ge bidirectional diffusion simultaneously occurs toward the CZTSSe absorber and MoSe 2 layer at the back interface while being selenized. That is, some Ge element from the GeO 2 diffuses into the CZTSSe absorber layer to afford Ge-doped absorbers, which can significantly reduce the defect density and band tailing, and facilitate quasi-Fermi level split by relatively higher hole concentration. Meanwhile, a small amount of Ge element also participates in the formation of MoSe 2 at the back interface, thus enhancing the work function of MoSe 2 and effectively separating photoinduced carriers. This work highlights the synergistic effect of Ge element toward the bulk absorber and the back interface and also provides an easy-handling way to achieve high-performance CZTSSe solar cells.
Keyphrases
  • solar cells
  • quantum dots
  • minimally invasive
  • drug delivery
  • cancer therapy
  • visible light