Defect passivation of CsPbI2Br perovskites through Zn(II) doping: toward efficient and stable solar cells

被引:0
作者
Jiajun Lu
Shan-Ci Chen
Qingdong Zheng
机构
[1] Chinese Academy of Sciences,State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter
[2] University of Chinese Academy of Sciences,School of Physical Science and Technology
[3] ShanghaiTech University,Shanghai Institute of Ceramics
[4] Chinese Academy of Sciences,undefined
来源
Science China Chemistry | 2019年 / 62卷
关键词
defect passivation; Zn(II) doping; all-inorganic perovskite solar cells; power conversion efficiency;
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学科分类号
摘要
Defect passivation is an important strategy to achieve perovskite solar cells (PVSCs) with enhanced power conversion efficiencies (PCEs) and improved stability because the trap states induced by defects in the interfaces and grain boundaries of perovskites are harmful to both large open circuit voltage and high photocurrent of devices. Here, zinc cations (Zn2+) were used as a dopant to passivate defects of the CsPbI2Br perovskite leading to Zn2+-doped CsPbI2Br film with fewer trap states, improved charge transportation, and enhanced light-harvesting ability. Thus, the best-performance PVSC based on CsPbI2Br with the optimal Zn2+ doping shows a higher PCE of 12.16% with a larger open-circuit voltage (VOC) of 1.236 V, an improved shortcircuit current (JSC) of 15.61 mA cm−2 in comparison with the control device based on the pure CsPbI2Br which exhibits a PCE of 10.21% with a VOC of 1.123 V, a JSC of 13.27 mA cm−2. Time-resolved photoluminescence results show that the Zn2+ doping leads to perovskite film with extended photoluminescence lifetime which means a longer diffusion length and subsequently enhanced photocurrent and open circuit voltage. This work provides a simple strategy to boost the performance of PVSCs through Zn2+ doping.
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页码:1044 / 1050
页数:6
相关论文
共 241 条
  • [1] Chen W(2015)undefined Science 350 944-948
  • [2] Wu Y(2018)undefined Nano Energy 43 47-54
  • [3] Yue Y(2016)undefined Science 351 151-155
  • [4] Liu J(2018)undefined Nat Energy 3 682-689
  • [5] Zhang W(2017)undefined Angew Chem Int Ed 56 1190-1212
  • [6] Yang X(2017)undefined J Phys Chem Lett 8 1211-1218
  • [7] Chen H(2018)undefined Nano Lett 18 3473-3480
  • [8] Bi E(2017)undefined J Phys Chem Lett 8 4122-4128
  • [9] Ashraful I(2018)undefined J Am Chem Soc 140 3825-3828
  • [10] Grätzel M(2016)undefined J Am Chem Soc 138 15829-15832