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Chlorine Incorporation in Perovskite Solar Cells for Indoor Light Applicationsoa mark
  • Kim, Jincheol ;
  • Jang, Ji Hun ;
  • Choi, Eunyoung ;
  • Shin, So Jeong ;
  • Kim, Ju Hee ;
  • Jeon, Gyeong G. ;
  • Lee, Minwoo ;
  • Seidel, Jan ;
  • Kim, Jong H. ;
  • Yun, Jae Sung ;
  • Park, Nochang
Citations

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Publication Year
2020-12-23
Publisher
Cell Press
Citation
Cell Reports Physical Science, Vol.1
Keyword
chlorinehalogenhigh efficiencyindoor lightion migrationLEDperovskite solar cellrecombination
All Science Classification Codes (ASJC)
Physics and Astronomy (all)Materials Science (all)Chemistry (all)Energy (all)Engineering (all)
Abstract
Kim et al. investigate the effect of chlorine in perovskite precursors for indoor light applications. Use of chlorine has a significant effect on the photovoltaic performance of perovskite solar cells, especially under low-intensity indoor light. They demonstrate 35.25 and 231.78 μW/cm2 under 400-lux LED and halogen illumination. Development of efficient solar cells under indoor light has attracted tremendous attention because of the Internet of Things revolution. Here we investigate the effect of chlorine in perovskite precursors for indoor light applications. Use of chlorine has an effect on the photovoltaic performance of perovskite solar cells, especially under low-intensity indoor light. Based on the characterization of leakage current, crystalline structure, and Urbach tail, we reveal that chlorine doping of the perovskite layer influences the movement of photo-generated carriers and ions because of the smaller bulk defects in perovskite. In particular, we suggest that chlorine doping in perovskite facilitates hole extraction on its top surface and contributes to suppression of ion migration and non-radiative recombination, as confirmed by Kelvin probe force microscopy measurements. We demonstrate high performance of perovskite solar cells with a maximum power density of 35.25 (231.78) μW/cm2 under 400 lux light-emitting diode (halogen) illumination.
ISSN
2666-3864
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/31897
DOI
https://doi.org/10.1016/j.xcrp.2020.100273
Fulltext

Type
Article
Funding
This work was supported financially by the Ministry of Trade, Industry and Energy (MOTIE) and the Korea Institute for Advancement of Technology (KIAT) through the International Cooperative R&D Program (project P0006857 ) and a National Research Foundation of Korea (NRF) grant from the Government of Korea (MSIT) ( 2020R1C1C101213011 ).
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Kim, Jong Hyun Image
Kim, Jong Hyun김종현
Department of Applied Chemistry & Biological Engineering
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