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Overcoming the limitations of low-bandgap Cu2ZnSn(S,Se)4 devices under indoor light conditions: from design to prototype IoT application
  • Karade, Vijay C. ;
  • Lim, Jihoo ;
  • Gour, Kuldeep Singh ;
  • Jang, Jun Sung ;
  • Shin, So Jeong ;
  • Kim, Jong H. ;
  • Yang, Bum Seung ;
  • Choi, Hyuntae ;
  • Enkhbat, Temujin ;
  • Kim, Jun Ho ;
  • Yun, Jae Sung ;
  • Jang, Hae Nam ;
  • Yun, Jae Ho ;
  • Park, Jongsung ;
  • Kim, Jin Hyeok
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Publication Year
2022-10-26
Publisher
Royal Society of Chemistry
Citation
Journal of Materials Chemistry A, Vol.10, pp.23831-23842
Mesh Keyword
Cell/B.ECo-dopingConditionCost effectiveIndoor lightInternet of things technologiesKesteritesLight conditionsLow bandgapWhite LED's
All Science Classification Codes (ASJC)
Chemistry (all)Renewable Energy, Sustainability and the EnvironmentMaterials Science (all)
Abstract
With the growing need for cost-effective and sustainable Internet of things (IoT) technologies, kesterite-based solar cells are gaining popularity. We report the fabrication of an efficient CZTSSe absorber layer with improved Voc loss and its possible use in indoor photovoltaic applications. The double cation incorporation (co-doping) approach is employed with Ag and Ge to achieve this. The devices fabricated and tested under standard illumination (1 sun) and low light intensity conditions showed enhanced device performances and lower Voc losses after co-doping. Under indoor light conditions, Voc of 290 mV with white LED (WLED) and 310 mV with fluorescent lamp (FL-4000K) was achieved at the lowest intensity of 400 lux, while a value exceeding 350 mV was obtained at 1200 lux with FL-4000K for the CZTSSe:Ag-Ge device. Voc recoveries of >60% under all intensity conditions and >70% at 1200 lux with both WLED and FL-4000K were achieved. Moreover, the CZTSSe:Ag-Ge device showed efficiencies of 4.95% and 5.85% under WLED and FL-4000K at 1200 lux, respectively. The prototype device also demonstrated successful test results under indoor conditions. These achievements are attributed to the enhanced carrier density, reduced density of defects, and low carrier recombinations.
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/33055
DOI
https://doi.org/10.1039/d2ta06565g
Fulltext

Type
Article
Funding
This work was supported by the National Research Foundation of Korea (NRF) grant funded by the Korea government (MSIT) (No. 2022R1A2C2007219) and Ministry of Small and Medium-sized Enterprises (SMEs) and Startups (MSS), Korea, under the \u201cRegional Specialized Industry Development Plus Program (R&D, S3086856)\u201d supervised by the Korea Technology and Information Promotion Agency (TIPA) for SMEs.
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Kim, Jong Hyun김종현
Department of Applied Chemistry & Biological Engineering
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