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Scalable CIGS Solar Cells Employing a New Device Design of Nontoxic Buffer Layer and Microgrid Electrode

Author(s)
Hwang, InchanLee, MyounghyunLee, AhreumJeong, InyoungSong, SoominShin, DonghyeopPark, JoohyungCho, AraEo, Young-JooYoo, Jin-SuAhn, Seung KyuGwak, JihyeAhn, SejinSeo, KwanyongKim, Kihwan
Issued Date
2024-07
DOI
10.1021/acsami.4c05871
URI
https://scholarworks.unist.ac.kr/handle/201301/85346
Citation
ACS APPLIED MATERIALS & INTERFACES, v.16, no.29, pp.37972 - 37980
Abstract
The efficiency of copper indium gallium selenide (CIGS) solar cells that use transparent conductive oxide (TCO) as the top electrode decreases significantly as the device area increases owing to the poor electrical properties of TCO. Therefore, high-efficiency, large-area CIGS solar cells require the development of a novel top electrode with high transmittance and conductivity. In this study, a microgrid/TCO hybrid electrode is designed to minimize the optical and resistive losses that may occur in the top electrode of a CIGS solar cell. In addition, the buffer layer of the CIGS solar cells is changed from the conventional CdS buffer to a dry-processed wide-band gap ZnMgO (ZMO) buffer, resulting in increased device efficiency by minimizing parasitic absorption in the short-wavelength region. By optimizing the combination of ZMO buffer and the microgrid/TCO hybrid electrode, a device efficiency of up to 20.5% (with antireflection layers) is achieved over a small device area of 5 mm × 5 mm (total area). Moreover, CIGS solar cells with an increased device area of up to 20 mm × 70 mm (total area) exhibit an efficiency of up to 19.7% (with antireflection layers) when a microgrid/TCO hybrid electrode is applied. Thus, this study demonstrates the potential for high-efficiency, large-area CIGS solar cells with novel microgrid electrodes.
Publisher
AMER CHEMICAL SOC
ISSN
1944-8244
Keyword (Author)
Cd-freeCIGS solar cellselectrode designlarge areamicrogrid electrode

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