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A crucial factor affecting the power conversion efficiency of oxide/metal/oxide-based organic photovoltaics: Optical cavity versus transmittance

Authors
Lee, Byeong RyongPark, Gi EunKim, Yong WoonChoi, Dong HoonKim, Tae Geun
Issue Date
1-2월-2019
Publisher
ELSEVIER SCI LTD
Keywords
Wearable photovoltaic device; Energy harvesting; ZnO/Ag/ZnO electrode; Micro-cavity effect; Building integrated photovoltaics
Citation
APPLIED ENERGY, v.235, pp.1505 - 1513
Indexed
SCIE
SCOPUS
Journal Title
APPLIED ENERGY
Volume
235
Start Page
1505
End Page
1513
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/67706
DOI
10.1016/j.apenergy.2018.11.067
ISSN
0306-2619
Abstract
Considerable effort has been directed at improving the power conversion efficiency of organic photovoltaics, using oxide/metal/oxide multilayers as transparent electrodes, because of their numerous advantages including lower sheet resistance, higher transmittance, and higher flexibility in comparison to typical indium tin oxides. However, to date, most organic photovoltaics based on oxide/metal/oxide electrodes exhibit a lower conversion efficiency than indium tin oxide-based organic photovoltaics, without any clarification. In this investigation, we identify crucial factors that influence the power conversion efficiency of oxide/metal/oxide-based organic photovoltaics to fully exploit the potential of these devices, based on the correlation between the optical cavity and the transmittance. For this purpose, we fabricate five sets of inverted organic photovoltaics using poly({4,8-bis[(2-ethylhexyl)oxy]benzo[1,2-b:4,5-bidithiophene-2,6-diyl}{3-fluoro-2-[(2-ethylhexyl)carbonyl]thieno[3,4- b]thiophenediyl}) and [6,6]-Phenyl C-71 butyric acid methyl ester-based active layers and ZnO/Ag/ZnO electrodes with top ZnO layers of varying thicknesses, with reference organic photovoltaics using indium tin oxides, on both rigid and flexible substrates. The highest power conversion efficiency of 8.71% and 7.53% is obtained from single-junction organic photovoltaics with 40/9/8-nm-thick ZnO/Ag/ZnO electrodes on each substrate, due to strong micro-cavity effects between the top and bottom Ag layers, despite the relatively low transmittance of the electrode. This result is supported by the relation between the electric-field intensity and the transmittance curves of the ZnO/Ag/ZnO/solution-based ZnO/active bulk optical stacks based on simulation results. Furthermore, flexible organic photovoltaics with the ZnO/Ag/ZnO electrodes demonstrate much better performance in mechanical bending tests in comparison to the performance of standard indium tin oxide-based organic photovoltaics, and the previously reported oxide/metal/oxide-based organic photovoltaics.
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공과대학 (전기전자공학부)
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