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Nanoscale Rear-Interface Passivation in Cu2ZnSn(S,Se)4Solar Cells through the CuAlO2Intermediate Layer

Title
Nanoscale Rear-Interface Passivation in Cu2ZnSn(S,Se)4Solar Cells through the CuAlO2Intermediate Layer
Author(s)
Gour, Kuldeep SinghKarade, VijayJang, Jun SungJo, EunaeBabar, PravinKorade, SumitYoo, HyesunKim, SugilKim, DongmyungPark, JongsungKim, Jin Hyeok
DGIST Authors
Gour, Kuldeep SinghKarade, VijayJang, Jun SungJo, EunaeBabar, PravinKorade, SumitYoo, HyesunKim, SugilKim, DongmyungPark, JongsungKim, Jin Hyeok
Issued Date
2021-04
Type
Article
Author Keywords
CuAlO2CZTSSeintermediate layerKesteriterear interfacesolar cells
Keywords
Aluminum compoundsConversion efficiencyDepositionElectric resistancePassivationCrystalline grainsDevice performanceInterface passivationIntermediate layersOptimum depositionPower conversion efficienciesReference devicesSeries resistancesCopper compounds
ISSN
2574-0962
Abstract
The present work demonstrates that the addition of p-type CuAlO2 (CAO) as an intermediate layer between molybdenum (Mo) and the absorber rear interface efficiently improves the Cu2ZnSn(S,Se)4 (CZTSSe) device performance. The efficacy of the intermediate layer is analyzed through sputtering the CAO nanolayer at different deposition times on top of the Mo layer. The addition of an ultrathin CAO nanolayer improved the absorber bulk quality with the formation of compact and larger crystalline grains. Furthermore, the CZTSSe device with an optimum deposition time (154 s) of the CAO nanolayer successfully reduced the Mo(S,Se)2 layer thickness from ∼50 to ∼25 nm. This reduced Mo(S,Se)2 layer thickness results in the reduced series resistance (Rs) in the device providing improvement in the overall device performance. The short-circuit current density (JSC) and the power conversion efficiency of the device with the CAO nanolayer increased from 33.48 to 35.40 mA/cm2 and from 9.61 to 10.54%, respectively, compared to a reference device. © 2021 American Chemical Society.
URI
http://hdl.handle.net/20.500.11750/15418
DOI
10.1021/acsaem.1c00743
Publisher
American Chemical Society
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Appears in Collections:
Research Center for Thin Film Solar Cells 1. Journal Articles

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