Theoretical investigations of band alignments and SnSe BSF layer for low-cost, non-toxic, high-efficiency CZTSSe solar cell

dc.contributor.authorPrabhu, S.
dc.contributor.authorPandey, S.K.
dc.contributor.authorChakrabarti, S.
dc.date.accessioned2026-02-05T09:26:43Z
dc.date.issued2021
dc.description.abstractIn this work, a numerical simulation approach is utilized using SCAPS-1D software to model, modify, optimize, and evaluate the CZTSSe solar cell structure. For the CZTSSe solar cell, one possible reason hindering the performance is improper band alignment between the absorber and the buffer layers. With conventional CdS as a buffer layer, having a fixed bandgap, tuning the band alignment is impossible. To overcome this issue, Cd-free zinc oxide-based compounds Zn(O<inf>1-x</inf>S<inf>x</inf>), Zn<inf>1-x</inf>Sn<inf>x</inf>O, and Zn<inf>1-x</inf>Mg<inf>x</inf>O are explored as buffer layers, and their performance is evaluated. Using their composition-dependent tunable bandgap as an advantage, suitable band alignment with the absorber layer is evaluated for equal or higher performance when compared to CdS. Further performance improvement is attempted by using SnSe as the back surface field (BSF) layer. Band alignment evaluation is also extended to the back contact (Mo)/SnSe interface, whereby an attempt is made to replace Mo with a suitable metal. The Ni is found as a good candidate to replace Mo to achieve high-efficiency solar cell. The same approach is repeated with the transparent conducting oxide layer, and aluminum doped zinc oxide (AZO) is found as a suitable material in place of ITO for optimized solar cell structure. A maximum power conversion efficiency of 17.55% is achieved with an optimized structure. It is also observed that the external quantum efficiency (EQE) of the solar cell is improved significantly in the blue photons region in comparison to the EQE of the champion solar cell. The optimized structure Ni/SnSe/CZT(S<inf>0.4</inf>Se<inf>0.6</inf>)/Zn(O<inf>0.3</inf>S<inf>0.7</inf>)/i-ZnO/AZO in this work will be very useful to fabricate low-cost and Cd-free high-efficiency kesterite solar cells. © 2021
dc.identifier.citationSolar Energy, 2021, 226, , pp. 288-296
dc.identifier.issn0038092X
dc.identifier.urihttps://doi.org/10.1016/j.solener.2021.08.050
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/23075
dc.publisherElsevier Ltd
dc.subjectAluminum oxide
dc.subjectBuffer layers
dc.subjectCadmium sulfide
dc.subjectCadmium sulfide solar cells
dc.subjectComputer software
dc.subjectCost benefit analysis
dc.subjectCosts
dc.subjectEfficiency
dc.subjectEnergy gap
dc.subjectII-VI semiconductors
dc.subjectLayered semiconductors
dc.subjectNumerical analysis
dc.subjectTin compounds
dc.subjectTransparent conducting oxides
dc.subjectBacksurface field
dc.subjectBand alignments
dc.subjectCd-free buffer layer
dc.subjectCZTSSe solar cell
dc.subjectHigher efficiency
dc.subjectLow-costs
dc.subjectOptimum performance
dc.subjectSnse back surface field layer
dc.subjectSolar cell structures
dc.subjectSelenium compounds
dc.subjectdetection method
dc.subjectefficiency measurement
dc.subjectfuel cell
dc.subjectinorganic compound
dc.subjectkesterite
dc.subjectoptimization
dc.subjectperformance assessment
dc.subjectsimulation
dc.subjecttoxicity
dc.titleTheoretical investigations of band alignments and SnSe BSF layer for low-cost, non-toxic, high-efficiency CZTSSe solar cell

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