4.8 Article

Transition-Metal Oxides for Kesterite Solar Cells Developed on Transparent Substrates

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 12, Issue 30, Pages 33656-33669

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c06992

Keywords

kesterite; thin film; photovoltaics; transition-metal oxides; FTO; transparent substrate; interface engineering

Funding

  1. H2020 Programme under the project INFINITE-CELL [H2020-MSCA-RISE-2017-777968]
  2. Ministry of Science and Innovation of Spain under the IGNITE project [ENE2017-87671-C3-1-R]
  3. MasterPV project from the SOLAR-ERA.NET International program (Spanish MINECO AEI) [PCI2018-092945]
  4. European Regional Development Funds (ERDF, FEDER Programa Competitivitat de Catalunya 2007-2013)
  5. CERCA Programme/Generalitat de Catalunya
  6. Spanish Ministry of Science, Innovation and Universities within the Ramon y Cajal Program [RYC-2017-23758]
  7. SEMS (Solar Energy Materials and Systems) Consolidated Research Group of the Generalitat de Catalunya [2017 SGR 862]

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Fabrication on transparent soda-lime glass/fluorinedoped tin oxide (FTO) substrates opens the way to advanced applications for kesterite solar cells such as semitransparent, bifacial, and tandem devices, which are key to the future of the PV market. However, the complex behavior of the p-kesterite/n-FTO back-interface potentially limits the power conversion efficiency of such devices. Overcoming this issue requires careful interface engineering. This work empirically explores the use of transition-metal oxides (TMOs) and Mo-based nanolayers to improve the back-interface of Cu2ZnSnSe4, Cu2ZnSnS4, and Cu2ZnSn(S,Se)(4) solar cells fabricated on transparent glass/FTO substrates. Although the use of TMOs alone is found to be highly detrimental to the devices inducing complex current-blocking behaviors, the use of Mo:Na nanolayers and their combination with n-type TMOs TiO2 and V2O5 are shown to be a very promising strategy to improve the limited performance of kesterite devices fabricated on transparent substrates. The optoelectronic, morphological, structural, and in-depth compositional characterization performed on the devices suggests that the improvements observed are related to a combination of shunt insulation and recombination reduction. This way, record efficiencies of 6.1, 6.2, and 7.9% are obtained for Cu2ZnSnSe4, Cu2ZnSnS4, and Cu2ZnSn(S,Se)(4) devices, respectively, giving proof of the potential of TMOs for the development of kesterite solar cells on transparent substrates.

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