HEIndividual fellowship2022–2024

FaWB ChaLT · Fabrication of Wide Bandgap Chalcopyrite Photovoltaics at Low Temperatures for Prospective Tandem Solar Cells

Horizon Europe — Marie Skłodowska-Curie Actions

Duration
2022-07-01 → 2024-12-31
EU contribution
€225,317
Participants
2
Scheme
HORIZON-TMA-MSCA-PF-EF

Lines connect the coordinator with its partners.

Results in brief

Fabrication of Wide Bandgap Chalcopyrite Photovoltaics at Low Temperatures for Prospective Tandem Solar Cells

The project FaWB ChaLT focuses on the development of wide-bandgap chalcopyrite solar absorber materials and devices for the prospective, new, and innovative chalcopyrite/Si tandem solar cells. These chalcopyrite/Si tandem solar cells can be reliable, cost-effective, and environmentally friendly. For such an innovative tandem cell design, the top cell absorber is made of wide-bandgap chalcopyrite material, and the bottom cell absorber is made of low-bandgap crystalline or multicrystalline Si. However, the experimental demonstration of such a new high-efficiency tandem solar cell device is limited by the fabrication temperature of chalcopyrite materials. In general, chalcopyrite semiconductors are deposited at high temperatures close to 600°C. The use of such high temperatures when creating a monolithic tandem configuration with Si solar cells degrades the bottom Si cell material layers, negatively affecting the overall performance of the resulting tandem solar cell. Another challenge is the use of toxic CdS material in chalcopyrite solar cell devices, which needs to be replaced with an environmentally friendly material. Furthermore, the design aspects of monolithic integration of wide-bandgap chalcopyrite materials with Si cell structures must be improved while overcoming these challenges. The following are the overall objectives of the project. (i) Tailor the chalcopyrite absorber composition by incorporating Ag to partially replace Cu, forming the wide-bandgap (Ag, Cu)(In, Ga)Se2. Investigate the role of Ag in reducing the deposition temperature. The first approach is to test the effectiveness of Ag in lowering the deposition temperature of known low-bandgap compositions and then extend the findings to produce advanced wide-bandgap chalcopyrite compositions. (ii) Replace the traditional toxic CdS buffer layers typically used in chalcopyrite solar cells with alternative environmentally friendly oxide materials. (iii) Introduce advanced tandem cell architecture to improve the integration of wide-bandgap chalcopyrite with Si structures, avoiding the degradation of Si cell quality.

Data: CORDIS, © European Union

Project objective

Adapting photovoltaics as a reliable renewable energy source, advanced technological solutions must be brought at the cell level. The power conversion efficiency targets must be higher than the currently available commercial single-junction solar cells of silicon (Si) or low-bandgap copper indium gallium selenide (CIGSe). The efficiency of photovoltaics can be increased by joining two cells in a single stack (top/bottom) called a tandem solar cell. Such a configuration needs a wide bandgap solar cell to be joined atop the commercial low bandgap Si or CIGSe photovoltaics. This project aims to develop such a wide-bandgap thin-film solar cell. By careful compositional engineering, silver (Ag) will be substituted for a fraction of copper (Cu) in sulfur-rich CIGS to yield wide bandgap (1.65-1.7 eV) ACIGS absorbers. Ag substitution is expected to reduce the melting point of the resulting absorber (ACIGS), thus allowing its deposition at relatively low temperatures. This provision eliminates the bottom cell damage while adapting ACIGS as a top cell in a tandem configuration. The project also investigates defects in ACIGS and their mitigation by implementing adequate passivation strategies. The solar cell device architecture will be tailored to yield high open-circuit voltages reducing the non-radiative losses across the absorber/buffer layer interface. Drift-diffusion simulations will be carried out connecting the materials properties, defects, and recombination mechanisms with the observed experimental results. The small-scale ACIGS devices fabricated in the laboratory will be scaled up at the industry partner fabricating mini-modules. The expected project results have the potential to be a major milestone in the development of tandem PV and to be readily exploited in industry.

Original text from CORDIS.

Participants

  • HELMHOLTZ-ZENTRUM BERLIN FUR MATERIALIEN UND ENERGIE GMBH · BerlinCoordinatorGermany
  • SUNPLUGGED - SOLARE ENERGIESYSTEME GMBH · SCHWAZAustria

Links

Data: CORDIS, © European Union