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Improving Carrier-Transport Properties of CZTS by Mg Incorporation with Spray Pyrolysis. | LitMetric

AI Article Synopsis

  • High nonradiative recombination and other issues limit the efficiency of CuZnSnS (CZTS) solar cells, prompting interest in cation substitutions to improve performance.
  • While common substitutes like Ag and Cd are scarce and toxic, Magnesium (Mg) is a stable, abundant, and non-toxic alternative that shows potential benefits in solar cell efficiency.
  • Incorporating a small amount of Mg into CZTS improves the power conversion efficiency from 5.10% to 6.73%, enhances carrier transport properties, and leads to better charge collection, making it a promising solution for solar cell performance improvement.

Article Abstract

High nonradiative recombination, low diffusion length and band tailing are often associated with a large open circuit voltage deficit, which results in low efficiency of CuZnSnS (CZTS) solar cells. Recently, cation substitution in CZTS has gained interest as a plausible solution to suppress these issues. However, the common substitutes, Ag and Cd, are not ideal due to their scarcity and toxicity. Other transition-metal candidates (e.g., Mn, Fe, Co, or Ni) are multivalent, which may form harmful deep-level defects. Magnesium, as one of the viable substitutes, does not have these issues, as it is very stable in +2 oxidation state, abundant, and nontoxic. In this study, we investigate the effect of Mg incorporation in sulfur-based CuZnSnS to form CuMgZnSnS by varying from 0.0 to 1.0. These films were fabricated by chemical spray pyrolysis and the subsequent sulfurization process. At a high Mg content, it is found that Mg does not replace Zn to form a quaternary compound, which leads to the appearance of the secondary phases in the sample. However, a low Mg content (CuMgZnSnS) improves the power conversion efficiency from 5.10% (CZTS) to 6.73%. The improvement is correlated to the better carrier-transport properties, as shown by a lesser amount of the ZnS secondary phase, higher carrier mobility, and shallower acceptor defects level. In addition, the CuMgZnSnS device also shows better charge-collection property based on the higher fill factor and quantum efficiency despite having lower depletion width. Therefore, we believe that the addition of a small amount of Mg is another viable route to improve the performance of the CZTS solar cell.

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Source
http://dx.doi.org/10.1021/acsami.9b05244DOI Listing

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