Improving the performance of quantum dot sensitized solar cells through CdNiS quantum dots with reduced recombination and enhanced electron lifetime.

@article{Gopi2016ImprovingTP,
  title={Improving the performance of quantum dot sensitized solar cells through CdNiS quantum dots with reduced recombination and enhanced electron lifetime.},
  author={Chandu V. V. Muralee Gopi and Mallineni Venkata-Haritha and Hyunwoong Seo and Saurabh Singh and Soo-Kyoung Kim and Masaharu Shiratani and Hee-jee Kim},
  journal={Dalton transactions},
  year={2016},
  volume={45 20},
  pages={
          8447-57
        }
}
To make quantum dot-sensitized solar cells (QDSSCs) competitive, we investigated the effect of Ni(2+) ion incorporation into a CdS layer to create long-lived charge carriers and reduce the electron-hole recombination. The Ni(2+)-doped CdS (simplified as CdNiS) QD layer was introduced to a TiO2 surface via the simple successive ionic layer adsorption and reaction (SILAR) method in order to introduce intermediate-energy levels in the QDs. The effects of different Ni(2+) concentrations (5, 10, 15… 
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Electrochemical impedance spectroscopy and open circuit voltage decay measurements showed that the TiO2/ZnS/CdS/ ZnS-based QDSSCs inhibit charge recombination remarkably at the photoanode/electrolyte interface and prolong the electron lifetime.
Study of fabrication of fully aqueous solution processed SnS quantum dot-sensitized solar cell
Abstract In this prelimnary work, the aim was to fabricate a simple tin (II) sulfide (SnS) quantum dot-sensitized solar cell (QDSSC) from aqueous solution. The SnS QDSSCs were characterized by using
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