Highly Efficient Flexible Quantum Dot Solar Cells with Improved Electron Extraction Using MgZnO Nanocrystals.

ACS Nano

Department of Chemistry-Ångström, Physical Chemistry and ‡Department of Physics and Astronomy, Molecular and Condensed Matter Physics, Uppsala University, 75120 Uppsala, Sweden.

Published: August 2017

AI Article Synopsis

  • Colloidal quantum dot (CQD) solar cells show great promise for efficient, lightweight energy sources in flexible and wearable tech.
  • A new MgZnO nanocrystal (MZO-NC) layer improves these solar cells by enhancing electron extraction and reducing charge loss at the interface.
  • This innovation has achieved record power conversion efficiencies of 10.4% on glass and 9.4% on flexible plastic substrates, indicating the potential for future flexible solar cells and optoelectronic devices.

Article Abstract

Colloidal quantum dot (CQD) solar cells have high potential for realizing an efficient and lightweight energy supply for flexible or wearable electronic devices. To achieve highly efficient and flexible CQD solar cells, the electron transport layer (ETL), extracting electrons from the CQD solid layer, needs to be processed at a low-temperature and should also suppress interfacial recombination. Herein, a highly stable MgZnO nanocrystal (MZO-NC) layer is reported for efficient flexible PbS CQD solar cells. Solar cells fabricated with MZO-NC ETL give a high power conversion efficiency (PCE) of 10.4% and 9.4%, on glass and flexible plastic substrates, respectively. The reported flexible CQD solar cell has the record efficiency to date of flexible CQD solar cells. Detailed theoretical simulations and extensive characterizations reveal that the MZO-NCs significantly enhance charge extraction from CQD solids and diminish the charge accumulation at the ETL/CQD interface, suppressing charge interfacial recombination. These important results suggest that the low-temperature processed MZO-NCs are very promising for use in efficient flexible solar cells or other flexible optoelectronic devices.

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Source
http://dx.doi.org/10.1021/acsnano.7b04332DOI Listing

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