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Enhanced mobility CsPbI <sub>3</sub> quantum dot arrays for record-efficiency, high-voltage photovoltaic cells

Science Advances · 2017 · Vol. 3(10) · pp. eaao4204–eaao4204
Erin M. SanehiraAshley R. MarshallJeffrey A. ChristiansSteven P. HarveyPeter N. CiesielskiLance M. WheelerPhilip SchulzLih Y. LinMatthew C. BeardJoseph M. Luther

Abstract

We developed lead halide perovskite quantum dot (QD) films with tuned surface chemistry based on A-site cation halide salt (AX) treatments. QD perovskites offer colloidal synthesis and processing using industrially friendly solvents, which decouples grain growth from film deposition, and at present produce larger open-circuit voltages (<i>V</i><sub>OC</sub>'s) than thin-film perovskites. CsPbI<sub>3</sub> QDs, with a tunable bandgap between 1.75 and 2.13 eV, are an ideal top cell candidate for all-perovskite multijunction solar cells because of their demonstrated small <i>V</i><sub>OC</sub> deficit. We show that charge carrier mobility within perovskite QD films is dictated by the chemical conditions at the QD-QD junctions. The AX treatments provide a method for tuning the coupling between perovskite QDs, which is exploited for improved charge transport for fabricating high-quality QD films and devices. The AX treatments presented here double the film mobility, enabling increased photocurrent, and lead to a record certified QD solar cell efficiency of 13.43%.

Perovskite Materials and ApplicationsQuantum Dots Synthesis And PropertiesChalcogenide Semiconductor Thin FilmsPhotovoltaic systemQuantum dotOptoelectronicsVoltageMaterials scienceNanotechnologyComputer sciencePhysicsElectrical engineeringEngineering

Funding

  • U.S. Department of Energy
  • National Aeronautics and Space Administration
  • Office of Science
  • Office of Energy Efficiency and Renewable Energy
  • Oak Ridge Institute for Science and Education
  • Basic Energy Sciences
  • Solar Energy Technologies Office
  • National Renewable Energy Laboratory
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