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October 6, 2017Science Advances973 citationsOpen Access

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

ESErin M. SanehiraAMAshley R. MarshallJCJeffrey A. Christians

Key Points

  • To improve charge carrier mobility and device efficiency in CsPbI3 perovskite quantum dot films by tuning inter-dot surface chemistry with cation halide salt treatments.
  • Synthesized colloidal CsPbI3 perovskite quantum dots with bandgaps ranging from 1.75 to 2.13 eV.
  • Tuned inter-dot electronic coupling and junction chemistry in thin films using A-site cation halide salt (AX) post-treatments.
  • AX salt treatments doubled charge carrier mobility across the perovskite quantum dot films.
  • Enhanced charge transport and photocurrent yielded a certified record quantum dot solar cell efficiency of 13.43%.

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 (VOC's) than thin-film perovskites. CsPbI3 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 VOC 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%.

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Cite This Study

Sanehira et al. (2017) studied this question.

synapsesocial.com/papers/69d9acf63e67f8d13868426dhttps://doi.org/10.1126/sciadv.aao4204
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