Synergistic Crystal and Interface Engineering for Efficient and Stable Perovskite Photovoltaics

Mohammad Mahdi Tavakoli, Michael Saliba, Pankaj Yadav, Philippe Holzhey, Anders Hagfeldt, Shaik M. Zakeeruddin, Michaël Grätzel

Advanced Energy Materials · 2018 · 219 citations · 39 references

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TL;DR

Bulk and surface defects in perovskite light‑harvesting materials limit the overall efficiency of perovskite solar cells. The study aims to suppress defect formation by adding methylammonium chloride to the precursor solution and engineering the perovskite interface with selective contacts to produce high‑quality, large‑grain triple‑cation films. A planar SnO₂/TiO₂ double‑layer oxide facilitates rapid electron extraction, while iodine in isopropanol passivates surface traps on the perovskite facing the hole conductor, reducing non‑radiative recombination. The modified PSCs achieved a record 21.65 % PCE and ~1.24 V Voc with only ~370 mV band‑gap loss, and retained 96 %, 90 %, and 85 % of their initial efficiency after 500 h of continuous illumination at 20, 50, and 65 °C, respectively, marking one of the most stable planar devices reported.

Abstract

Abstract The presence of bulk and surface defects in perovskite light harvesting materials limits the overall efficiency of perovskite solar cells (PSCs). The formation of such defects is suppressed by adding methylammonium chloride (MACl) as a crystallization aid to the precursor solution to realize high‐quality, large‐grain triple A‐cation perovskite films and that are combined with judicious engineering of the perovskite interface with the electron and hole selective contact materials. A planar SnO 2 /TiO 2 double layer oxide is introduced to ascertain fast electron extraction and the surface of the perovskite facing the hole conductor is treated with iodine dissolved in isopropanol to passivate surface trap states resulting in a retardation of radiationless carrier recombination. A maximum solar to electric power conversion efficiency (PCE) of 21.65% and open circuit photovoltage ( V oc ) of ≈1.24 V with only ≈370 mV loss in potential with respect to the band gap are achieved, by applying these modifications. Additionally, the defect healing enhances the operational stability of the devices that retain 96%, 90%, and 85% of their initial PCE values after 500 h under continuously light illumination at 20, 50, and 65 °C, respectively, demonstrating one of the most stable planar PSCs reported so far.

References

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