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May 16, 2016Nature Communications740 citationsOpen Access

Light-activated photocurrent degradation and self-healing in perovskite solar cells

WNWanyi NieJBJean‐Christophe BlanconANAmanda J. Neukirch

Key Points

  • To determine the microscopic mechanisms driving light-induced photocurrent degradation and explore self-healing recovery pathways in organometallic perovskite solar cells.
  • Monitored photocurrent stability and degradation dynamics in solution-processed organometallic perovskite thin-film photovoltaic devices under prolonged solar irradiation.
  • Evaluated device recovery rates during dark rest intervals and analyzed stability changes under low-temperature operating conditions at 0 °C.
  • Investigated potential microscopic origins of performance loss, focusing on trap-state formation, lattice strain, and molecular polaronic states.
  • Attributed slow photocurrent loss to the creation of light-activated, meta-stable deep-level trap states during continuous illumination.
  • Observed complete device self-healing after resting in the dark for less than 1 minute, with degradation entirely prevented when operating at 0 °C.
  • Identified small polaronic state formation linked to localized cooperative lattice strain and molecular orientations as the most viable physical mechanism.

Abstract

Solution-processed organometallic perovskite solar cells have emerged as one of the most promising thin-film photovoltaic technology. However, a key challenge is their lack of stability over prolonged solar irradiation. Few studies have investigated the effect of light soaking on hybrid perovskites and have attributed the degradation in the optoelectronic properties to photochemical or field-assisted ion migration. Here we show that the slow photocurrent degradation in thin-film photovoltaic devices is due to the formation of light-activated meta-stable deep-level trap states. However, the devices can self-heal completely by resting them in the dark for <1 min or the degradation can be completely prevented by operating the devices at 0 °C. We investigate several physical mechanisms to explain the microscopic origin for the formation of these trap states, among which the creation of small polaronic states involving localized cooperative lattice strain and molecular orientations emerges as a credible microscopic mechanism requiring further detailed studies.

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Cite This Study

Nie et al. (2016) studied this question.

synapsesocial.com/papers/69d8afcc8cb8f39931ae3994https://doi.org/10.1038/ncomms11574
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