International Journal Publication

Reliability enhancement of PVDF-HFP modified perovskite solar cells under synergistic space-relevant stress conditions

Author affiliations and roles
  1. aChang Gung University
  2. bHong Kong Polytechnic University
  3. cChang Gung Memorial Hospital
  4. dMing Chi University of Technology
  • *Corresponding author: Lee, Kun-Mu.

Chemical Engineering Journal, 540, 177494 (2026).

Research topic: Space PV & Reliability

Abstract

Thermal stress represents a critical reliability bottleneck for perovskite solar cells (PSCs) in space environments, where sustained high temperatures can accelerate irreversible degradation. Beyond isolated thermal effects, PSCs in orbit experience synergistic stressors including vacuum, illumination, and elevated temperature. This study investigates the stability of p-i-n PSCs under combined vacuum + light (V + L) and vacuum + heat (V + H) conditions, focusing on thermally activated interfacial failure and polymer-based mitigation. Devices are evaluated under two temperature regimes: moderate (85 and 100 degrees C) and extreme (115 and 130 degrees C) V + H stress, together with prolonged V + L exposure. The results show that degradation is dominated by interface-driven non-radiative recombination rather than bulk absorber failure, with Delta V3 increase, QFLS reduction, and interface-specific pseudo-PCE loss, identifying the perovskite/PCBM as the primary weak point under V + H stress. Incorporation of poly(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP) into the perovskite layer effectively suppresses defect generation, preserves microstructural integrity, and improves charge-extraction stability, leading to enhanced performance retention. Hazard-based Weibull-Arrhenius analysis confirms extended characteristic lifetimes for PVDF-HFP devices at moderate temperatures, with a higher activation energy (0.95 eV vs 0.83 eV) indicating a modified degradation pathway. Room-temperature lifetime is further predicted using a graphical extrapolation method, yielding significantly extended projected operational lifetimes for polymer-modified devices. These findings establish a reliability enhancement of the PVDF-HFP-modified devices under synergetic space-relevant stress.

Highlights

  • PVDF-HFP improves perovskite solar cell stability under space-relevant stresses.
  • Devices tested under combined vacuum + light and vacuum + heat conditions.
  • Degradation is dominated by interfacial non-radiative recombination pathways.
  • Reliability analysis shows extended lifetimes and higher activation energy for PVDF-HFP modified devices.

Keywords

Perovskite solar cellSpace applicationThermal stressPolymer-modified
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