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Updated: Jun 26, 2026

Making Record-efficiency SnS Solar Cells by Thermal Evaporation and Atomic Layer Deposition
Published on: May 22, 2015
Oxygen-Assisted Tailoring of Evaporated PbS Hole Transport Layer for Highly Efficient Antimony Sulfide Solar Cells
Jin-Rui Cai1, Zi-Heng Huang2, Wei-Qin Huang1
1College of Physics and Energy, Fujian Normal University, Fuzhou, 350117, China.
Abstract:
Antimony sulfide (Sb2S3) is regarded as one of the potential candidates for the next generation of photovoltaic absorber due to its excellent photoelectric properties. However, the selection and optimization of the hole transport layer (HTL) is still a major challenge for efficiency breakthrough of the Sb2S3 solar cells. In this work, lead sulfide (PbS) is deposited as a HTL of the Sb2S3 device by thermal evaporation for the first time. A high quality PbS films is conformally coated on the Sb2S3 rear surface by regulating the feeding amount, which thanks to the mass transfer mechanism of Ostwald ripening by scrutinizing the film growth kinetics. Meanwhile, both the valence band maximum (VBM) and Fermi levels are shifted down by a deliberate oxygen doping under a low vacuum ambient, which effectively reduces the offset between Sb2S3 and carbon electrode and then accelerates hole collection. Finally, it delivers an impressive photovoltaic conversion efficiency of 6.63% for carbon-based Sb2S3 solar cells, coupled with a Voc of 779 mV, Jsc of 14.9 mA cm-2 and FF of 57.13%, which is 13% higher than that under high vacuum condition.
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