4.7 Article

Adoption of wide-bandgap microcrystalline silicon oxide and dual buffers for semitransparent solar cells in building-integrated photovoltaic window system

Journal

JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY
Volume 35, Issue 8, Pages 1563-1569

Publisher

JOURNAL MATER SCI TECHNOL
DOI: 10.1016/j.jmst.2019.03.041

Keywords

Microcrystalline silicon oxide; Building-integrated photovoltaics; Semitransparent; Thin film; Solar cells

Funding

  1. Energy Technology Development Program of the Korea Institute of Energy Technology Evaluation and Planning (KETEP) [20163010012560, 20172010104940]

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We focused on developing penetration-type semitransparent thin-film solar cells (STSCs) using hydrogenated amorphous Si (a-Si:H) for a building-integrated photovoltaic (BIPV) window system. Instead of conventional p-type a-Si:H, p-type hydrogenated microcrystalline Si oxide (p-mu c-SiOx:H) was introduced for a wide-bandgap and conductive window layer. For these purposes, we tuned the CO2/SiH4 flow ratio (R) during p-mu c-SiOx:H deposition. The film crystallinity decreased from 50% to 13% as R increased from 0.2 to 1.2. At the optimized R of 0.6, the quantum efficiency was improved under short wavelengths by the suppression of p-type layer parasitic absorption. The series resistance was well controlled to avoid fill factor loss at R=0.6. Furthermore, we introduced dual buffers comprising p-a-SiOx:H/i-a-Si:H at the p/i interface to alleviate interfacial energy-band mismatch. The a-Si:H STSCs with the suggested window and dual buffers showed improvements in transmittance and efficiency from 22.9% to 29.3% and from 4.62% to 6.41%, respectively, compared to the STSC using a pristine p-a-Si:H window. (C) 2019 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science & Technology.

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