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Published on: August 23, 2012
H2O2-Modulated NiOx Nanoparticle Film with High Conductivity and an Improved Heterojunction for Efficient Sb2Se3
Qi Zhao1,2, Jianyu Li1,2, Zhiyuan Cai1,2
1Hefei National Research Center for Physical Sciences at the Microscale, School of Chemistry and Materials Science, University of Science and Technology of China, Hefei 230026, Anhui, P. R. China.
Abstract:
Hole transporting layers (HTLs) play an important role in improving the performance of optoelectronic devices by efficiently transporting holes and blocking the reverse flow of electrons. In this study, we introduce hydrogen peroxide (H2O2)-modulated NiOx (modulated-NiOx) as an efficient HTL for antimony selenide (Sb2Se3) solar cells. H2O2 improves the dispersion of NiOx nanoparticles in aqueous solution, increases the Ni3+/Ni2+ ratio, and leads to a more uniform and compact NiOx film with superior electronic properties. The increased Ni3+/Ni2+ ratio results in a more matching energy level alignment between NiOx and Sb2Se3 that is favorable for hole extraction. Density functional theory (DFT) calculations reveal that the modulated-NiOx/Sb2Se3 interface exhibits a more ordered and planar interfacial structure with a well-aligned atomic position, promoting efficient charge transfer and suppressing interfacial recombination. As a result, Sb2Se3 solar cells employing modulated-NiOx achieve a power conversion efficiency (PCE) of 9.06%, which ranks among the top efficiency for all-inorganic Sb2Se3 solar cells. Furthermore, the devices exhibit excellent stability, retaining 97% of the initial PCE after 30 days of storage in air. This study highlights the potential of H2O2-modified NiOx as a high-performance HTL for efficient and stable Sb2Se3 solar cells, providing a promising pathway for advancing the Sb2Se3 photovoltaic technology.
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