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Cited 8 time in webofscience Cited 11 time in scopus
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Functionalized Graphene-Incorporated Cupric Oxide Charge-Transport Layer for Enhanced Photoelectrochemical Performance and Hydrogen Evolutionopen access

Authors
Krishna, Ambati Mounika SaiRamasubramanian, BrindhaHaseena, SheikBamola, PriyankaSharma, HimaniMahata, ChandreswarChroneos, AlexanderKrishnamurthy, SatheeshRavva, Mahesh KumarChandu, BasavaiahLim, Yee-FunKumar, AvishekRamakrishna, SeeramBiring, SajalChakrabortty, SabyasachiDalapati, Goutam Kumar
Issue Date
Apr-2023
Publisher
MDPI
Keywords
cupric oxide (CuO); graphene; photocathode; photoelectrochemical (PEC); hydrogen (H-2); charge-transfer layer; stability
Citation
Catalysts, v.13, no.4, pp 1 - 17
Pages
17
Indexed
SCIE
SCOPUS
Journal Title
Catalysts
Volume
13
Number
4
Start Page
1
End Page
17
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/19880
DOI
10.3390/catal13040785
ISSN
2073-4344
2073-4344
Abstract
The production of hydrogen (H-2) through photoelectrochemical water splitting (PEC-WS) using renewable energy sources, particularly solar light, has been considered a promising solution for global energy and environmental challenges. In the field of hydrogen-scarce regions, metal oxide semiconductors have been extensively researched as photocathodes. For UV-visible light-driven PEC-WS, cupric oxide (CuO) has emerged as a suitable photocathode. However, the stability of the photocathode (CuO) against photo-corrosion is crucial in developing CuO-based PEC cells. This study reports a stable and effective CuO and graphene-incorporated (Gra-COOH) CuO nanocomposite photocathode through a sol-gel solution-based technique via spin coating. Incorporating graphene into the CuO nanocomposite photocathode resulted in higher stability and an increase in photocurrent compared to bare CuO photocathode electrodes. Compared to cuprous oxide (Cu2O), the CuO photocathode was more identical and thermally stable during PEC-WS due to its high oxidation number. Additionally, the CuO:Gra-COOH nanocomposite photocathode exhibited a H-2 evolution of approximately 9.3 mu mol, indicating its potential as a stable and effective photocathode for PEC-WS. The enhanced electrical properties of the CuO:Gra-COOH nanocomposite exemplify its potential for use as a charge-transport layer.
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