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http://hdl.handle.net/2080/5959| Title: | Surface Engineered Bimetallic Fe,Ni-MOF Based Nanohybrid for Photocatalytic Green H2 and Natural Benzaldehyde Production |
| Authors: | Panda, Saumyaranjan Mishra, Braja Gopal |
| Keywords: | bimetallic MOF Cu2MoS4 heterostructure H2 generation natural benzaldehyde |
| Issue Date: | Sep-2026 |
| Citation: | International Conference on Hybrid Nanoscience for Growth and Ultrafast Spectroscopy, NISER Bhubaneswar, India, 25–27 September 2026 |
| Abstract: | Heavy consumption of energy devoted to reliance on fossil fuel sources, which resulted in a detrimental impact on the environment and health. These challenges can be effectively addressed through a sustainable-driven approach that prioritizes the utilization of visible light as a renewable energy source with green chemistry protocols for the production of H2 and value-added chemicals. MOF-based semiconductors are versatile photocatalysts with tunable band structure, abundant active sites, impressive optoelectronic features, enabling efficient solar energy utilization for energy generation and environmental remediation. Herein, bimetallic MIL-88B(Fe,Ni) and Cu2MoS4-based nanohybrid is fabricated for the photocatalytic green H2 generation and natural benzaldehyde production. The substitution of Ni2+ ion in the Fe3O cluster of Fe-MOF creates Fe3+/Fe2+-Ni2+/Ni3+ redox active pair for the stimulated charge migration. The change in the oxidation state coordination environment in bimetallic MIL-88B(Fe,Ni) MOF is investigated by XPS, XANES, EXAFS and ESR studies. Furthermore, the surface modification of Cu2MoS4 by acid etching results in the generation of abundant active sites and Cu-vacancy. The heterostructure shows improved physicochemical and optoelectronic properties compared to the pristine components, which boost photocatalytic efficiency. The comprehensive investigation of photo-induced charge migration in the heterostructure by using Kelvin probe microscopy, femtosecond transient absorption spectroscopy and in situ irradiated XPS reveals S-scheme charge migration. This study illustrates the impact of the bimetallic redox-active center in MOF and surface texture modification of metal sulfide for production of green H2 and benzaldehyde as fine chemical. |
| Description: | Copyright belongs to the proceeding publisher |
| URI: | http://hdl.handle.net/2080/5959 |
| Appears in Collections: | Conference Papers |
Files in This Item:
| File | Description | Size | Format | |
|---|---|---|---|---|
| 2026_HyNanoUS_SPanda_Surface.pdf | Poster | 4.49 MB | Adobe PDF | View/Open Request a copy |
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