Nanostructured electroless Ni deposited SnO 2 for solar hydrogen production
Herein, Ni-decorated SnO (Ni@SnO ) nanostructures have been synthesized using SnO as a matrix a simple electroless deposition method for the generation of hydrogen, a potent near-future fuel. XRD analysis confirmed the generation of rutile SnO in Ni@SnO . FESEM and FETEM imaging exhibited the format...
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Veröffentlicht in: | Nanoscale 2024-10, Vol.16 (38), p.17838-17851 |
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Hauptverfasser: | , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Herein, Ni-decorated SnO
(Ni@SnO
) nanostructures have been synthesized using SnO
as a matrix
a simple electroless deposition method for the generation of hydrogen, a potent near-future fuel. XRD analysis confirmed the generation of rutile SnO
in Ni@SnO
. FESEM and FETEM imaging exhibited the formation of SnO
nanoparticles with a size of 10-50 nm, which are deposited with Ni nanoparticles (5-7 nm) and intermittent films (thickness 1-2 nm). The associated EDS elemental mapping validated Ni deposition on the surface of the SnO
nanoparticles, further supplemented by FTIR, Raman and XPS analysis. Slight red shifts in the band gaps of the Ni@SnO
nanostructures (in the range of 3.53-3.65 eV) compared to the pristine SnO
nanoparticles (3.72 eV) were observed. Also, intensity quenching of the band gap and associated defect peaks were observed in PL analysis. The Ni@SnO
nanostructures were used as photocatalysts and exhibited proficient hydrogen evolution. Among the samples, the 0.3 wt% Ni@SnO
nanostructures showed the greatest hydrogen evolution,
, ∼50 μmol g
h
under visible light irradiation
pristine SnO
(8.5 μmol g
h
) owing to the enhanced density of active sites and effective charge separation. It is noteworthy that the hydrogen evolution is much better as compared to earlier reports of Pt-doped-SnO
based materials. |
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ISSN: | 2040-3364 2040-3372 |
DOI: | 10.1039/D4NR01194E |