Unravelling the interfacial interaction in mesoporous SiO 2 @nickel phyllosilicate/TiO 2 core-shell nanostructures for photocatalytic activity
Core-shell based nanostructures are attractive candidates for photocatalysis owing to their tunable physicochemical properties, their interfacial contact effects, and their efficacy in charge-carrier separation. This study reports, for the first time, on the synthesis of mesoporous silica@nickel phy...
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Veröffentlicht in: | Beilstein journal of nanotechnology 2020-12, Vol.11, p.1834-1846 |
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Hauptverfasser: | , , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Core-shell based nanostructures are attractive candidates for photocatalysis owing to their tunable physicochemical properties, their interfacial contact effects, and their efficacy in charge-carrier separation. This study reports, for the first time, on the synthesis of mesoporous silica@nickel phyllosilicate/titania (mSiO
@NiPS/TiO
) core-shell nanostructures. The TEM results showed that the mSiO
@NiPS composite has a core-shell nanostructure with a unique flake-like shell morphology. XPS analysis revealed the successful formation of 1:1 nickel phyllosilicate on the SiO
surface. The addition of TiO
to the mSiO
@NiPS yielded the mSiO
@NiPS/TiO
composite. The bandgap energy of mSiO
@NiPS and of mSiO
@NiPS/TiO
were estimated to be 2.05 and 2.68 eV, respectively, indicating the role of titania in tuning the optoelectronic properties of the SiO
@nickel phyllosilicate. As a proof of concept, the core-shell nanostructures were used as photocatalysts for the degradation of methyl violet dye and the degradation efficiencies were found to be 72% and 99% for the mSiO
@NiPS and the mSiO
@NiPS/TiO
nanostructures, respectively. Furthermore, a recyclability test revealed good stability and recyclability of the mSiO
@NiPS/TiO
photocatalyst with a degradation efficacy of 93% after three cycles. The porous flake-like morphology of the nickel phyllosilicate acted as a suitable support for the TiO
nanoparticles. Further, a coating of TiO
on the mSiO
@NiPS surface greatly affected the surface features and optoelectronic properties of the core-shell nanostructure and yielded superior photocatalytic properties. |
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ISSN: | 2190-4286 2190-4286 |
DOI: | 10.3762/bjnano.11.165 |