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Laser irradiation in water for the novel, scalable synthesis of black TiO x photocatalyst for environmental remediation.

Authors :
Zimbone M
Cacciato G
Boutinguiza M
Privitera V
Grimaldi MG
Source :
Beilstein journal of nanotechnology [Beilstein J Nanotechnol] 2017 Jan 19; Vol. 8, pp. 196-202. Date of Electronic Publication: 2017 Jan 19 (Print Publication: 2017).
Publication Year :
2017

Abstract

Since 1970, TiO <subscript>2</subscript> photocatalysis has been considered a possible alternative for sustainable water treatment. This is due to its material stability, abundance, nontoxicity and high activity. Unfortunately, its wide band gap (≈3.2 eV) in the UV portion of the spectrum makes it inefficient under solar illumination. Recently, so-called "black TiO <subscript>2</subscript> " has been proposed as a candidate to overcome this issue. However, typical synthesis routes require high hydrogen pressure and long annealing treatments. In this work, we present an industrially scalable synthesis of TiO <subscript>2</subscript> -based material based on laser irradiation. The resulting black TiO <subscript>x</subscript> shows a high activity and adsorbs visible radiation, overcoming the main concerns related to the use of TiO <subscript>2</subscript> under solar irradiation. We employed a commercial high repetition rate green laser in order to synthesize a black TiO <subscript>x</subscript> layer and we demonstrate the scalability of the present methodology. The photocatalyst is composed of a nanostructured titanate film (TiO <subscript>x</subscript> ) synthetized on a titanium foil, directly back-contacted to a layer of Pt nanoparticles (PtNps) deposited on the rear side of the same foil. The result is a monolithic photochemical diode with a stacked, layered structure (TiO <subscript>x</subscript> /Ti/PtNps). The resulting high photo-efficiency is ascribed to both the scavenging of electrons by Pt nanoparticles and the presence of trap surface states for holes in an amorphous hydrogenated TiO <subscript>x</subscript> layer.

Details

Language :
English
ISSN :
2190-4286
Volume :
8
Database :
MEDLINE
Journal :
Beilstein journal of nanotechnology
Publication Type :
Academic Journal
Accession number :
28243557
Full Text :
https://doi.org/10.3762/bjnano.8.21