| Literature DB >> 28243557 |
Massimo Zimbone1, Giuseppe Cacciato1, Mohamed Boutinguiza2, Vittorio Privitera1, Maria Grazia Grimaldi3.
Abstract
Since 1970, TiO2 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 TiO2" 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 TiO2-based material based on laser irradiation. The resulting black TiO x shows a high activity and adsorbs visible radiation, overcoming the main concerns related to the use of TiO2 under solar irradiation. We employed a commercial high repetition rate green laser in order to synthesize a black TiO x layer and we demonstrate the scalability of the present methodology. The photocatalyst is composed of a nanostructured titanate film (TiO x ) 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 x /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 x layer.Entities:
Keywords: TiOx; black titania; laser irradiation in water; photocatalysis; water treatment
Year: 2017 PMID: 28243557 PMCID: PMC5301962 DOI: 10.3762/bjnano.8.21
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1Schematic representation of the sample preparation steps: (a) laser irradiation of the Ti foil in order to form the black TiO layer; (b) synthesis of Pt nanoparticles via laser ablation in water; (c) schematic representation of the black TiO/Ti/PtNp multilayer structure after the deposition of the Pt nanoparticles on the rear side of the irradiated Ti foil.
Figure 2Left: Photograph of the irradiated sample. Middle: low-magnification SEM image of the surface after laser irradiation. Right: High-magnification image of the surface of black TiO.
Figure 3RBS spectra of the TiO film and the Ti target. Arrows indicate signals coming from titanium and oxygen, respectively. Simulations of the spectra are also reported. Left lower side: a schematic representation of the irradiated sample is reported.
Figure 4XRD spectra of the TiO/Ti film and the Ti foil (before irradiation). The main characteristic peaks of titanium are indicated. The main feature of the black TiO sample is the pronounced amorphous signal observed at low scattering angles.
Figure 5Absorbance spectra of the TiO/Ti film in the IR, visible and UV spectral range.
Figure 6UV discoloration of methylene blue (MB) dye in the presence of TiO/Ti/Pt foil. The discoloration of a MB solution without photocatalyst is also reported for comparison purposes.