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Journal ArticleDOI

The Role of Metal Ion Dopants in Quantum-Sized TiO2: Correlation between Photoreactivity and Charge Carrier Recombination Dynamics

Wonyong Choi, +2 more
- 22 Dec 1994 - 
- Vol. 98, Iss: 51, pp 13669-13679
TLDR
In this article, the presence of metal ion dopants in the TiO_2 crystalline matrix significantly influences photoreactivity, charge carrier recombination rates, and interfacial electron-transfer rates.
Abstract
A systematic study of metal ion doping in quantum (Q)-sized (2-4 nm) TiO_2 colloids is performed by measuring their photoreactivities and the transient charge carrier recombination dynamics. The presence of metal ion dopants in the TiO_2 crystalline matrix significantly influences photoreactivity, charge carrier recombination rates, and interfacial electron-transfer rates. The photoreactivities of 21 metal ion-doped colloids are quantified in terms of both the conduction band electron reduction of an electron acceptor (CCl_4 dechlorination) and the valence band hole oxidation of an electron donor (CHCl_3 degradation). Doping with Fe^(3+), Mo^(5+), Ru^(3+), Os^(3+), Re^(5+), V^(4+), and Rh^(3+) at 0.1-0.5 at.% significantly increases the photoreactivity for both oxidation and reduction while Co^(3+) and Al^(3+) doping decreases the photoreactivity. The transient absorption signals upon laser flash photolysis (λ_(ex) = 355 nm) at λ = 600 nm are extended up to 50 ms for Fe^(3+)-, V^(4+)-, Mo^(5+)-, and Ru^(3+)-doped TiO_2 while the undoped Q-sized TiO_2 shows a complete "blue electron" signal decay within 200 μs. Co^(3+)- and Al^(3+)-doped TiO_2 are characterized by rapid signal decays with a complete loss of absorption signals within 5 μs. The quantum yields obtained during CW photolyses are quantitatively correlated with the measured transient absorption signals of the charge carriers. Photoreactivities are shown to increase with the relative concentration of trapped charge carriers. The photoreactivity of doped TiO_2 appears to be a complex function of the dopant concentration, the energy level of dopants within the TiO_2 lattice, their d electronic configuration, the distribution of dopants, the electron donor concentration, and the light intensity.

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Citations
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Journal ArticleDOI

CdSe quantum dot-sensitized Au/TiO2 hybrid mesoporous films and their enhanced photoelectrochemical performance

TL;DR: In this paper, a novel CdSe quantum dot (QD)-sensitized Au/TiO2 hybrid mesoporous films have been designed, fabricated, and evaluated for photoelectrochemical (PEC) applications.
Journal ArticleDOI

Synthesis, thermal behaviour and luminescence properties of rare earth-doped titania nanofibers

TL;DR: In this paper, a microstructural and spectroscopic characterisation of rare earth (RE)-doped titania nanofibers is presented by means of scanning electron microscopy (SEM), thermal analysis (TG-DTA), X-ray diffraction (XRD and HT-XRD), and Raman spectroscopy.
Journal ArticleDOI

Investigation of nitrogen doped TiO2 photocatalytic films prepared by reactive magnetron sputtering

TL;DR: In this paper, Nitrogen doped titanium oxide films were loaded on aluminum substrates by reactive magnetron sputtering with O2/N2 mixture as reactive gas, and surface molecularly chemisorbed N2, doped N3− and solid solution N2 were found in the films by XPS experiments.
Journal ArticleDOI

Photocatalytic degradation of o-cresol sensitized by iron–titania binary photocatalysts

TL;DR: In this paper, the degradation of ortho-cresol assisted by Fe/TiO2 photocatalysts was investigated in oxygenated aqueous suspension in a spiral glass flow reactor.
Journal ArticleDOI

Synthesis of visible-light active TiO2 photocatalyst with Pt-modification: Role of TiO2 substrate for high photocatalytic activity

TL;DR: In this article, the photocatalytic activity of the raw TiO2 powder clearly decreased with increasing calcination temperature, which was correlated with the light absorption properties of the Pt complex on nano-particles.
References
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Book

Inorganic Chemistry: Principles of Structure and Reactivity

TL;DR: In this article, inorganic chemistry principles of structure and reactivity are presented. But, they do not cover how to use these principles in the design of products, and they are not available in any type of product.
Book

Transition Metal Oxides: An Introduction to Their Electronic Structure and Properties

P. A. Cox
TL;DR: In this article, the authors present a chemical aspects structural principles of electronic classification and models of electronic structure: ionic models cluster models band theory intermediate models, point-defects and semiconduction, electronic carrier properties.
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