Effect of halogen doping on the electronic, electrical, and optical properties of anatase TiO2

Author:

Filippatos Petros-Panagis12ORCID,Kelaidis Nikolaos3,Vasilopoulou Maria1ORCID,Davazoglou Dimitris1,Chroneos Alexander45

Affiliation:

1. Institute of Nanoscience and Nanotechnology (INN), National Center for Scientific Research Demokritos, 15310 Agia Paraskevi, Athens, Greece

2. Faculty of Engineering, Environment and Computing, Coventry University, Priory Street, Coventry CV1 5FB, United Kingdom

3. Theoretical and Physical Chemistry Institute, National Hellenic Research Foundation, Vass. Constantinou 48, GR-11635 Athens, Greece

4. Department of Electrical and Computer Engineering, University of Thessaly, 38221 Volos, Greece

5. Department of Materials, Imperial College, London SW7 2AZ, United Kingdom

Abstract

Titanium dioxide (TiO2) is one of the most used oxides in renewable energy applications, such as hydrogen production, photovoltaics, and light-emitting diodes. To further improve the efficiency of the devices, doping strategies are used to modify their fundamental properties. Here, we used density functional theory (DFT) simulations to explore the effect of all the halogen dopants on the structural, electronic, and optical properties of TiO2. We investigated both the interstitial and the oxygen substitutional positions, and for the optimized structures, we used hybrid DFT calculations to predict the electronic and optical properties. In all cases, we found that halogen dopants reduce the bandgap of the pristine TiO2 while gap states also arise. The halogen dopants constitute a single acceptor when they occupy interstitial sites, while when they are inserted in oxygen sites, they act as donors. This can be established by the states that form above the valence band. It is proposed that these states contribute to the significant changes in the optical and electronic properties of TiO2 and can be beneficial to the photovoltaic and photocatalytic applications of TiO2. Importantly, the iodine doping of TiO2 significantly reduces the bandgap of TiO2 while increasing its dielectric constant, making it suitable for light-harvesting applications.

Funder

Lloyd’s Register Foundation

European Union H2020 Program Harvestore

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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