Orthorhombic distortion-induced anatase-like optoelectronic properties of rutile TiO2

Author:

Chen Binjie1ORCID,Kang Kungwan2ORCID,Jeen Hyoungjeen2ORCID,Zhang Yuqiao34ORCID,Lin Jinghuang5,Feng Bin5ORCID,Ikuhara Yuichi5ORCID,Hoshino Sena6ORCID,Matsunaga Katsuyuki6ORCID,Ohta Hiromichi7ORCID

Affiliation:

1. Graduate School of Information Science and Technology, Hokkaido University, N14W9, Kita, Sapporo 060-0814, Japan

2. Department of Physics, Pusan National University, Busan 46241, South Korea

3. Institute of Quantum and Sustainable Technology (IQST), School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang 212013, China

4. Foshan (Southern China) Institute for New Materials, Foshan 528200, China

5. Institute of Engineering Innovation, The University of Tokyo, 2-11-16 Yayoi, Bunkyo, Tokyo 113-8656, Japan

6. Department of Materials Physics, Nagoya University, Furo, Chikusa, Nagoya 464-8603, Japan

7. Research Institute for Electronic Science, Hokkaido University, N20W10, Kita, Sapporo 001-0020, Japan

Abstract

Titanium dioxide (TiO2) is an excellent photocatalyst and transparent conducting oxide. It has two major crystal structures: rutile and anatase. Anatase TiO2 is valuable from an industrial point of view because it typically displays better photocatalytic and electronic transport properties than rutile TiO2. To further extract the functional properties of TiO2, understanding the correlation between the electronic structure and the crystal structure is essential. Because the electronic structure strongly depends on the crystal structure, introducing lattice distortion to rutile TiO2 should effectively modulate its electronic structure. Here, we show that Nb-doped rutile TiO2 epitaxial films on ([Formula: see text]) α-Al2O3 substrates exhibit anatase-like optoelectronic properties due to orthorhombic lattice distortions and experimentally observe the change in the electronic structure. Reducing the film thickness increases the orthorhombic distortion ratio ( b/ a) up to 3.4%. As b/ a increases, the carrier effective mass decreases from 35 to 3  m0 ( m0: electron mass) and the optical bandgap significantly increases. The present observations provide insight into regulating the TiO2 physical properties and should be beneficial for designing TiO2-based photocatalysts and transparent conducting electrodes.

Funder

Japan Society for the Promotion of Science

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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