First-principles calculations of local structure and electronic properties of Er3+-doped TiO2

被引:0
作者
Chen Guang-Ping [1 ,2 ]
Yang Jin-Ni [3 ]
Qiao Chang-Bing [1 ,2 ]
Huang Lu-Jun [1 ,2 ]
Yu Jing [1 ,2 ]
机构
[1] Sichuan Univ Arts & Sci, Coll Intelligent Mfg, Dazhou 635000, Peoples R China
[2] Sichuan Univ Arts & Sci, Ind Technol Res Inst Intelligent Mfg, Dazhou 635000, Peoples R China
[3] Sichuan Univ, Inst Atom & Mol Phys, Chengdu 610065, Peoples R China
基金
中国国家自然科学基金;
关键词
CALYPSO; Er3+-doped TiO2; local structure; first-principles calculations; 1.53; MU-M; CALYPSO;
D O I
10.7498/aps.71.20221847
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Trivalent rare earth erbium ion (Er3+) doped titanium oxide (TiO2) can possess a very wide range of applications due to its excellent optoelectronic properties, thus standing out among many rare-earth-doped luminescent crystals. However, the issues regarding local structure and electronic properties have not been finalized. To address these problems, the CALYPSO (Crystal structure AnaLYsis by Particle Swarm Optimization) method combined with the first-principles calculations is employed, and many converged structures of Er3+-doped TiO2 are successfully obtained. Further structural optimization is performed by using the VASP (Vienna ab initio simulation package) software package, and we report for the first time that the lowest energy structure of Er3+-doped TiO2 has the m2 symmetry. It can be observed that the doped Er3+ ions enter into the host crystal and occupy the positions of Ti4+ ions, resulting in structural distortion, which eventually leads the local Er3+ coordination site symmetry to reduce from D2d into C2v. We speculate that there are two reasons: 1) the difference in charge between Er3+ ions and Ti4+ ions leads to charge compensation; 2) the difference between their electron radii is obvious: the radius is 0.0881 for Er3+ ion and 0.0881 for Ti4+ ion. In addition, during the structural search, we also find many metastable structures that may exist at a special temperature or pressure, which play an important role in the studying of structural evolution. When the electronic band structure of the Er3+-doped TiO2 system is calculated, we adopt the method of local density approximation (LDA) combined with the on-site Coulomb repulsion parameter U to accurately describe the strongly correlated system. For the specific value of U, we adopt 3.5 eV and 7.6 eV to describe the strong correlation of 3d electrons of Ti4+ ions and 4f electrons of Er3+ ions, respectively. According to the calculation of electronic properties, the band gap value of Er3+ doped TiO2 is about 2.27 eV, which is lower than that of the host crystal (Eg = 2.40 eV). The results show that the reduction in the band gap is mainly caused by the f state of Er3+ ions. The doping of Er ion does reduce the band gap value, but it does not change the conductivity of the system, which have great application prospect in diode-pumped laser. These findings not only provide the data for further exploring the properties and applications of Er3+:TiO2 crystals, but also present an approach to studying other rare-earth-doped crystalline materials.
引用
收藏
页数:7
相关论文
共 42 条
[1]   State of the art and perspectives on materials and applications of photocatalysis over TiO2 [J].
Agrios, AG ;
Pichat, P .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 2005, 35 (7-8) :655-663
[2]   Biotemplated synthesis of 3D rare earth-doped TiO2 hollow spheres for photocatalytic application [J].
Bao, Ruiyu ;
Li, Runfu ;
Chen, Chen ;
Wu, Hua ;
Xia, Jianxin ;
Long, Chunlin ;
Li, Hua .
JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2019, 126 :78-84
[3]   Rare earth-doped TiO2 nanocrystalline thin films: Preparation and thermal stability [J].
Borlaf, Mario ;
Colomer, Maria T. ;
Moreno, Rodrigo ;
Ortiz, Angel L. .
JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2014, 34 (16) :4457-4462
[4]   Evidencing early pyrochlore formation in rare-earth doped TiO2 nanocrystals: Structure sensing via VIS and NIR Er3+ light emission [J].
Camps, I. ;
Borlaf, M. ;
Toudert, J. ;
de Andres, A. ;
Colomer, M. T. ;
Moreno, R. ;
Serna, R. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2018, 735 :2267-2274
[5]   Upconverter solar cells: materials and applications [J].
de Wild, J. ;
Meijerink, A. ;
Rath, J. K. ;
van Sark, W. G. J. H. M. ;
Schropp, R. E. I. .
ENERGY & ENVIRONMENTAL SCIENCE, 2011, 4 (12) :4835-4848
[6]   Emission of 1.53 μm originating from the lattice site of Er3+ ions incorporated in TiO2 nanocrystals [J].
Fu, Chengyu ;
Liao, Jinsheng ;
Luo, Wenqin ;
Li, Renfu ;
Chen, Xueyuan .
OPTICS LETTERS, 2008, 33 (09) :953-955
[7]  
Fuentealba P, 2007, THEOR COMPU CHEM, V19, P57
[8]   Interface structure prediction via CALYPSO method [J].
Gao, Bo ;
Gao, Pengyue ;
Lu, Shaohua ;
Lv, Jian ;
Wang, Yanchao ;
Ma, Yanming .
SCIENCE BULLETIN, 2019, 64 (05) :301-309
[9]   Ab-initio simulations of materials using VASP:: Density-functional theory and beyond [J].
Hafner, Juergen .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 2008, 29 (13) :2044-2078
[10]   TiO2 nanofibers doped with rare earth elements and their photocatalytic activity [J].
Hassan, M. Shamshi ;
Amna, Touseef ;
Yang, O-Bong ;
Kim, Hyun-Chel ;
Khil, Myung-Seob .
CERAMICS INTERNATIONAL, 2012, 38 (07) :5925-5930