Density functional theory for doped TiO2: current research strategies and advancements

被引:9
作者
Zavatski, Siarhei [1 ]
Neilande, Elina [2 ]
Bandarenka, Hanna [1 ]
Popov, Anatoli [2 ]
Piskunov, Sergei [2 ]
Bocharov, Dmitry [2 ]
机构
[1] Belarusian State Univ Informat & Radioelect, Appl Plasmon Lab, Minsk, BELARUS
[2] Univ Latvia, Inst Solid State Phys, Riga, Latvia
基金
欧盟地平线“2020”;
关键词
titanium dioxide; DFT; ab initio modelling; first principles calculations; band gap engineering; ENHANCED PHOTOCATALYTIC ACTIVITY; ANATASE TIO2; VISIBLE-LIGHT; OPTICAL-PROPERTIES; OXYGEN VACANCY; HARTREE-FOCK; BAND-GAP; G-C3N4/TIO2; HETEROSTRUCTURE; THEORETICAL INVESTIGATIONS; TITANIUM-DIOXIDE;
D O I
10.1088/1361-6528/ad272e
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Since the inception of the density functional theory (DFT) by Hohenberg and Kohn in 1964, it rapidly became an indispensable theoretical tool across various disciplines, such as chemistry, biology, and materials science, among others. This theory has ushered in a new era of computational research, paving the way for substantial advancements in fundamental understanding. Today, DFT is routinely employed for a diverse range of applications, such as probing new material properties and providing a profound understanding of the mechanisms underlying physical, chemical, and biological processes. Even after decades of active utilization, the improvement of DFT principles has never been slowed down, meaning that more accurate theoretical results are continuously generated with time. This work highlights the latest achievements acquired by DFT in the specific research field, namely the theoretical investigations of doped TiO2 systems, which have not been comprehensively reviewed and summarized yet. Successful progress in this niche is currently hard to imagine without the support by DFT. It can accurately reveal new TiO2 properties after introducing the desired dopant and help to find the optimal system design for a specific application prior to proceeding to more time-consuming and expensive experimental research. Hence, by evaluating a selection of the most recent research studies, we aim to highlight the pertinent aspects of DFT as they relate to the study of doped TiO2 systems. We also aim to shed light on the strengths and weaknesses of DFT and present the primary strategies employed thus far to predict the properties of various doped TiO2 systems reliably.
引用
收藏
页数:28
相关论文
共 185 条
[1]   Prediction of a highly sensitive molecule sensor for SOx detection based on TiO2/MoS2 nanocomposites: a DFT study [J].
Abbasi, Amirali ;
Sardroodi, Jaber Jahanbin .
JOURNAL OF SULFUR CHEMISTRY, 2017, 38 (01) :52-68
[2]   Toward reliable density functional methods without adjustable parameters: The PBE0 model [J].
Adamo, C ;
Barone, V .
JOURNAL OF CHEMICAL PHYSICS, 1999, 110 (13) :6158-6170
[3]   Simple development of eco-friendly dye-sensitized solar cells via controlling thickness of TiO2 nanoparticles and viscosity of electrolyte: Experimental study and DFT calculations [J].
Al Bin Saleh, Hawra ;
Abd El-Lateef, Hany M. ;
Bakir, Esam .
INORGANIC CHEMISTRY COMMUNICATIONS, 2022, 140
[4]   Visible light driven photo-degradation of Congo red by TiO2-ZnO/Ag: DFT approach on synergetic effect on band gap energy [J].
Alberto Huerta-Aguilar, Carlos ;
Palos-Barba, Viviana ;
Thangarasu, Pandiyan ;
Koodali, Ranjit T. .
CHEMOSPHERE, 2018, 213 :481-497
[5]   Enhanced Photocatalytic and Antibacterial Ability of Cu-Doped Anatase TiO2 Thin Films: Theory and Experiment [J].
Alotaibi, Abdullah M. ;
Williamson, Benjamin A. D. ;
Sathasivam, Sanjayan ;
Kafizas, Andreas ;
Alqahtani, Mahdi ;
Sotelo-Vazquez, Carlos ;
Buckeridge, John ;
Wu, Jiang ;
Nair, Sean P. ;
Scanlon, David O. ;
Parkin, Ivan P. .
ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (13) :15348-15361
[6]   DENSITY-FUNCTIONAL CALCULATION OF EFFECTIVE COULOMB INTERACTIONS IN METALS [J].
ANISIMOV, VI ;
GUNNARSSON, O .
PHYSICAL REVIEW B, 1991, 43 (10) :7570-7574
[7]  
[Anonymous], 2009, Density Functional Theory
[8]   Visible-light photocatalysis in nitrogen-doped titanium oxides [J].
Asahi, R ;
Morikawa, T ;
Ohwaki, T ;
Aoki, K ;
Taga, Y .
SCIENCE, 2001, 293 (5528) :269-271
[9]  
Ashcroft N. W., 1976, Solid State Physics
[10]  
BACHRACH SM, 1994, REV COMP CH, V5, P171, DOI 10.1002/9780470125823.ch3