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钛缺陷未掺杂金红石型TiO的磁性:第一性原理计算

The magnetism of titanium-defected undoped rutile TiO: first-principles calculations.

作者信息

Dai Houmei, Li Xin, Cai Xiaolin, Wei Ran

机构信息

Hubei Province Key Laboratory of Systems Science in Metallurgical Process, Wuhan University of Science and Technology, Wuhan 430081, China.

出版信息

Phys Chem Chem Phys. 2020 Nov 18;22(44):25930-25935. doi: 10.1039/d0cp04282j.

DOI:10.1039/d0cp04282j
PMID:33164002
Abstract

The physicochemical properties of TiO2 are largely dependent on the defects. Here, using first-principles calculations, we report a systematic investigation of the magnetic properties of Ti-defected rutile TiO2 systems. The results of our calculations show that the VTi concentration can significantly affect the size of the magnetism, and that the magnetism weakens with decreasing VTi concentration. Studies of phonon dispersion curves show that systems with lower VTi concentrations of 8.33% and 6.25% are kinetically stable. Further detailed calculations on the Ti11O24 system indicate that the magnetism mainly originates from four of the six nearest-neighbor O atoms to the Ti vacancy, but much less from the other two. The magnetic ground states are discussed, and the results show that for the Ti11O24 system, the ferromagnetic (FM) state of the four nearest-neighbor O atoms to the Ti vacancy is the magnetic ground state, and for the Ti22O48 system, the FM state of the two vacancies is the magnetic ground state. In addition, our calculations also indicate that the magnetic properties of Ti-defected TiO2 can be tuned via strain engineering. In general, this metal-defected TiO2 represents a novel kind of semiconductor. Research into the magnetic properties reported in this paper can enrich theoretical knowledge in this area and provide more potential candidates for TiO2-based materials.

摘要

TiO₂的物理化学性质在很大程度上取决于缺陷。在此,我们通过第一性原理计算,对Ti缺陷的金红石型TiO₂体系的磁性进行了系统研究。计算结果表明,VTi浓度会显著影响磁性的大小,且随着VTi浓度降低,磁性减弱。声子色散曲线研究表明,VTi浓度较低(8.33%和6.25%)的体系在动力学上是稳定的。对Ti₁₁O₂₄体系的进一步详细计算表明,磁性主要源于Ti空位最近邻的六个O原子中的四个,而另外两个贡献较少。我们讨论了磁性基态,结果表明,对于Ti₁₁O₂₄体系,Ti空位最近邻的四个O原子的铁磁(FM)态是磁性基态,而对于Ti₂₂O₄₈体系,两个空位的FM态是磁性基态。此外,我们的计算还表明,Ti缺陷的TiO₂的磁性可通过应变工程进行调控。总体而言,这种金属缺陷的TiO₂代表了一种新型半导体。本文对磁性性质的研究能够丰富该领域的理论知识,并为TiO₂基材料提供更多潜在候选材料。

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