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First-principles Study of the Electronic Structure of Nonmetal-doped Anatase TiO2

机译:非金属掺杂锐钛矿型TiO2电子结构的第一性原理研究

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In this paper, we present a detailed study of the structure, defect formation energy, and electronic and magnetic properties of nonmetal-doped TiO2 by using the first-principles projector augmented wave (PAW) potential within the generalized gradient approximation (GGA). The formation energy reduces with increasing electronegativity of the dopant. After doping with nonmetal elements, some band gaps of the doped-TiO2 become narrow, and others become wide, in which impurity states appear in the band gap. The relative positions of the impurity states are much different, mainly caused by the different electronegativities of the nonmetal elements F, O, B, C and N. When H is added to achieve a charge balance, the impurity states approach the valence band maximum, because the electronegativity difference among the nonmetal elements is decreased. Therefore, nonmetal and H codoping is an effective way to improve the visible-light catalytic activity of anatase TiO2. In addition, N-doping and C-doping can cause spin polarization of the TiO2 electronic structure and form 1.0 mu B and 2.0 mu B magnetic moment, respectively.
机译:在本文中,我们使用广义梯度近似(GGA)中的第一原理投影仪增强波(PAW)电位,对非金属掺杂TiO2的结构,缺陷形成能以及电子和磁性质进行了详细研究。形成能随着掺杂剂电负性的增加而降低。在用非金属元素掺杂之后,掺杂的TiO2的一些带隙变窄,而另一些则变宽,其中在带隙中出现杂质态。杂质态的相对位置差异很大,主要是由于非金属元素F,O,B,C和N的电负性不同所致。当添加H达到电荷平衡时,杂质态接近价带最大值,因为非金属元素之间的电负性差异减小了。因此,非金属和氢的共掺杂是提高锐钛矿型TiO2可见光催化活性的有效方法。另外,N掺杂和C掺杂会引起TiO2电子结构的自旋极化,并分别形成1.0μB和2.0μB的磁矩。

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