The role of defect charge, crystal chemistry, and crystal structure on positron lifetimes of vacancies in oxides.

IF 2.3 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER
Alejandro Lopez-Bezanilla, Farida A Selim, Maciej Oskar Liedke, Blas P Uberuaga
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引用次数: 0

Abstract

Density functional theory based positron lifetime (PL) calculations for cation and oxygen monovacancies in a range of oxides-hematite, magnetite, hercynite, and alumina-have been conducted to compare the impact of defect chemistry and crystal structure on the predicted lifetimes. The role of defect charge state has also been examined. A comparison across the same type of crystalline structure but different composition shows that oxygen vacancies only induce a slight increase in the positron-electron overlap and thus barely modify the PL as compared to the bulk. A much more substantial increase of PL is observed for cation monovacancies, regardless of crystal structure or the elemental nature of the vacancy, which we ascribe to an enhanced localization of charge density around the vacant site. The structural and compositional richness of the oxide leads to longer defect PLs, with defected hercynite exhibiting the longest PLs. The charge state of cation monovacancies modifies only by a small percentage the positron localization, relegating to secondary importance the metal defect's oxidation state in modifying the lifetime of positrons within vacancy traps.

缺陷电荷、晶体化学和晶体结构对氧化物中空位正电子寿命的作用。
我们基于密度泛函理论对一系列氧化物--赤铁矿、磁铁矿、蛭石和氧化铝--中的阳离子和氧单斜子进行了正电子寿命(PL)计算,以比较缺陷化学和晶体结构对预测寿命的影响。此外,还研究了缺陷电荷状态的作用。对相同类型但不同成分的晶体结构进行的比较表明,氧空位只会引起正电子-电子重叠的轻微增加,因此与块体相比,几乎不会改变聚光效应。无论晶体结构或空位的元素性质如何,阳离子单空位的聚光效应都有更大幅度的增加,我们将其归因于空位周围电荷密度定位的增强。氧化物结构和成分的丰富性会导致更长的缺陷光致发光,其中有缺陷的绿柱石表现出最长的光致发光。阳离子单空位的电荷状态只在很小程度上改变了正电子的定位,因此金属缺陷的氧化态在改变空位陷阱内正电子的寿命方面就显得次要了。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Physics: Condensed Matter
Journal of Physics: Condensed Matter 物理-物理:凝聚态物理
CiteScore
5.30
自引率
7.40%
发文量
1288
审稿时长
2.1 months
期刊介绍: Journal of Physics: Condensed Matter covers the whole of condensed matter physics including soft condensed matter and nanostructures. Papers may report experimental, theoretical and simulation studies. Note that papers must contain fundamental condensed matter science: papers reporting methods of materials preparation or properties of materials without novel condensed matter content will not be accepted.
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