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黄铁矿 CoS 中的缺陷和杂质引起的结构和电子变化:第一性原理研究。

Defects and impurities induced structural and electronic changes in pyrite CoS: first principles studies.

机构信息

Chengdu Green Energy and Green Manufacturing Technology R&D Centre, Chengdu Development Center of Science and Technology, Chengdu 610200, China.

出版信息

Phys Chem Chem Phys. 2018 May 3;20(17):11649-11655. doi: 10.1039/c8cp00443a.

Abstract

Cobalt pyrite (CoS2) and related materials are attracting much attention due to their potential use in renewable energy applications. In this work, first-principles studies were performed to investigate the effects of various neutral defects and ion dopants on the structural, energetic, magnetic and electronic properties of the bulk CoS2. Our theoretical results show that the concentrations of single cobalt (VCo) and sulfur (VS) vacancies in CoS2 samples can be high under S-rich and S-poor conditions, respectively. Although the single vacancies induce defect states near the gap edge, they are still half-metallic. We find that the substitution of one S with the O atom does not obviously change the structural, magnetic and electronic features near the Fermi level of the system. Most transition metal impurities (MnCo, FeCo, and MoCo) and Group IV and V anion impurities (CS, SiS, NS, PS, and AsS) create impurity states that are deep and/or near the gap edge. However, NiCo and Group VII elements (FS, ClS, and BrS) cause very localized gap states close to the Fermi level in the minority spin channel, which may modify their electrochemical performances. Our extensive calculations provide instructive information for the design and optimization of CoS2-related energy materials.

摘要

由于其在可再生能源应用中的潜在用途,钴黄铁矿 (CoS2) 和相关材料引起了广泛关注。在这项工作中,通过第一性原理研究来研究各种中性缺陷和离子掺杂对 CoS2 体相的结构、能量、磁性和电子性质的影响。我们的理论结果表明,在富 S 和贫 S 条件下,CoS2 样品中单个钴 (VCo) 和硫 (VS) 空位的浓度可能很高。尽管单个空位在能隙边缘附近诱导了缺陷态,但它们仍然是半金属的。我们发现,用 O 原子取代一个 S 原子不会明显改变体系费米能级附近的结构、磁性和电子特征。大多数过渡金属杂质 (MnCo、FeCo 和 MoCo) 和 IV 和 V 族阴离子杂质 (CS、SiS、NS、PS 和 AsS) 会在深能级和/或能隙边缘产生杂质态。然而,NiCo 和 VII 族元素 (FS、ClS 和 BrS) 在少数自旋通道中会导致非常局域的接近费米能级的能隙态,这可能会改变它们的电化学性能。我们的广泛计算为 CoS2 相关能源材料的设计和优化提供了有价值的信息。

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