Structural Stability, Electronic Structure, and Thermoelectric Properties for Half-Metallic Quaternary Heusler Compounds NdCoMnZ (Z = Al, In), PrCoMnZ (Z = Ga, In), and PrCoCrZ (Z = Al, Ga)

IF 1.6 4区 物理与天体物理 Q3 PHYSICS, APPLIED Journal of Superconductivity and Novel Magnetism Pub Date : 2024-07-27 DOI:10.1007/s10948-024-06805-7
Ayache Mebarek Azzem, Saadi Berri, Djamel Maouche
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Abstract

Quaternary Heusler materials featuring intrinsic half-metallicity (HM) and high critical temperature Tc emerge as promising candidates for spintronic devices. The advanced density functional theory is used to examine the complicated interaction of the structural, electronic structure, and thermoelectric properties of novel NdCoMnZ (Z = Al, In), PrCoMnZ (Z = Ga, In), and PrCoCrZ (Z = Al, Ga) Quaternary Heusler compounds (QHAs). The total energies vs volume of the six materials were computed to formulate ground state characteristics. We have utilized TB-mBJ to estimate the band structure and density of states. The results show that the alloys are half metallic with considerable half-metallic gaps of 0.480 eV, 0.484 eV, 0.564 eV, 0.516 eV, 0.615 eV, and 0.580 eV for NdCoMnAl, NdCoMnIn, PrCoMnGa, PrCoMnIn, PrCoCrAl, and PrCoCrGa, respectively. All alloys have magnetic moments that are integers (5, 6, and 7 µB) and that satisfy the Pauli rule Mtot = (Ztot-18). Our calculation of the Curie’s temperature TC showed that the values range from 928 to 1290 K. The magnetic moments as a function of the lattice constant were also calculated for all materials. The thermoelectric properties of all materials are obtained using the BoltzTraB code based on Boltzmann transport theory. The Seebeck coefficient, electrical conductivity, electronic thermal conductivity, power factor, and figure of merit were calculated. The investigation of thermoelectric characteristics showed that both alloys display higher electrical conductivities and lower thermal conductivities.

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半金属季化合物 NdCoMnZ(Z = Al,In)、PrCoMnZ(Z = Ga,In)和 PrCoCrZ(Z = Al,Ga)的结构稳定性、电子结构和热电性能
具有本征半金属性(HM)和高临界温度 Tc 的四元 Heusler 材料有望成为自旋电子器件的候选材料。本文采用先进的密度泛函理论研究了新型 NdCoMnZ (Z = Al, In)、PrCoMnZ (Z = Ga, In) 和 PrCoCrZ (Z = Al, Ga) 第四代 Heusler 化合物 (QHAs) 的结构、电子结构和热电性能之间复杂的相互作用。我们计算了这六种材料的总能量与体积的关系,以制定基态特征。我们利用 TB-mBJ 估算了带状结构和状态密度。结果表明,这些合金是半金属材料,其中 NdCoMnAl、NdCoMnIn、PrCoMnGa、PrCoMnIn、PrCoCrAl 和 PrCoCrGa 的半金属间隙分别为 0.480 eV、0.484 eV、0.564 eV、0.516 eV、0.615 eV 和 0.580 eV。所有合金的磁矩都是整数(5、6 和 7 µB),并且符合保利规则 Mtot = (Ztot-18)。我们对居里温度 TC 的计算表明,其值范围在 928 至 1290 K 之间。所有材料的热电性能都是通过基于玻尔兹曼输运理论的 BoltzTraB 代码获得的。计算了塞贝克系数、电导率、电子热导率、功率因数和优点系数。对热电特性的研究表明,这两种合金都具有较高的导电性和较低的导热性。
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来源期刊
Journal of Superconductivity and Novel Magnetism
Journal of Superconductivity and Novel Magnetism 物理-物理:凝聚态物理
CiteScore
3.70
自引率
11.10%
发文量
342
审稿时长
3.5 months
期刊介绍: The Journal of Superconductivity and Novel Magnetism serves as the international forum for the most current research and ideas in these fields. This highly acclaimed journal publishes peer-reviewed original papers, conference proceedings and invited review articles that examine all aspects of the science and technology of superconductivity, including new materials, new mechanisms, basic and technological properties, new phenomena, and small- and large-scale applications. Novel magnetism, which is expanding rapidly, is also featured in the journal. The journal focuses on such areas as spintronics, magnetic semiconductors, properties of magnetic multilayers, magnetoresistive materials and structures, magnetic oxides, etc. Novel superconducting and magnetic materials are complex compounds, and the journal publishes articles related to all aspects their study, such as sample preparation, spectroscopy and transport properties as well as various applications.
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