Thermal and mechanical properties and the structural phase transition under pressure in InAs ( = Ca, Sr, Ba)
arXiv:2407.03290 · doi:10.1103/PhysRevB.108.094111
Abstract
Experimental results that BaIn2As2 and Ca(Sr)In2As2, which are the same class of alkali metal compounds, belong to different structural phases have puzzled the current materials physics community. Here, we investigate the pressure-induced structural phase transition of AIn2As2 and its accompanying improvement in mechanical and thermal properties. Firstly, the structural stability of the materials and their structural phase transitions under pressure are characterized by enthalpy and double checking by phonon dispersion spectrum. We also confirm the structural phase transitions of the hexagonal and monoclinic phases from a group-theoretic point of view, associating their symmetry operations using transformation matrices. In terms of mechanical properties, we propose an effective scheme for pressure modulation of the anisotropy of AIn2As2 materials and to induce the transformation of AIn2As2 from isotropic to anisotropic (hexagonal) and from brittle to ductile (hexagonal and monoclinic). Meanwhile, we find the negative Poisson's ratio phenomenon under compression and tension, which is favorable for a wide range of applications of this series of materials in aerospace, medicine, sensors, etc. In terms of thermal properties, applying pressure will enhance the structural phase transition temperature of AIn2As2 materials to near room temperature. We further give direct evidence of phonon softening based on group velocity calculations and reveal that phonon softening prevents the heat capacity from reaching the Dulong-Petit limit. Our study provides a theoretical basis for selecting stable structural phases and pioneering thermodynamic property studies of the thermoelectric topological candidate material AIn2As2.
22 pages, 13 figures
References in corpus (21)
- Intrinsic Correlation between Hardness and Elasticity in Polycrystalline Materials and Bulk Metallic Glasses
- ELATE: An open-source online application for analysis and visualization of elastic tensors
- Higher-order Topology of Axion Insulator EuInAs
- Dirac surface states in intrinsic magnetic topological insulators EuSn2As2 and MnBi2nTe3n+1
- Theoretical investigation on the transition metal borides with Ta3B4-type structure: a class of hard and refractory materials
- MechElastic: A Python Library for Analysis of Mechanical and Elastic Properties of Bulk and 2D Materials
- ElATools: A tool for analyzing anisotropic elastic properties of the 2D and 3D materials
- Dirac semimetal in type IV magnetic space group
- First-principles study of phonon anharmonicity and negative thermal expansion in ScF3
- Coupling of magnetic order and charge transport in the candidate Dirac semimetal EuCdAs
- Magnetic crystalline-symmetry-protected axion electrodynamics and field-tunable unpinned Dirac cones in EuIn2As2
- In-plane antiferromagnetic moments in axion topological insulator candidate EuInAs
- Pressure-induced Topological and Structural Phase Transitions in an Antiferromagnetic Topological Insulator
- Suppression of the antiferromagnetic metallic state in the pressurized MnBi2Te4 single crystal
- Temperature Dependent Electronic Structure in a Higher Order Topological Insulator Candidate EuInAs
- Quantization in chiral higher order topological insulators: circular dichroism and local Chern marker
- Signature of band inversion in the antiferromagnetic phase of axion insulator candidate EuIn2As2
- Monoclinic EuSnAs: A Novel High-Pressure Network Structure
- Impurity induced topological phase transitions in CdAs and NaBi Dirac semimetals
- Strain-gradient induced topological transition in bent nanoribbons of the Dirac semimetal Cd3As2
- Pressure Effect on Band Inversion in AECd2As2