Ti2PTe2 chalcogenide: A comprehensive DFT study on physical properties

dc.contributor.authorM.H. Mia
dc.contributor.authorMst.A. Khatun
dc.contributor.authorM. Rahman
dc.date.accessioned2026-03-24T04:28:04Z
dc.date.issued2025-04-26
dc.description.abstractWe have investigated the structural, mechanical, lattice dynamics, electronic, optical and thermal properties of Ti2PTe2 chalcogenide using density functional theory for the first time. The optimized unit cell parameters show excellent agreement with experimental values. The stability of Ti2PTe2 is confirmed by thermodynamic, mechanical, and dynamical stability criteria. The material exhibits softness, machinability, and brittleness, making it suitable for applications requiring ease of fabrication and damage tolerance. The compound is elastically and optically anisotropic. Its electronic properties reveal a metallic nature, characterized by a mix of covalent, ionic, and metallic bonding. Its ultra-low thermal conductivity suggests Ti2PTe2 is a promising candidate for thermal barrier coatings (TBCs). Additionally, its strong UV absorption makes it useful for UV detectors, anti-reflective coatings, and protection against photo-disintegration. With a high static refractive index and impressive reflectivity, Ti2PTe2 also holds potential for advanced display technologies and solar heating reduction. We believe this study will inspire further research, expanding the material’s application potential beyond traditional boundarie
dc.identifier.citationMia, M. H., Mst A. Khatun, and M. Rahman. "Ti2PTe2 chalcogenide: A comprehensive DFT study on physical properties." Next Materials 7 (2025): 100434.
dc.identifier.issn29498228
dc.identifier.urihttp://dspace.uttarauniversity.edu.bd:4000/handle/123456789/1364
dc.language.isoen_US
dc.publisherNext Materials
dc.subjectTi₂PTe₂ Chalcogenide
dc.subjectTransition Metal Chalcogenide (TMC)
dc.subjectFirst-Principles Calculations
dc.subjectPhysical Properties of Materials
dc.subjectElectronic Structure Analysis
dc.titleTi2PTe2 chalcogenide: A comprehensive DFT study on physical properties
dc.typeArticle

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