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Main Authors: Adams, Felix, Takeuchi, Ichiro, Ocampo, Carlos Ríos, Mo, Yifei
Format: Preprint
Published: 2026
Subjects:
Online Access:https://arxiv.org/abs/2604.27120
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author Adams, Felix
Takeuchi, Ichiro
Ocampo, Carlos Ríos
Mo, Yifei
author_facet Adams, Felix
Takeuchi, Ichiro
Ocampo, Carlos Ríos
Mo, Yifei
contents Chalcogenide phase-change materials (PCMs) are important for nonvolatile memory and reconfigurable photonic technologies. The GeTe-Sb2Te3 mixture system, commonly referred to as GST, is the most well-known PCM family, but new PCMs are needed to broaden the accessible property space while retaining fast switching. Here, we propose a thermodynamic framework, motivated by Ostwald's rule, for understanding and identifying PCM materials. Since direct modeling of phase-transition dynamics is computationally expensive, Using first-principles calculations, we systematically evaluate the energetics of ternary chalcogenide mixtures along binary-binary tie lines and their polymorphs. By comparing ground-state and metastable structures, we assess phase stability, miscibility, and the likelihood of GST-like polymorph-mediated crystallization pathways across a broad composition space. The calculations reproduce known behavior in GST and related systems and identify several promising candidate mixtures with similar features. These results provide insight into why some PCM systems are more favorable than others and establish thermodynamic polymorph screening as a practical route for future PCM discovery.
format Preprint
id arxiv_https___arxiv_org_abs_2604_27120
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle First-Principles Thermodynamic Analysis of Ternary Chalcogenide Phase Change Materials
Adams, Felix
Takeuchi, Ichiro
Ocampo, Carlos Ríos
Mo, Yifei
Materials Science
Chalcogenide phase-change materials (PCMs) are important for nonvolatile memory and reconfigurable photonic technologies. The GeTe-Sb2Te3 mixture system, commonly referred to as GST, is the most well-known PCM family, but new PCMs are needed to broaden the accessible property space while retaining fast switching. Here, we propose a thermodynamic framework, motivated by Ostwald's rule, for understanding and identifying PCM materials. Since direct modeling of phase-transition dynamics is computationally expensive, Using first-principles calculations, we systematically evaluate the energetics of ternary chalcogenide mixtures along binary-binary tie lines and their polymorphs. By comparing ground-state and metastable structures, we assess phase stability, miscibility, and the likelihood of GST-like polymorph-mediated crystallization pathways across a broad composition space. The calculations reproduce known behavior in GST and related systems and identify several promising candidate mixtures with similar features. These results provide insight into why some PCM systems are more favorable than others and establish thermodynamic polymorph screening as a practical route for future PCM discovery.
title First-Principles Thermodynamic Analysis of Ternary Chalcogenide Phase Change Materials
topic Materials Science
url https://arxiv.org/abs/2604.27120