Hexagonal InOI monolayer: a 2D phase-change material combining topological insulator states and piezoelectricity

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Wan, Wenhui, Liu, Xinyue, Ge, Yanfeng, Li, Ziqang, Liu, Yong
Format: Preprint
Veröffentlicht: 2025
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866911229811884032
author Wan, Wenhui
Liu, Xinyue
Ge, Yanfeng
Li, Ziqang
Liu, Yong
author_facet Wan, Wenhui
Liu, Xinyue
Ge, Yanfeng
Li, Ziqang
Liu, Yong
contents Two-dimensional (2D) phase-change materials (PCMs) with moderate transition barriers and distinctly contrasting properties are highly desirable for multifunctional devices, yet such systems remain scarce. Using first-principles calculations, we propose a hexagonal InOI monolayer as a promising 2D PCM. This material exhibits two distinct polymorphs: an energetically favorable T$^{\prime}$ phase and a metastable T phase, differentiated by iodine atom positions. The T$^{\prime}$-to-T structural phase transition features a moderate energy barrier $E_b$ of 72.1 meV per formula unit, facilitating reversible switching. Notably, strain engineering tailors the electronic transition, inducing either a metal-to-topological-insulator or a metal-to-normal-insulator transformation. Additionally, this phase transition modulates the piezoelectric response and shifts optical absorption from the infrared to the visible range. These multifunctional properties make 2D hexagonal InOI highly promising for applications in non-volatile memory, low-contact-resistance spintronics, and optical switching devices.
format Preprint
id arxiv_https___arxiv_org_abs_2510_21527
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Hexagonal InOI monolayer: a 2D phase-change material combining topological insulator states and piezoelectricity
Wan, Wenhui
Liu, Xinyue
Ge, Yanfeng
Li, Ziqang
Liu, Yong
Materials Science
Two-dimensional (2D) phase-change materials (PCMs) with moderate transition barriers and distinctly contrasting properties are highly desirable for multifunctional devices, yet such systems remain scarce. Using first-principles calculations, we propose a hexagonal InOI monolayer as a promising 2D PCM. This material exhibits two distinct polymorphs: an energetically favorable T$^{\prime}$ phase and a metastable T phase, differentiated by iodine atom positions. The T$^{\prime}$-to-T structural phase transition features a moderate energy barrier $E_b$ of 72.1 meV per formula unit, facilitating reversible switching. Notably, strain engineering tailors the electronic transition, inducing either a metal-to-topological-insulator or a metal-to-normal-insulator transformation. Additionally, this phase transition modulates the piezoelectric response and shifts optical absorption from the infrared to the visible range. These multifunctional properties make 2D hexagonal InOI highly promising for applications in non-volatile memory, low-contact-resistance spintronics, and optical switching devices.
title Hexagonal InOI monolayer: a 2D phase-change material combining topological insulator states and piezoelectricity
topic Materials Science
url https://arxiv.org/abs/2510.21527