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Controlling structural phases of Sn through lattice engineering

  • Chandima Kasun Edirisinghe
  • , Anjali Rathore
  • , Taegeon Lee
  • , Daekwon Lee
  • , An Hsi Chen
  • , Garrett Baucom
  • , Eitan Hershkovitz
  • , Anuradha Wijesinghe
  • , Pradip Adhikari
  • , Sinchul Yeom
  • , Hong Seok Lee
  • , Hyung Kook Choi
  • , Hyunsoo Kim
  • , Mina Yoon
  • , Honggyu Kim
  • , Matthew Brahlek
  • , Heesuk Rho
  • , Joon Sue Lee*
  • *Corresponding author for this work
  • University of Tennessee
  • Jeonbuk National University
  • Oak Ridge National Laboratory
  • University of Florida
  • Missouri University of Science and Technology

Research output: Contribution to journalJournal articlepeer-review

Abstract

Topology and superconductivity, two distinct phenomena, offer unique insight into quantum properties and their applications in quantum technologies, spintronics, and sustainable energy technologies. Tin (Sn) plays a pivotal role here as an element because of its two structural phases, α-Sn exhibiting topological characteristics and β-Sn showing superconductivity. Here, we demonstrate precise control of these phases in Sn thin films using molecular beam epitaxy with systematically varied lattice parameters of the buffer layer. The Sn films exhibit either β-Sn or α-Sn phases as the buffer layer's lattice constant varies from 6.10Å to 6.48Å, spanning the range from GaSb (like InAs) to InSb. The crystal structures of α- and β-Sn films are characterized by x-ray diffraction and confirmed by Raman spectroscopy and scanning transmission electron microscopy. Atomic force microscopy validates the smooth, continuous surface morphology. Electrical transport measurements further verify the phases: resistance drop near 3.7 K for β-Sn superconductivity and Shubnikov-de Haas oscillations for α-Sn topological characteristics. Density functional theory shows that α-Sn is stable under tensile strain and β-Sn under compressive strain, aligning well with experimental findings. Hence, this study introduces a platform controlling Sn phases through lattice engineering, enabling innovative applications in quantum technologies and beyond.

Original languageEnglish
Article number024202
JournalPhysical Review Materials
Volume9
Issue number2
DOIs
StatePublished - 2025.02

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Quacquarelli Symonds(QS) Subject Topics

  • Materials Science
  • Physics & Astronomy

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