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Structural phase transition and electronic structure evolution in Ir1–xPtxTe2 studied by scanning tunneling microscopy

The IrTe2 transition metal dichalcogenide undergoes a series of structural and electronic phase transitions when doped with Pt. The nature of each phase and the mechanism of the phase transitions have attracted much attention. In this paper, we report scanning tunneling microscopy and spectroscopy s...

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Published in:Science bulletin (Beijing) 2015-04, Vol.60 (8), p.798-805
Main Authors: Ruan, Wei, Tang, Peizhe, Fang, Aifang, Cai, Peng, Ye, Cun, Li, Xintong, Duan, Wenhui, Wang, Nanling, Wang, Yayu
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container_title Science bulletin (Beijing)
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Tang, Peizhe
Fang, Aifang
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Duan, Wenhui
Wang, Nanling
Wang, Yayu
description The IrTe2 transition metal dichalcogenide undergoes a series of structural and electronic phase transitions when doped with Pt. The nature of each phase and the mechanism of the phase transitions have attracted much attention. In this paper, we report scanning tunneling microscopy and spectroscopy studies of Pt-doped IrTe2 with varied Pt contents. In pure IrTe2, we find that the ground state has a 1/6 superstructure, and the electronic structure is inconsistent with Fermi surface nesting-induced charge density wave order. Upon Pt doping, the crystal structure changes to a 1/5 superstructure and then to a quasi-periodic hexagonal phase. First-principles calculations show that the superstructures and electronic structures are determined by the global chemical strain and local impurity states that can be tuned systematically by Pt doping.
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source ScienceDirect Freedom Collection; Springer Online Journals
subjects Charge density wave
Chemistry/Food Science
Density functional theory
Earth Sciences
Engineering
Humanities and Social Sciences
IrTe2
Life Sciences
multidisciplinary
Physics
Scanning tunneling microscopy
Science
Science (multidisciplinary)
Transition metal dichalcogenide
title Structural phase transition and electronic structure evolution in Ir1–xPtxTe2 studied by scanning tunneling microscopy
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