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Topological Quantum Phase Transition in 5$d$ Transition Metal Oxide Na$_2$IrO$_3$

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arxiv 1201.5929 v2 pith:VBAEV5OH submitted 2012-01-28 cond-mat.mtrl-sci cond-mat.str-el

classification cond-mat.mtrl-scicond-mat.str-el
keywords transitionphasetopologicalmetaloxidequantumstrongaddition
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abstract

We predict a quantum phase transition from normal to topological insulators in the 5$d$ transition metal oxide Na$_2$IrO$_3$, where the transition can be driven by the change of the long-range hopping and trigonal crystal field terms. From the first-principles-derived tight-binding Hamiltonian we determine the phase boundary through the parity analysis. In addition, our first-principles calculations for Na$_2$IrO$_3$ model structures show that the interlayer distance can be an important parameter for the existence of a three-dimensional strong topological insulator phase. Na$_2$IrO$_3$ is suggested to be a candidate material which can have both a nontrivial topology of bands and strong electron correlations.

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  1. The Dirac nodal line network in non-symmorphic rutile semimetal RuO$_2$

    cond-mat.mes-hall 2019-08 reject novelty 5.0 of 10

    Micro-ARPES resolves two predicted Dirac nodal lines in RuO2 and reveals a third band crossing along XR that anchors a flat-band surface state.

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