Spatially-resolved electronic structure of stripe domains in IrTe through electronic structure microscopy
arXiv:2110.15194 · doi:10.1038/s42005-021-00733-x
Abstract
Phase separation in the nanometer- to micrometer-scale is characteristic for correlated materials, for example, high temperature superconductors, colossal magnetoresistance manganites, Mott insulators, etc. Resolving the electronic structure with spatially-resolved information is critical for revealing the fundamental physics of such inhomogeneous systems yet this is challenging experimentally. Here by using nanometer- and micrometer-spot angle-resolved photoemission spectroscopies (NanoARPES and MicroARPES), we reveal the spatially-resolved electronic structure in the stripe phase of IrTe. Each separated domain shows two-fold symmetric electronic structure with the mirror axis aligned along 3 equivalent directions, and 61 replicas are clearly identified. Moreover, such electronic structure inhomogeneity disappears across the stripe phase transition, suggesting that electronic phase with broken symmetry induced by the 61 modulation is directly related to the stripe phase transition of IrTe. Our work demonstrates the capability of NanoARPES and MicroARPES in elucidating the fundamental physics of phase-separated materials.
References in corpus (5)
- Mott transition in VO2 revealed by infrared spectroscopy and nano-imaging
- Observation of a uniaxial strain-induced phase transition in the 2D topological semimetal IrTe
- Devil's staircase transition of the electronic structures in CeSb
- Revealing the single electron pocket of FeSe in a single orthorhombic domain
- Dimerization-Induced Fermi-Surface Reconstruction in IrTe2