Resolving the phase of a Dirac topological state via interferometric photoemission

Fuente: arXiv
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Main Authors: Gvishi, Shiri, Sidilkover, Ittai, Rosenstein, Shaked, Levin, Nir Hen, Peled, Adi, Pasternak, Omer, Rotundu, Costel R., Biran, Ido, Gorfman, Semën, Amer, Naaman, Soifer, Hadas
Format: Preprint
Published: 2025
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author Gvishi, Shiri
Sidilkover, Ittai
Rosenstein, Shaked
Levin, Nir Hen
Peled, Adi
Pasternak, Omer
Rotundu, Costel R.
Biran, Ido
Gorfman, Semën
Amer, Naaman
Soifer, Hadas
author_facet Gvishi, Shiri
Sidilkover, Ittai
Rosenstein, Shaked
Levin, Nir Hen
Peled, Adi
Pasternak, Omer
Rotundu, Costel R.
Biran, Ido
Gorfman, Semën
Amer, Naaman
Soifer, Hadas
contents The electronic wavefunction is at the heart of physical phenomena, defining the frontiers of quantum materials research. While the amplitude of the electron wavefunction in crystals can be measured with state-of-the-art probes in unprecedented resolution, its phase has remained largely inaccessible, obscuring rich electronic information. Here we develop a quantum-path electron interferometer based on time- and angle-resolved photoemission spectroscopy, that enables the reconstruction of the phase of electronic states in quantum materials - with energy and momentum resolution. We demonstrate the scheme by resolving the phase along the Dirac electronic band of a prototypical topological insulator and observe a resonance-associated phase jump as well as a momentum and phase synchronized inversion revealing the helicity of the Dirac cone. We show the interferometer can be optically controlled by the polarization of the absorbed light, allowing a differential measurement of the phase - a crucial component for extracting phase information from an interferogram. This photo-electron-interferometer is a purely experimental scheme and does not rely on any specific theoretical model. It can be extended to a variety of materials, opening up the phase dimension in quantum materials research.
format Preprint
id arxiv_https___arxiv_org_abs_2511_09560
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Resolving the phase of a Dirac topological state via interferometric photoemission
Gvishi, Shiri
Sidilkover, Ittai
Rosenstein, Shaked
Levin, Nir Hen
Peled, Adi
Pasternak, Omer
Rotundu, Costel R.
Biran, Ido
Gorfman, Semën
Amer, Naaman
Soifer, Hadas
Mesoscale and Nanoscale Physics
Materials Science
Quantum Physics
The electronic wavefunction is at the heart of physical phenomena, defining the frontiers of quantum materials research. While the amplitude of the electron wavefunction in crystals can be measured with state-of-the-art probes in unprecedented resolution, its phase has remained largely inaccessible, obscuring rich electronic information. Here we develop a quantum-path electron interferometer based on time- and angle-resolved photoemission spectroscopy, that enables the reconstruction of the phase of electronic states in quantum materials - with energy and momentum resolution. We demonstrate the scheme by resolving the phase along the Dirac electronic band of a prototypical topological insulator and observe a resonance-associated phase jump as well as a momentum and phase synchronized inversion revealing the helicity of the Dirac cone. We show the interferometer can be optically controlled by the polarization of the absorbed light, allowing a differential measurement of the phase - a crucial component for extracting phase information from an interferogram. This photo-electron-interferometer is a purely experimental scheme and does not rely on any specific theoretical model. It can be extended to a variety of materials, opening up the phase dimension in quantum materials research.
title Resolving the phase of a Dirac topological state via interferometric photoemission
topic Mesoscale and Nanoscale Physics
Materials Science
Quantum Physics
url https://arxiv.org/abs/2511.09560