Atomic-scale imaging of emergent order at a magnetic-field-induced Lifshitz transition
Abstract
The phenomenology and radical changes seen in materials properties traversing a quantum phase transition has captivated condensed matter research over past decades. Strong electronic correlations lead to novel electronic ground states, including magnetic order, nematicity and unconventional superconductivity. Providing a microscopic model for these requires detailed knowledge of the electronic structure in the vicinity of the Fermi energy, promising a complete understanding of the physics of the quantum critical point. Here, we demonstrate such a measurement at the surface of SrRuO. Our results show that, even in zero field, the electronic structure is strongly symmetric and that a magnetic-field drives both a Lifshitz transition and induces a charge-stripe order. We track the changes of the electronic structure as a function of field via quasi-particle interference imaging at ultralow temperatures. Our results provide a complete microscopic picture of the field-induced changes of the electronic structure across the Lifshitz transition.
Keywords
Cite
@article{arxiv.2202.12351,
title = {Atomic-scale imaging of emergent order at a magnetic-field-induced Lifshitz transition},
author = {Carolina A. Marques and Luke C. Rhodes and Izidor Benedičič and Masahiro Naritsuka and Aaron B. Naden and Zhiwei Li and Alexander C. Komarek and Andrew P. Mackenzie and Peter Wahl},
journal= {arXiv preprint arXiv:2202.12351},
year = {2022}
}
Comments
replaced with published version. 8 pages, 4 figures, without supplementary (can be downloaded here: https://www.science.org/doi/suppl/10.1126/sciadv.abo7757/suppl_file/sciadv.abo7757_sm.pdf)