Time and Momentum Resolved Tunneling Spectroscopy of Floquet dynamics
Lucas Q. Silveira, Adrian E. Feiguin
Abstract
Periodically driven quantum systems provide a powerful route to engineer novel states of matter by controlling their effective Hamiltonians through external fields. However, most treatments are usually simplified by considering the high-frequency limit, and do not account for the processes taking place in the transient regime during the onset of the drive. In this work, we introduce a time and momentum resolved tunneling spectroscopy protocol to probe the instantaneous energy spectrum of Floquet-driven systems beyond the high-frequency regime, capturing both emergent effects and non-adiabatic phenomena without requiring explicit reconstruction of the full time-dependent Green's function. We benchmark the method on driven non-interacting fermionic models, and then generalize the approach to strongly correlated systems with the aid of time-dependent density matrix renormalization group techniques. We also provide a microscopic description to the emergence of in-gap states under resonant driving, and briefly explore its finite temperature analog.
Create a lesson
Related papers
Exact and fast series expansions for quantum models with long-range interactions
Antonia Duft, Patrick Adelhardt, Jan Alexander Koziol et al.
Electronic correlations shape the low-energy optical response of the kagome antiferromagnets Mn3Sn and Mn3Ge
R. Mathew Roy, Bo Tai, Maxim Wenzel et al.
Orbital-Induced Peierls Transitions: How Orbitals Orchestrate Lattice Instability
T. Mizokawa, S. V. Streltsov
Optical investigation of the electronic structure of a ferromagnetic Weyl semimetal CeAlSi
Shin-ichi Kimura, Yue Pan, Hiroshi Watanabe et al.
Assessing the Reliability of Anomalous Hall Conductivity Extraction in GdAlSi
Anil Kumar, Debapratim Pal, Sudhan Koirala et al.
What does "instant thermalization" in large-q SYK models mean?
Alexander Osterkorn, Jan C. Louw