Direct observation of Floquet-Bloch states in monolayer graphene
Dongsung Choi, Masataka Mogi, Umberto De Giovannini, Doron Azoury,, Baiqing Lv, Yifan Su, Hannes H\"ubener, Angel Rubio, Nuh Gedik

TL;DR
This study provides the first direct observation of Floquet-Bloch states in monolayer graphene using time- and angle-resolved photoemission spectroscopy, revealing their photon-induced replica bands and paving the way for Floquet engineering in quantum materials.
Contribution
It demonstrates direct energy and momentum resolved observation of Floquet-Bloch states in monolayer graphene, a key step for Floquet engineering in solid-state systems.
Findings
Detection of Dirac cone replicas in graphene
Confirmation of Floquet-Bloch states via pump polarization dependence
Potential application of method to other quantum materials
Abstract
Floquet engineering is a novel method of manipulating quantum phases of matter via periodic driving [1, 2]. It has successfully been utilized in different platforms ranging from photonic systems [3] to optical lattice of ultracold atoms [4, 5]. In solids, light can be used as the periodic drive via coherent light-matter interaction. This leads to hybridization of Bloch electrons with photons resulting in replica bands known as Floquet-Bloch states. After the direct observation of Floquet-Bloch states in a topological insulator [6], their manifestations have been seen in a number of other experiments [7-14]. By engineering the electronic band structure using Floquet-Bloch states, various exotic phase transitions have been predicted [15-22] to occur. To realize these phases, it is necessary to better understand the nature of Floquet-Bloch states in different materials. However, direct…
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Taxonomy
TopicsGraphene research and applications
