直接观测单层石墨烯中的 Floquet-Bloch 态

Dongsung Choi, Masataka Mogi, Umberto De Giovannini, Doron Azoury, Baiqing Lv, Yifan Su, Hannes Hübener, Angel Rubio, Nuh Gedik
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摘要

Floquet 工程是一种通过周期性驱动来操纵物质量子相的新方法[1, 2]。从光子系统[3] 到超冷原子的光学晶格[4, 5],它已在各种平台上得到成功应用。在固体中,光可以作为周期性驱动力来实现相干光-物质相互作用。这导致了布洛奇电子与光子的杂化,产生了被称为 Floquet-Blochstates 的复制带。在拓扑绝缘体中直接观测到弗洛克-布洛赫态之后 [6],人们又在其他一些实验中看到了它们的表现形式 [7-14]。通过利用弗洛克-布洛赫态来设计电子能带结构,人们预测会发生各种奇异的相变[15-22]。要实现这些相变,就必须更好地理解不同材料中 Floquet-Bloch 态的性质。然而,对这些态的直接能量和动量分辨观测仍然仅限于少数几个材料系统 [6,10,14,23,24]。在这里,我们报告了在单层外延石墨烯中对 Floquet-Bloch 状态的直接观测,石墨烯是第一个被提议用于 Floquet 工程的材料平台 [15]。通过使用中红外(mid-IR)泵激发的时间和角度分辨光发射光谱(trARPES),我们探测到了狄拉克锥的复制品。这些复制带的泵浦极化依赖性明确显示,它们源于弗洛克-布洛赫态与光子压制的无自由电子类光辐射最终态(称为沃尔科夫态)之间的散射。除了石墨烯之外,我们的方法还有可能用于直接观察其他体系中的弗洛克-布洛赫态,为在各种量子材料中开展弗洛克工程铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Direct observation of Floquet-Bloch states in monolayer graphene
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 energy and momentum resolved observation of these states is still limited to only few material systems [6, 10, 14, 23, 24]. Here, we report direct observation of Floquet-Bloch states in monolayer epitaxial graphene which was the first proposed material platform [15] for Floquet engineering. By using time- and angle-resolved photoemission spectroscopy (trARPES) with mid-infrared (mid-IR) pump excitation, we detected replicas of the Dirac cone. Pump polarization dependence of these replica bands unequivocally shows that they originate from the scattering between Floquet-Bloch states and photon-dressed free-electron-like photoemission final states, called Volkov states. Beyond graphene, our method can potentially be used to directly observe Floquet-Bloch states in other systems paving the way for Floquet engineering in a wide range of quantum materials.
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