Ultrafast and Strong-Field Physics in Graphene-Like Crystals: Bloch Band Topology and High-Harmonic Generation
Hamed Koochaki Kelardeh

TL;DR
This paper develops a theoretical framework to study how strong laser fields interact with 2D materials, revealing topological effects in high-harmonic generation and electron dynamics, with implications for ultrafast optoelectronics and quantum technologies.
Contribution
It introduces a novel model linking Bloch band topology and symmetry breaking to high-harmonic generation in 2D materials under strong fields, enabling all-optical band structure reconstruction.
Findings
Manifestation of band topology in HHG spectra
Observation of anomalous and chiral velocities
Ultrafast valley polarization induced by chiral gauge fields
Abstract
The emerging possibilities to steer and control electronic motion on subcycle time scales with strong electric fields enable studying the nonperturbative optical response and Bloch bands' topological properties, originated from Berry's trilogy: connection, curvature, and phase. This letter introduces a theoretical framework for the nonperturbative electron dynamics in two-dimensional (2D) crystalline solids induced by the few-cycle and strong-field optical lasers. In the presented model, the expression associated with the Bloch band topology and broken crystal symmetry merges self-consistently in the system observables such as High Harmonic Generation (HHG). This singles out our work from recent HHG calculations from the strongly-driven systems. Concisely, in our theoretical experiment on 2D materials in the strong-field optical regime, we show that Bloch band topology and broken…
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Taxonomy
TopicsMechanical and Optical Resonators · Photonic and Optical Devices · Advanced Fiber Laser Technologies
