Circularly polarized light pumping can non-trivially manipulate the momentum of topological fermions in chiral crystals like CoSi, determined by a newly proposed Floquet chirality index, potentially enabling novel optoelectronic devices.
This research paper demonstrates a novel method for significantly enhancing the Berry curvature dipole (BCD) and nonlinear Hall response in two-dimensional materials using Floquet engineering, specifically through optical driving and quench protocols.
This research paper demonstrates that bicircular light (BCL) can be used to induce a gyrotropic magnetic effect (GME) in compressed black phosphorus, offering a promising avenue for controlling and studying this phenomenon.
This thesis explores Floquet engineering as a powerful tool to manipulate and enhance interactions in driven many-body systems, particularly focusing on the role of correlations and the development of advanced Floquet methods for accurate prediction and control of system dynamics.
This article introduces a novel method for manipulating wave propagation in waveguide arrays by employing spatially non-uniform Floquet driving fields, enabling the effective transformation of tight-binding Hamiltonians and achieving unprecedented control over wave dynamics, including disorder mitigation and dynamic localization.
연속파 중적외선 레이저를 사용하여 그래핀에서 장시간 지속되는 플로케 상태를 생성하고, 이를 통해 물질의 정상 상태를 조작하는 플로케 엔지니어링의 새로운 가능성을 제시했습니다.
강력한 상호 작용 시스템에서 플로케 엔지니어링을 사용할 때 발생하는 고차 밴드 가열 문제를 이중 주파수 구동 방식을 통해 효과적으로 완화할 수 있으며, 이는 양자 컴퓨팅 및 응집 물질 물리학 분야에 중요한 의미를 지닌다.
強相関量子系のFloquetエンジニアリングにおいて、多光子共鳴による高バンド加熱は大きな課題となるが、本研究では、二周波数駆動を用いることで、この加熱を効果的に抑制できることを実証した。
Two-tone driving can effectively mitigate heating to higher energy bands in strongly driven, strongly interacting Fermi-Hubbard systems, offering a promising approach for improving ground-state coherence in Floquet engineering.
플로케 엔지니어링을 통해 초전도 큐비트에서 비등방성 횡단 상호 작용을 구현하고, 이를 활용하여 횡단 자기장 이징 체인 모델을 시뮬레이션하여 동적 상전이 현상을 관측하였다.