Author
Listed:
- Lingxiao Zhou
(University of Michigan)
- Bin Liu
(University of Michigan)
- Yuze Liu
(University of Michigan)
- Yang Lu
(University of Michigan)
- Qiuyang Li
(University of Michigan)
- Xin Xie
(University of Michigan)
- Nathanial Lydick
(University of Michigan)
- Ruofan Hao
(University of Michigan)
- Chenxi Liu
(University of Michigan)
- Kenji Watanabe
(National Institute for Materials Science)
- Takashi Taniguchi
(National Institute for Materials Science)
- Yu-Hsun Chou
(National Cheng Kung University
National Cheng Kung University)
- Stephen R. Forrest
(University of Michigan
University of Michigan)
- Hui Deng
(University of Michigan
University of Michigan
University of Michigan)
Abstract
Floquet engineering is a promising tool to manipulate quantum systems coherently. A well-known example is the optical Stark effect, which has been used for optical trapping of atoms and breaking time-reversal symmetry in solids. However, as a coherent nonlinear optical effect, Floquet engineering typically requires high field intensities obtained in ultrafast pulses, severely limiting its use. Here, we demonstrate using cavity engineering of the vacuum modes to achieve orders-of-magnitude enhancement of the effective Floquet field, enabling Floquet effects at an extremely low fluence of 450 photons/μm2. At higher fluences, the cavity-enhanced Floquet effects lead to 50 meV spin and valley splitting of WSe2 excitons, corresponding to an enormous time-reversal breaking, non-Maxwellian magnetic field of over 200 T. Utilizing such an optically controlled effective magnetic field, we demonstrate an ultrafast, picojoule chirality XOR gate. These results suggest that cavity-enhanced Floquet engineering may enable the creation of steady-state or quasi-equilibrium Floquet bands, strongly non-perturbative modifications of materials beyond the reach of other means, and application of Floquet engineering to a wide range of materials and applications.
Suggested Citation
Lingxiao Zhou & Bin Liu & Yuze Liu & Yang Lu & Qiuyang Li & Xin Xie & Nathanial Lydick & Ruofan Hao & Chenxi Liu & Kenji Watanabe & Takashi Taniguchi & Yu-Hsun Chou & Stephen R. Forrest & Hui Deng, 2024.
"Cavity Floquet engineering,"
Nature Communications, Nature, vol. 15(1), pages 1-7, December.
Handle:
RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-52014-0
DOI: 10.1038/s41467-024-52014-0
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