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All-optical dissipative discrete time crystals

Physics

All-optical dissipative discrete time crystals

H. Taheri, A. B. Matsko, et al.

Explore the groundbreaking discovery of discrete time crystals in a Kerr-nonlinear optical microcavity, as researched by Hossein Taheri, Andrey B. Matsko, Lute Maleki, and Krzysztof Sacha. This chip-scale, room-temperature system unveils exciting possibilities for real-world applications and intricate phase transitions.... show more
Abstract
Time crystals are periodic states exhibiting spontaneous symmetry breaking in either time-independent or periodically-driven quantum many-body systems. Spontaneous modification of discrete time-translation symmetry in periodically-forced physical systems can create a discrete time crystal (DTC) constituting a state of matter possessing properties like temporal rigid long-range order and coherence, which are inherently desirable for quantum computing and information processing. Despite their appeal, experimental demonstrations of DTCs are scarce and significant aspects of their behavior remain unexplored. Here, we report the experimental observation and theoretical investigation of DTCs in a Kerr-nonlinear optical microcavity. Empowered by the self-injection locking of two independent lasers with arbitrarily large frequency separation simultaneously to two same-family cavity modes and a dissipative Kerr soliton, this versatile platform enables realizing long-awaited phenomena such as defect-carrying DTCs and phase transitions. Combined with monolithic micro-fabrication, this room-temperature system paves the way for chip-scale time crystals supporting real-world applications outside sophisticated laboratories.
Publisher
Nature Communications
Published On
Feb 14, 2022
Authors
Hossein Taheri, Andrey B. Matsko, Lute Maleki, Krzysztof Sacha
Tags
discrete time crystals
Kerr-nonlinear optics
dissipative Kerr soliton
laser self-injection locking
defect-carrying DTCs
phase transitions
microcavity
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