Sensing with discrete time crystals

Fuente: arXiv
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Main Authors: Moon, Leo Joon Il, Schindler, Paul M., Smith, Ryan J., Druga, Emanuel, Zhang, Zhuo-Rui, Bukov, Marin, Ajoy, Ashok
Format: Preprint
Published: 2024
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_version_ 1866910224075456512
author Moon, Leo Joon Il
Schindler, Paul M.
Smith, Ryan J.
Druga, Emanuel
Zhang, Zhuo-Rui
Bukov, Marin
Ajoy, Ashok
author_facet Moon, Leo Joon Il
Schindler, Paul M.
Smith, Ryan J.
Druga, Emanuel
Zhang, Zhuo-Rui
Bukov, Marin
Ajoy, Ashok
contents Prethermal discrete time crystals (PDTCs) are a nonequilibrium state of matter characterized by long-range spatiotemporal order, and exhibiting a subharmonic response stabilized by many-body interactions under periodic driving. The inherent robustness of time crystalline order to perturbations in the drive protocol makes DTCs promising for applications in quantum technologies. We exploit the susceptibility of PDTC order to deviations in its order parameter to devise highly frequency-selective quantum sensors for time-varying (AC) magnetic fields in a system of strongly-driven, dipolar-coupled 13C nuclear spins in diamond. Integrating a time-varying AC field into the PDTC allows us to exponentially increase its lifetime, with improvements of up to three orders of magnitude (44,204 cycles), and results in a strong resonant response in the time crystalline order parameter. The linewidth of our sensor is limited by the PDTC lifetime alone, as strong interspin interactions help stabilize DTC order. The sensor operates in the 0.5-50kHz range - a challenging frequency regime for sensors based on atomic vapor or electronic spins - and attains a competitive sensitivity. PDTC sensors are resilient to errors in the drive protocol and sample inhomogeneities, and are agnostic to the macroscopic details of the physical platform: the underlying physical principle applies equally to superconducting qubits, neutral atoms, and trapped ions.
format Preprint
id arxiv_https___arxiv_org_abs_2410_05625
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Sensing with discrete time crystals
Moon, Leo Joon Il
Schindler, Paul M.
Smith, Ryan J.
Druga, Emanuel
Zhang, Zhuo-Rui
Bukov, Marin
Ajoy, Ashok
Quantum Physics
Statistical Mechanics
Prethermal discrete time crystals (PDTCs) are a nonequilibrium state of matter characterized by long-range spatiotemporal order, and exhibiting a subharmonic response stabilized by many-body interactions under periodic driving. The inherent robustness of time crystalline order to perturbations in the drive protocol makes DTCs promising for applications in quantum technologies. We exploit the susceptibility of PDTC order to deviations in its order parameter to devise highly frequency-selective quantum sensors for time-varying (AC) magnetic fields in a system of strongly-driven, dipolar-coupled 13C nuclear spins in diamond. Integrating a time-varying AC field into the PDTC allows us to exponentially increase its lifetime, with improvements of up to three orders of magnitude (44,204 cycles), and results in a strong resonant response in the time crystalline order parameter. The linewidth of our sensor is limited by the PDTC lifetime alone, as strong interspin interactions help stabilize DTC order. The sensor operates in the 0.5-50kHz range - a challenging frequency regime for sensors based on atomic vapor or electronic spins - and attains a competitive sensitivity. PDTC sensors are resilient to errors in the drive protocol and sample inhomogeneities, and are agnostic to the macroscopic details of the physical platform: the underlying physical principle applies equally to superconducting qubits, neutral atoms, and trapped ions.
title Sensing with discrete time crystals
topic Quantum Physics
Statistical Mechanics
url https://arxiv.org/abs/2410.05625