Controlling discrete time crystals via single-site operations in zero-field diamond quantum simulators
arXiv:2412.07400 · doi:10.1103/PhysRevB.111.144311
Abstract
Discrete time crystals (DTCs) have emerged as novel nonequilibrium phases of matter that spontaneously break discrete time-translation symmetry in periodically driven systems. Rigorous experimental validation of DTCs, which requires highly controllable quantum simulators, has stimulated extensive research across diverse fields in condensed matter physics and quantum information technologies. Among these advances, DTCs were demonstrated in a hybrid spin register within diamond, comprising a processor spin and surrounding memory spins. However, in conventional strategies involving a bias magnetic field, the field application effectively restricts the controllability of the processor spin. This limitation can be a significant barrier to the next goal of DTCs: achieving multifunctionality through enhanced local controllability. In this study, we theoretically propose multiple DTC protocols through the design of specific single-site control within the entire system. To this end, we consider a concrete model of a diamond-based quantum simulator operating without a bias magnetic field, thereby eliminating the restrictions on the processor spin. Our findings demonstrate that single-site operations enable access to DTCs with multiple distinct features in terms of periodicity and lifetime. Therefore, this approach provides a promising platform for creating diverse DTCs induced by single-site operations.
16 pages, 3 figures
References in corpus (82)
- Quantum sensing
- Thermalization and its mechanism for generic isolated quantum systems
- Probing many-body dynamics on a 51-atom quantum simulator
- Many body localization and thermalization in quantum statistical mechanics
- Localization of interacting fermions at high temperature
- Many-body localization, thermalization, and entanglement
- The many-body localization phase transition
- Heralded entanglement between solid-state qubits separated by 3 meters
- Observation of a Discrete Time Crystal
- Many-body localization edge in the random-field Heisenberg chain
- Observation of discrete time-crystalline order in a disordered dipolar many-body system
- Quantum many-body scars
- Floquet Time Crystals
- Phenomenology of fully many-body-localized systems
- A phenomenology of certain many-body-localized systems
- Local conservation laws and the structure of the many-body localized states
- On the phase structure of driven quantum systems
- High-fidelity projective readout of a solid-state spin quantum register
- Realization of a multi-node quantum network of remote solid-state qubits
- Quantum error correction in a solid-state hybrid spin register
- Discrete time crystals: rigidity, criticality, and realizations
- How to Enhance Dephasing Time in Superconducting Qubits
- Deterministic delivery of remote entanglement on a quantum network
- Quantum Many-Body Scars and Weak Breaking of Ergodicity
- Breakdown of thermalization in finite one-dimensional systems
- Thermalization and prethermalization in isolated quantum systems: a theoretical overview
- Quantum Many-Body Scars and Hilbert Space Fragmentation: A Review of Exact Results
- A 10-qubit solid-state spin register with quantum memory up to one minute
- Universal control and error correction in multi-qubit spin registers in diamond
- QuSpin: a Python Package for Dynamics and Exact Diagonalisation of Quantum Many Body Systems part I: spin chains
- Decoherence-protected quantum gates for a hybrid solid-state spin register
- Observation of Time-Crystalline Eigenstate Order on a Quantum Processor
- Detection and control of individual nuclear spins using a weakly coupled electron spin
- Absolute Stability and Spatiotemporal Long-Range Order in Floquet systems
- One-second coherence for a single electron spin coupled to a multi-qubit nuclear-spin environment
- Quantum networks based on color centers in diamond
- Observation of Discrete-Time-Crystal Signatures in an Ordered Dipolar Many-Body System
- Atomic-scale imaging of a 27-nuclear-spin cluster using a single-spin quantum sensor
- Pre-thermal phases of matter protected by time-translation symmetry
- Repeated quantum error correction on a continuously encoded qubit by real-time feedback
- Quantum Many-Body Scars: A Quasiparticle Perspective
- Fault-tolerant operation of a logical qubit in a diamond quantum processor
- Robust dynamical decoupling
- Observation of a prethermal discrete time crystal
- Sensing distant nuclear spins with a single electron spin
- Observation of time quasicrystal and its transition to superfluid time crystal
- Observation of a many-body-localized discrete time crystal with a programmable spin-based quantum simulator
- Colloquium: Quantum and Classical Discrete Time Crystals
- Unified structure for exact towers of scar states in the AKLT and other models
- Temporal order in periodically driven spins in star-shaped clusters
- Quantum metrology enhanced by repetitive quantum error correction
- Challenges to observation of many-body localization
- High fidelity transfer and storage of photon states in a single nuclear spin
- Many-Body Localization in the Age of Classical Computing
- Many-body physics in the NISQ era: quantum programming a discrete time crystal
- Quaternion, harmonic oscillator, and high-dimensional topological states
- Long-Range Prethermal Phases of Nonequilibrium Matter
- P NMR study of discrete time-crystalline signatures in an ordered crystal of ammonium dihydrogen phosphate
- Prethermalization without temperature
- Robustness of dynamical decoupling sequences
- Defining Time Crystals via Representation Theory
- Coherence and entanglement of inherently long-lived spin pairs in diamond
- Observation of a critical prethermal discrete time crystal created by two-frequency driving
- Probing quantum thermalization of a disordered dipolar spin ensemble with discrete time-crystalline order
- Mapping a 50-spin-qubit network through correlated sensing
- Floquet time-crystals as sensors of AC fields
- Quantum Fourier transform for quantum sensing
- Randomisation of Pulse Phases for Unambiguous and Robust Quantum Sensing
- Zero- and Low-Field Sensing with Nitrogen Vacancy Centers
- Universal dynamical decoupling of multiqubit states from environment
- Geometric spin echo under zero field
- Discrete Time Crystal Phase as a Resource for Quantum Enhanced Sensing
- Deep learning enhanced individual nuclear-spin detection
- Chimera Time-Crystalline order in quantum spin networks
- Low field nano-NMR via three-level system control
- Dynamical decoupling of a geometric qubit
- High-frequency Expansion for Floquet Prethermal Phases with Emergent Symmetries: Application to Time Crystals and Floquet Engineering
- Absorption-based Quantum Communication with NV centres
- Time-crystalline behavior in central-spin models with Heisenberg interactions
- Phased Geometric Controls of V-Shaped Three-Level System for Zero-field Quantum Sensing
- A metronome spin stabilizes time-crystalline dynamics
- Time crystal embodies chimeralike state in periodically driven quantum spin system