Nanoscale engineering and dynamical stabilization of mesoscopic spin textures
arXiv:2310.05635 · doi:10.1126/sciadv.adn9021
Abstract
Thermalization phenomena, while ubiquitous in quantum systems, have traditionally been viewed as obstacles to be mitigated. In this study, we demonstrate the ability, instead, to harness thermalization to dynamically engineer and stabilize structured quantum states in a mesoscopically large ensemble of spins. Specifically, we showcase the capacity to generate, control, stabilize, and read out 'shell-like' spin texture with interacting nuclear spins in diamond, wherein spins are polarized oppositely on either side of a critical radius. The texture spans several nanometers and encompasses many hundred spins. We capitalize on the thermalization process to impose a quasi-equilibrium upon the generated texture; as a result, it is highly stable, immune to spin diffusion, and endures over multiple-minute long periods -- over a million times longer than the intrinsic interaction scale of the spins. Additionally, the texture is created and interrogated without locally controlling or probing the nuclear spins. These features are accomplished using an electron spin as a nanoscale injector of spin polarization, and employing it as a source of spatially varying dissipation, allowing for serial readout of the emergent spin texture. Long-time stabilization is achieved via prethermalization to a Floquet-induced Hamiltonian under the electronic gradient field. Our work presents a new approach to robust nanoscale spin state engineering and paves the way for new applications in quantum simulation, quantum information science, and nanoscale imaging.
8 + 32 pages
References in corpus (68)
- Many-Body Physics with Ultracold Gases
- Thermalization and its mechanism for generic isolated quantum systems
- Efficient classical simulation of slightly entangled quantum computations
- From Quantum Chaos and Eigenstate Thermalization to Statistical Mechanics and Thermodynamics
- Many-body localization, thermalization, and entanglement
- Efficient simulation of one-dimensional quantum many-body systems
- Real time evolution using the density matrix renormalization group
- Universal High-Frequency Behavior of Periodically Driven Systems: from Dynamical Stabilization to Floquet Engineering
- Atomic quantum gases in periodically driven optical lattices
- Quantum thermalization through entanglement in an isolated many-body system
- Relaxation and Pre-thermalization in an Isolated Quantum System
- Open Quantum Systems. An Introduction
- Time-dependent variational principle for quantum lattices
- Unifying time evolution and optimization with matrix product states
- Concepts and methods in the theory of open quantum systems
- Storing quantum information for 30 seconds in a nanoelectronic device
- Eigenstate Thermalization Hypothesis
- Equilibrium states of generic quantum systems subject to periodic driving
- Hyperfine interaction in a quantum dot: Non-Markovian electron spin dynamics
- Exponentially slow heating in periodically driven many-body systems
- Temperature and magnetic field dependent longitudinal spin relaxation in nitrogen-vacancy ensembles in diamond
- Effective Hamiltonians, prethermalization and slow energy absorption in periodically driven many-body systems
- Spin diffusion from an inhomogeneous quench in an integrable system
- Atomic-scale imaging of a 27-nuclear-spin cluster using a single-spin quantum sensor
- Quenching Spin Decoherence in Diamond through Spin Bath Polarization
- Negative Absolute Temperature for Motional Degrees of Freedom
- Stark many-body localization
- Quantum gas microscopy of Kardar-Parisi-Zhang superdiffusion
- From Bloch Oscillations to Many Body Localization in Clean Interacting Systems
- Open Quantum Dynamics: Complete Positivity and Entanglement
- Dynamical Generation of Noiseless Quantum Subsystems
- Orientation independent room-temperature optical 13C hyperpolarization in powdered diamond
- Quantum dynamics of thermalizing systems
- Observing emergent hydrodynamics in a long-range quantum magnet
- Observation of Floquet prethermalization in dipolar spin chains
- Long-term data storage in diamond
- Dynamics of magnetization at infinite temperature in a Heisenberg spin chain
- Donor spins in silicon for quantum technologies
- Emergent hydrodynamics in a strongly interacting dipolar spin ensemble
- Classical Prethermal Phases of Matter
- Room-temperature control and electrical readout of individual nitrogen-vacancy nuclear spins
- Quantum and classical Floquet prethermalization
- Open source Matrix Product States: Opening ways to simulate entangled many-body quantum systems in one dimension
- Enhanced dynamic nuclear polarization via swept microwave frequency combs
- Floquet Phases of Matter via Classical Prethermalization
- Hyperpolarized relaxometry based nuclear T1 noise spectroscopy in hybrid diamond quantum registers
- Combining Dynamical Quantum Typicality and Numerical Linked Cluster Expansions
- Observation of a critical prethermal discrete time crystal created by two-frequency driving
- Emergence of fluctuating hydrodynamics in chaotic quantum systems
- Canonical local algorithms for spin systems: Heat Bath and Hasting's methods
- Floquet-engineered quantum state manipulation in a noisy qubit
- Controllable freezing of the nuclear spin bath in a single-atom spin qubit
- High-Field Magnetometry with Hyperpolarized Nuclear Spins
- Time-evolution of local information: thermalization dynamics of local observables
- Thermalization and Prethermalization in Periodically Kicked Quantum Spin Chains
- Bounds on Energy Absorption and Prethermalization in Quantum Systems with Long-Range Interactions
- Prethermalization and Thermalization in Periodically-Driven Many-Body Systems away from the High-Frequency Limit
- Spatial Imaging of Magnetically Patterned Nuclear Spins in GaAs
- Imprinting spatial helicity structure of vector vortex beam on spin texture in semiconductors
- Efficient Large-Scale Many-Body Quantum Dynamics via Local-Information Time Evolution
- Exploiting disorder to probe spin and energy hydrodynamics
- Detection and characterization of Many-Body Localization in Central Spin Models
- Detection and modeling of hole capture by single point defects under variable electric fields
- Nuclear spin diffusion in the central spin system of a GaAs/AlGaAs quantum dot
- Electron induced nanoscale nuclear spin relaxation probed by hyperpolarization injection
- Chaos and thermalization in small quantum systems
- Nanometer-Scale Nuclear Magnetic Resonance Diffraction with Sub-Ångstrom Precision
- Optically-patterned nuclear doughnuts in GaAs/MnAs heterostructures