Programmable quantum simulations of bosonic systems with trapped ions
arXiv:2207.13653 · doi:10.1103/PhysRevLett.131.033604
Abstract
Trapped atomic ion crystals are a leading platform for quantum simulations of spin systems, with programmable and long-range spin-spin interactions mediated by excitations of phonons in the crystal. We describe a complementary approach for quantum simulations of bosonic systems using phonons in trapped-ion crystals, here mediated by excitations of the trapped ion spins. The scheme features a high degree of programability over a dense graph of bosonic couplings and is suitable for hard problems such as boson sampling and simulations of long range bosonic and spin-boson Hamiltonians.
References in corpus (21)
- Quantum phase transition from a superfluid to a Mott insulator in a gas of ultracold atoms
- Quantum computational advantage using photons
- Quantum phase transitions of light
- Boson sampling with 20 input photons in 60-mode interferometers at state spaces
- Tools for quantum simulation with ultracold atoms in optical lattices
- Phase-Programmable Gaussian Boson Sampling Using Stimulated Squeezed Light
- Experimental Test of Quantum Jarzynski Equality with a Trapped Ion System
- Scaling and Suppression of Anomalous Quantum Decoherence in Ion Traps
- Experimental Scattershot Boson Sampling
- Trapped ion quantum computation with transverse phonon modes
- Emergence of coherence and the dynamics of quantum phase transitions
- Large Scale Quantum Computation in an Anharmonic Linear Ion Trap
- On the phase transition of light in cavity QED lattices
- Tweezer-programmable 2D quantum walks in a Hubbard-regime lattice
- Quantum phases of interacting phonons in ion traps
- -body interactions between trapped ion qubits via spin-dependent squeezing
- Demonstration of three- and four-body interactions between trapped-ion spins
- A proposal for a scalable universal bosonic simulator using individually trapped ions
- Engineering dynamically decoupled quantum simulations with trapped ions
- Localization of phonons in ion traps with controlled quantum disorder
- Threshold detection statistics of bosonic states
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- Quantum Computing Universal Thermalization Dynamics in a (2+1)D Lattice Gauge Theory
- Nanometer-Scale Nuclear Magnetic Resonance Diffraction with Sub-Ångstrom Precision
- Synthetic gauge theories based on parametric excitations of trapped ions
- Quantum Physics in Connected Worlds
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- Synthetic high angular momentum spin dynamics in a microwave oscillator
- Coupled Lindblad pseudomode theory for simulating open quantum systems
- Accelerating two-dimensional electronic spectroscopy simulations with a probe qubit protocol
- Inherent quantum resources in stationary spin chains
- Qubit-environment entanglement in time-dependent pure dephasing
- Chemical potential and variable number of particles control the quantum state: Quantum oscillators as a showcase
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- Experimental measurement of quantum first-passage-time distributions
- Cancellation of phonon hopping in trapped ions by modulation of the trap potential
- A Non-Convex Optimization Strategy for Computing Convex-Roof Entanglement
- A method of an on-demand beamsplitter for trapped-ion quantum computers
- Quantum criticality in sub-Ohmic systems with three competing terms: beyond conventional spin-boson physics
- Improving adiabatic quantum factorization via chopped random-basis optimization
- Geometrical frustration, power law tunneling and non-local gauge fields from scattered light