Quantum simulator for the Ising model with electrons floating on a helium film
arXiv:0803.1093 · doi:10.1103/PhysRevLett.101.220501
Abstract
We propose a physical setup that can be used to simulate the quantum dynamics of the Ising model with present-day technology. Our scheme consists of electrons floating on superfluid helium which interact via Coulomb forces. In the limit of low temperatures, the system will stay near the ground state where its Hamiltonian is equivalent to the Ising model and thus shows phenomena such as quantum criticality. Furthermore, the proposed design could be generalized in order to study interacting field theories (e.g., ) and adiabatic quantum computers.
4 pages
References in corpus (3)
Cited by in corpus (23)
- Quantum Simulation
- Using Quantum Computers for Quantum Simulation
- Quantum simulator of an open quantum system using superconducting qubits: exciton transport in photosynthetic complexes
- Operationally accessible entanglement of one dimensional spinless fermions
- Fractional Quantum Hall Physics in Jaynes-Cummings-Hubbard Lattices
- Tensor lattice field theory with applications to the renormalization group and quantum computing
- Nonequilibrium Quantum Phase Transitions in the Ising Model
- Quantum Logic between Remote Quantum Registers
- Criticality in transport through the quantum Ising chain
- Linear-algebraic bath transformation for simulating complex open quantum systems
- Jaynes-Cummings Models with trapped electrons on liquid Helium
- Dynamical Transition for a class of integrable models coupled to a bath
- Spin-orbit couplings between distant electrons trapped individually on liquid helium
- Low-temperature environments for quantum computation and quantum simulation
- Jaynes-Cummings Models with trapped surface-state electrons in THz cavities
- Effects of Noise, Correlations and errors in the preparation of initial states in Quantum Simulations
- Transport as a sensitive indicator of quantum criticality
- Transport through a quantum critical system: A thermodynamically consistent approach
- First Study of Intersubband Absorption in Electrons on Helium under Quantizing Magnetic Fields
- Controlled-NOT gate based on the Rydberg states of surface electrons
- Measuring NISQ Gate-Based Qubit Stability Using a 1+1 Field Theory and Cycle Benchmarking
- Time-dependent variational principle for open quantum systems with artificial neural networks
- Machine-learning-inspired quantum control in many-body dynamics