Observation of topological phenomena in a programmable lattice of 1,800 qubits
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Summary
A large-scale programmable quantum simulation is described, using a D-Wave quantum processor to simulate a two-dimensional magnetic lattice in the vicinity of a topological phase transition.
- Type
- article
- Published
- 2018-03-06
- Cited by
- 333
- References
- 37
- Access
- Open access
- OpenAlex
- https://openalex.org/W2790700887
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:52066861
Keywords
Quantum annealing, Physics, Qubit, Ising model, Thermal fluctuations
References
- Adiabatic Quantum Simulation of Quantum Chemistry
- Ordering of geometrically frustrated classical and quantum triangular Ising magnets
- Finite-temperature phase transitions in the quantum fully frustrated transverse-field Ising models
- Collapse of superconductivity in a hybrid tin–graphene Josephson junction array
- Interplay of quantum and thermal fluctuations in a frustrated magnet
- Application of a continuous time cluster algorithm to the two-dimensional random quantum Ising ferromagnet
- Experimental investigation of an eight-qubit unit cell in a superconducting optimization processor
- Historic observatory sale
- Ising models of quantum frustration
- Renormalization, vortices, and symmetry-breaking perturbations in the two-dimensional planar model
- Replica Monte Carlo simulation of spin glasses.
- Recent Progress in Quantum Simulation Using Superconducting Circuits
- Orderings of a stacked frustrated triangular system in three dimensions
- Quantum annealing with manufactured spins
- Quantum critical behavior of a three-dimensional Ising spin glass in a transverse magnetic field.
- Universal Quantum Simulators
- Two-dimensional periodic frustrated ising models in a transverse field
- Berezinskii–Kosterlitz–Thouless crossover in a trapped atomic gas
- Ordering, metastability and phase transitions in two-dimensional systems
- Architectural Considerations in the Design of a Superconducting Quantum Annealing Processor
Cited by
- High Performance Computing: 6th Latin American Conference, CARLA 2019, Turrialba, Costa Rica, September 25–27, 2019, Revised Selected Papers
- Quantum Computing in the NISQ era and beyond
- Topological order and Fermi surface reconstruction
- Resonant frequencies and spatial correlations in frustrated arrays of Josephson type nonlinear oscillators
- Theory of open quantum dynamics with hybrid noise
- Quantum Simulation of the Universal Features of the Polyakov Loop.
- Quantum neural networks to simulate many-body quantum systems
- Neural Networks and Graph Algorithms with Next-Generation Processors
- Topological phenomena explored in a programmable quantum simulation
- Topological order, emergent gauge fields, and Fermi surface reconstruction
- Spin correlations of quantum spin liquid and quadrupole-ordered states of Tb2+x Ti2−x O7+y
- Superconducting qubit circuit emulation of a vector spin-1/2
- Community Detection Across Emerging Quantum Architectures
- Power of Pausing: Advancing Understanding of Thermalization in Experimental Quantum Annealers
- Reconstructing quantum states with generative models
- VanQver: the variational and adiabatically navigated quantum eigensolver
- Network Community Detection on Small Quantum Computers
- Expressing multiagent coalition structure problems for optimisation by quantum annealing
- The Mathematics of Quantum-Enabled Applications on the D-Wave Quantum Computer
- Improving solutions by embedding larger subproblems in a D-Wave quantum annealer
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