Device-independent witnesses of entanglement depth from two-body correlators
arXiv:1807.06027 · doi:10.1103/PhysRevLett.123.100507
Abstract
We consider the characterization of entanglement depth in a quantum many-body system from the device-independent perspective; i.e., certifying how many particles are genuinely entangled without relying on assumptions on the system itself nor on the measurements performed. We obtain device-independent witnesses of entanglement depth (DIWEDs) using the Bell inequalities introduced in [J. Tura et al., Science 344, 1256 (2014)] and compute their -producibility bounds. To this end, we present two complementary methods: First, a variational one, yielding a possibly optimal -producible state. Second, a certificate of optimality via a semi-definite program, based on a relaxation of the quantum marginal problem. Numerical results suggest a clear pattern on -producible bounds for large system sizes, which we then tackle analytically in the thermodynamic limit. Contrary to existing DIWEDs, the ones we present here can be effectively measured by accessing only collective measurements and second moments thereof. These technical requirements are met in current experiments, which have already been performed in the context of detecting Bell correlations in quantum many-body systems of atoms.
5 pages, 3 figures
References in corpus (16)
- Entanglement detection
- Matrix Product States, Projected Entangled Pair States, and variational renormalization group methods for quantum spin systems
- Device-independent security of quantum cryptography against collective attacks
- Nonlinear atom interferometer surpasses classical precision limit
- Quantum Simulation of Antiferromagnetic Spin Chains in an Optical Lattice
- Device-independent quantum key distribution secure against collective attacks
- Taming multiparticle entanglement
- Detecting multiparticle entanglement of Dicke states
- Multipartite entanglement in spin chains
- Permutationally invariant state reconstruction
- Semi-device-independent bounds on entanglement
- Bell correlations depth in many-body systems
- Monogamy of Bell correlations and Tsirelson's bound
- Bounding the set of classical correlations of a many-body system
- Optimization of device-independent witnesses of entanglement depth from two-body correlators
- Exploring Bell inequalities for the device-independent certification of multipartite entanglement depth
Cited by in corpus (36)
- Bounds on the capacity and power of quantum batteries
- Semidefinite programming relaxations for quantum correlations
- One- and two-axis squeezing via laser coupling in an atomic Fermi-Hubbard model
- Probing quantum correlations in many-body systems: a review of scalable methods
- One-axis twisting as a method of generating many-body Bell correlations
- Optimization of device-independent witnesses of entanglement depth from two-body correlators
- Bell correlations at Ising quantum critical points
- Bell correlations in a split two-mode-squeezed Bose-Einstein condensate
- The quantum marginal problem for symmetric states: applications to variational optimization, nonlocality and self-testing
- Entanglement marginal problems
- Exploring Bell inequalities for the device-independent certification of multipartite entanglement depth
- Accelerating many-body entanglement generation by dipolar interactions in the Bose-Hubbard model
- Quantum Compressed Sensing with Unsupervised Tensor-Network Machine Learning
- Entanglement of genuinely entangled subspaces and states: exact, approximate, and numerical results
- An approach to constructing genuinely entangled subspaces of maximal dimension
- Detecting Bell correlations in multipartite non-Gaussian spin states
- Quantum Algorithms for Inverse Participation Ratio Estimation in multi-qubit and multi-qudit systems
- Enhancing quantum state tomography via resource-efficient attention-based neural networks
- Generation of scalable many-body Bell correlations in spin chains with short-range two-body interactions
- Certificates of quantum many-body properties assisted by machine learning
- Device-independent certification of multipartite entanglement using measurements performed in randomly chosen triads
- New Genuine Multipartite Entanglement
- The Coming Decades of Quantum Simulation
- Entanglement classification and \emph{non-k}-separability certification via Greenberger-Horne-Zeilinger-class fidelity
- Robustness of non-locality in many-body open quantum systems
- Symmetric quantum states: a review of recent progress
- Bell inequalities for nonlocality depth
- Non-stabilizerness in quantum-enhanced metrological protocols
- Linear maps as sufficient criteria for entanglement depth and compatibility in many-body systems
- Witness based nonlinear detection of quantum entanglement
- Hybrid of Gradient Descent And Semidefinite Programming for Certifying Multipartite Entanglement Structure
- Testing the Structure of Multipartite Entanglement with Hardy's Nonlocality
- Entanglement Structure Certification Based on Energy-Restricted State Discrimination
- Structural physical approximation of partial transposition makes possible to distinguish SLOCC inequivalent classes of three-qubit system
- Multipartite entangled states in dipolar quantum simulators
- Entanglement witnesses for stabilizer states and subspaces beyond qubits