Scaling of tripartite entanglement at impurity quantum phase transitions
arXiv:1609.04421 · doi:10.1103/PhysRevLett.118.036102
Abstract
The emergence of a diverging length scale in many-body systems at a quantum phase transition implies that total entanglement has to reach its maximum there. In order to fully characterize this, one has to consider multipartite entanglement as, for instance, bipartite entanglement between individual particles fails to signal this effect. However, quantification of multipartite entanglement is very hard and detecting it may not be possible due to the lack of accessibility to all individual particles. For these reasons it will be more sensible to partition the system into relevant subsystems, each containing few to many spins, and study entanglement between those constituents as a coarse-grain picture of multipartite entanglement between individual particles. In impurity systems, famously exemplified by two-impurity and two-channel Kondo models, it is natural to divide the system into three parts, namely, impurities and the left and right bulks. By exploiting two tripartite entanglement measures, based on negativity, we show that at impurity quantum phase transitions the tripartite entanglement diverges and shows scaling behavior. While the critical exponents are different for each tripartite entanglement measure they both provide very similar critical exponents for the two-impurity and the two-channel Kondo models suggesting that they belong to the same universality class.
5 pages and 5 figures
References in corpus (9)
- Observation of the two-channel Kondo effect
- Monogamy Inequality in terms of Negativity for Three-Qubit States
- Multipartite entanglement in spin chains
- Multipartite Entanglement Signature of Quantum Phase Transitions
- Partial separability and entanglement criteria for multiqubit quantum states
- An order parameter for impurity systems at quantum criticality
- Single-Site Entanglement of Fermions at a Quantum Phase Transition
- Tunable Kondo physics in a carbon nanotube double quantum dot
- Genuine Multipartite Entanglement in the Cluster-Ising Model
Cited by in corpus (15)
- Review: Quantum Metrology and Sensing with Many-Body Systems
- Entanglement spectrum degeneracy and Cardy formula in 1+1 dimensional conformal field theories
- Universal tripartite entanglement in one-dimensional many-body systems
- Thermometry of Strongly Correlated Fermionic Quantum Systems using Impurity Probes
- Sequential measurements for quantum-enhanced magnetometry in spin chain probes
- Topological Multipartite Entanglement in a Fermi Liquid
- Visualizing quantum phase transitions in the XXZ model via the quantum steering ellipsoid
- Correlation-induced coherence and its use in detecting quantum phase transitions
- Global entanglement in a topological quantum phase transition
- Long-range multipartite quantum correlations and factorization in a one-dimensional spin-1/2 chain
- Order parameter for the multichannel Kondo model at quantum criticality
- System-bath entanglement of noninteracting fermionic impurities: Equilibrium, transient, and steady-state regimes
- Deterministic steady-state subradiance within a single-excitation basis
- Conditional global entanglement in a Kosterlitz-Thouless quantum phase transition
- Maximal Entanglement: Applications in Quantum Information and Particle Physics