Quantum Energy Teleportation between Spin Particles in a Gibbs State
arXiv:1305.5853 · doi:10.1088/1751-8113/46/45/455304
Abstract
Energy in a multipartite quantum system appears from an operational perspective to be distributed to some extent non-locally because of correlations extant among the system's components. This non-locality allows users to transfer, in effect, locally accessible energy between sites of different system components by LOCC (local operations and classical communication). Quantum energy teleportation is a three-step LOCC protocol, accomplished without an external energy carrier, for effectively transferring energy between two physically separated, but correlated, sites. We apply this LOCC teleportation protocol to a model Heisenberg spin particle pair initially in a quantum thermal Gibbs state, making temperature an explicit parameter. We find in this setting that energy teleportation is possible at any temperature, even at temperatures above the threshold where the particles' entanglement vanishes. This shows for Gibbs spin states that entanglement is not fundamentally necessary for energy teleportation; correlation other than entanglement can suffice. Dissonance---quantum correlation in separable states---is in this regard shown to be a quantum resource for energy teleportation, more dissonance being consistently associated with greater energy yield. We compare energy teleportation from particle A to B in Gibbs states with direct local energy extraction by a general quantum operation on B and find a temperature threshold below which energy extraction by a local operation is impossible. This threshold delineates essentially two regimes: a high temperature regime where entanglement vanishes and the teleportation generated by other quantum correlations yields only vanishingly little energy relative to local extraction and a second low-temperature teleportation regime where energy is available at B only by teleportation.
References in corpus (12)
- Quantum discord and the power of one qubit
- Robustness of quantum discord to sudden death
- Second Law of Thermodynamics with Discrete Quantum Feedback Control
- Interpreting quantum discord through quantum state merging
- Operational interpretations of quantum discord
- Linking Quantum Discord to Entanglement in a Measurement
- All non-classical correlations can be activated into distillable entanglement
- Quantum discord for two-qubit X states: Analytical formula with very small worst-case error
- Quantum Measurement Information as a key to Energy Release from Local Vacuums
- Quantum Energy Teleportation in Spin Chain Systems
- Quantum discord as a resource in quantum communication
- A Protocol for Quantum Energy Distribution
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- Thermodynamic Analysis of Algorithmic Cooling Protocols: Efficiency Metrics and Improved Designs
- Controlled generation of mixed spatial qudits with arbitrary degree of purity
- Strong Local Passivity in Unconventional Scenarios: A New Protocol for Amplified Quantum Energy Teleportation