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Entanglement generated by Dissipation. Christine Muschik and J. Ignacio Cirac. Max-Planck-Institut für Quantenoptik. Hanna Krauter, Kasper Jensen, Jonas Meyer Petersen and Eugene Polzik. Niels Bohr Institute, Danish Research Foundation Center for Quantum Optics (QUANTOP). Entanglement.
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Entanglement generated by Dissipation Christine Muschik and J. Ignacio Cirac Max-Planck-Institut für Quantenoptik Hanna Krauter, Kasper Jensen, Jonas Meyer Petersen and Eugene Polzik Niels Bohr Institute, Danish Research Foundation Center for Quantum Optics (QUANTOP)
Basic ingredient in most applications in the field of quantum information But: Lifetimes are usually very short Therefore: Need for much longer lifetimes! Motivation: Quantum entanglement
Basic ingredient in most applications in the field of quantum information But: Lifetimes are usually very short Therefore: Need for much longer lifetimes! Motivation: Quantum entanglement Typically: Quantum states are fragile under decoherence
Basic ingredient in most applications in the field of quantum information But: Lifetimes are usually very short Therefore: Need for much longer lifetimes! Motivation: Quantum entanglement Typically: Quantum states are fragile under decoherence Avoidance of dissipation by decoupling the system from the environment
Basic ingredient in most applications in the field of quantum information But: Lifetimes are usually very short Therefore: Need for much longer lifetimes! Quantum states are fragile under decoherence Avoidance of dissipation by decoupling the system from the environment Strict isolation! Motivation: Quantum entanglement Typically:
Motivation: New approaches Use the interaction of the system with the environment
Motivation: New approaches Use the interaction of the system with the environment Dissipation drives the system into the desired state
Use the interaction of the system with the environment Dissipation drives the system into the desired state Robust method to create extremely long-lived and robust entanglement Motivation: New approaches
Motivation: Procedure:
Motivation: Procedure: Engineer the coupling
Motivation: Procedure: Engineer the coupling Steady state = desired state
Motivation: Procedure: Engineer the coupling Steady state = desired state Arbitrary initial state
Motivation: Procedure: Engineer the coupling Steady state = desired state Arbitrary initial state
Proposals: Single trapped ion J. F. Poyatos, J. I. Cirac and P. Zoller, Phys. Rev. Lett. 77,4728 (1996) Atoms in two cavities B. Kraus and J. I. Cirac, Phys. Rev. Lett. 92, 013602 (2004) Many-body systems S. Diehl, A. Micheli, A. Kantian, B. Kraus, H.P. Büchler, P. Zoller, Nature Physics 4, 878 (2008) F. Verstraete, M.M. Wolf, J.I. Cirac, Nature Physics 5, 633 (2009) Quantum phase transitions State preparation Quantum computing Motivation: Procedure: Engineer the coupling Steady state = desired state Arbitrary initial state
Motivation: Procedure: Engineer the coupling Steady state = desired state Arbitrary initial state
Main idea: Hamiltonian:
Main idea: Hamiltonian: Master equation:
Main idea: Hamiltonian: Master equation: Unique Steady State:
magnetic fields laser Setup:
magnetic fields laser Reservoir: common modes of the electromagnetic field. Control: Laser and magnetic fields Setup:
Setup: laser
laser Setup:
laser Setup:
laser Setup:
laser Setup:
Theory: Masterequation: +undesired processes Entanglement:
Theory: Entanglement: ideal case
Theory: Entanglement: ideal case Entanglement: including undesired processes : noise rate : polarization
Theory: Two-level model Experiment: Multi-level structure Experimental realization of purely dissipation based entanglement:
Theory: Two-level model Experiment: Multi-level structure (nuclear spin I=7/2) Experimental realization of purely dissipation based entanglement:
Experimental results: EPR variance
Experimental results: Longitudinal spin EPR variance
Conclusions and Outlook: First observation of entanglement generated by dissipation
Conclusions and Outlook: First observation of entanglement generated by dissipation Entanglement was produced with macroscopic atomic ensembles, and lasted much longer than in previous experiments where entanglement was generated using standard methods.
Conclusions and Outlook: First observation of entanglement generated by dissipation Entanglement was produced with macroscopic atomic ensembles, and lasted much longer than in previous experiments where entanglement was generated using standard methods. This work paves the way towards the creation of long lived entanglement, potentially lasting for several minutes or longer.
Atoms with two-level atomic ground states, e.g. Yb 171 Conclusions and Outlook: Realization of Steady State Entanglement:
Atoms with two-level atomic ground states, e.g. Yb 171 Conclusions and Outlook: Realization of Steady State Entanglement: Increased optical depth + optical pumping
Atoms with two-level atomic ground states, e.g. Yb 171 Conclusions and Outlook: Realization of Steady State Entanglement: Increased optical depth + optical pumping Reduced spin-flip collisions Better coatings, lower temperatures
Summary: Proposal for long-lived entanglement Dissipatively driven entanglement General theoretical model for quadratic Hamiltonians Future Other systems, e.g. optomechanical oscillators
Steady state: Main idea: Steady state:
Effective ground state Hamiltonian: Master equation: Entanglement: