Christine Muschik and J. Ignacio Cirac

50
Christine Muschik and J. Ignacio Cirac Entanglement generated by Dissipation 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)

description

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. - PowerPoint PPT Presentation

Transcript of Christine Muschik and J. Ignacio Cirac

Page 1: Christine Muschik and J. Ignacio Cirac

Christine Muschik and J. Ignacio Cirac

Entanglement generated by Dissipation

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)

Page 2: Christine Muschik and J. Ignacio Cirac
Page 3: Christine Muschik and J. Ignacio Cirac
Page 4: Christine Muschik and J. Ignacio Cirac

Steady State Entanglement

Page 5: Christine Muschik and J. Ignacio Cirac
Page 6: Christine Muschik and J. Ignacio Cirac

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!

Page 7: Christine Muschik and J. Ignacio Cirac

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!

Typically:

Quantum states are fragile under decoherence

Page 8: Christine Muschik and J. Ignacio Cirac

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!

Typically:

Quantum states are fragile under decoherence

Avoidance of dissipation by decoupling the system from the environment

Page 9: Christine Muschik and J. Ignacio Cirac

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!

Typically:

Quantum states are fragile under decoherence

Avoidance of dissipation by decoupling the system from the environment

Strict isolation!

Page 10: Christine Muschik and J. Ignacio Cirac

Motivation:

Page 11: Christine Muschik and J. Ignacio Cirac

Motivation:

Page 12: Christine Muschik and J. Ignacio Cirac

Motivation:

New approaches

Use the interaction of the system with the environment

Page 13: Christine Muschik and J. Ignacio Cirac

Motivation:

New approaches

Use the interaction of the system with the environment

Dissipation drives the system into the desired state

Page 14: Christine Muschik and J. Ignacio Cirac

Motivation:

New approaches

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

Page 15: Christine Muschik and J. Ignacio Cirac

Motivation:

Procedure:

Page 16: Christine Muschik and J. Ignacio Cirac

Motivation:

Procedure:

Engineer the coupling

Page 17: Christine Muschik and J. Ignacio Cirac

Motivation:

Procedure:

Engineer the coupling

Steady state = desired state

Page 18: Christine Muschik and J. Ignacio Cirac

Motivation:

Procedure:

Engineer the coupling

Steady state = desired state

Arbitrary initial state

Page 19: Christine Muschik and J. Ignacio Cirac

Motivation:

Procedure:

Engineer the coupling

Steady state = desired state

Arbitrary initial state

Page 20: Christine Muschik and J. Ignacio Cirac

Motivation:

Procedure:

Engineer the coupling

Steady state = desired state

Arbitrary initial state

Single trapped ion J. F. Poyatos, J. I. Cirac and P. Zoller, Phys. Rev. Lett. 77, 4728 (1996)

Atoms in two cavitiesB. Kraus and J. I. Cirac, Phys. Rev. Lett. 92, 013602 (2004)

Many-body systemsS. 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)

Proposals:

Quantum phase transitionsState preparationQuantum computing

Page 21: Christine Muschik and J. Ignacio Cirac

Motivation:

Procedure:

Engineer the coupling

Steady state = desired state

Arbitrary initial state

Page 22: Christine Muschik and J. Ignacio Cirac

Setup:

Page 23: Christine Muschik and J. Ignacio Cirac

Main idea:

HamiltonianHamiltonian::

usls

kkkkaBBakdaAAakdH

)()( III JJA

III JJB

Page 24: Christine Muschik and J. Ignacio Cirac

Main idea:

HamiltonianHamiltonian::

usls

kkkkaBBakdaAAakdH

)()(

Master equationMaster equation::

III JJA III JJB

..)()( CHBBBBAAAAdtdt

Page 25: Christine Muschik and J. Ignacio Cirac

Main idea:

HamiltonianHamiltonian::

usls

kkkkaBBakdaAAakdH

)()(

Master equationMaster equation::

III JJA III JJB

..)()( CHBBBBAAAAdtdt

Unique Steady StateUnique Steady State::

0 EPREPR BA

Page 26: Christine Muschik and J. Ignacio Cirac

Setup:

laser

magneticfields

Page 27: Christine Muschik and J. Ignacio Cirac

Setup:

Reservoir: common modes of the electromagnetic field.Control: Laser and magnetic fields

laser

magneticfields

Page 28: Christine Muschik and J. Ignacio Cirac

Setup:

laser

Page 29: Christine Muschik and J. Ignacio Cirac

Setup:

laser

Page 30: Christine Muschik and J. Ignacio Cirac

Setup:

laser

212121011011

Page 31: Christine Muschik and J. Ignacio Cirac

Setup:

laser

Page 32: Christine Muschik and J. Ignacio Cirac

Setup:

laser

Page 33: Christine Muschik and J. Ignacio Cirac

)2()2( BBBBBBdAAAAAAddt

d

+undesired processes

Masterequation:

Entanglement:

IIxIx

IIzIzIIyIy

JJ

JJJJ

,,

,,,, varvar

Theory:

Page 34: Christine Muschik and J. Ignacio Cirac

Entanglement: ideal case

2,,

,,,, varvar

IIxIx

IIyIyIIzIz

JJ

JJJJ

Theory:

Page 35: Christine Muschik and J. Ignacio Cirac

Entanglement: ideal case

2,,

,,,, varvar

IIxIx

IIyIyIIzIz

JJ

JJJJ

1d

2P : polarization

12 n

~ : noise rate

Entanglement: including undesired processes

Theory:

2

2

22

2

2~

~

Pd

Pd

P

n

2

Page 36: Christine Muschik and J. Ignacio Cirac

Experimental realization of purely dissipation based entanglement:

Theory: Two-level model

Experiment: Multi-level structure

Page 37: Christine Muschik and J. Ignacio Cirac

Experimental realization of purely dissipation based entanglement:

Theory: Two-level model

Experiment: Multi-level structure

Cs133 (nuclear spin I=7/2)

3,3

3,44,4

3F

4F

Page 38: Christine Muschik and J. Ignacio Cirac

Experimental results:

Ia)

0 5 10 15 20 25

1

0.9

0.8

Tim e in m s

Page 39: Christine Muschik and J. Ignacio Cirac

Experimental results:

Ia)

0 5 10 15 20 25

1

0.9

0.8

Tim e in m s

EPR variance

)()( zy JJ

Page 40: Christine Muschik and J. Ignacio Cirac

Experimental results:

Ia)

0 5 10 15 20 25

1

0.9

0.8

Tim e in m s

Longitudinal spin

xJ

EPR variance

)()( zy JJ

Page 41: Christine Muschik and J. Ignacio Cirac

Experimental results:

0 5 10 15 20 25

1

0.95

1.05

Ib)

)(t

Tim e in m s

Ia)

0 5 10 15 20 25

1

0.9

0.8

Tim e in m s

IIxIx

IIzIzIIyIy

JJ

JJJJ

,,

,,,, varvar

Page 42: Christine Muschik and J. Ignacio Cirac

Conclusions and Outlook:

First observation of entanglement generated by dissipation

Page 43: Christine Muschik and J. Ignacio Cirac

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.

Page 44: Christine Muschik and J. Ignacio Cirac

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.

Page 45: Christine Muschik and J. Ignacio Cirac

Conclusions and Outlook:

Realization of Steady State Entanglement:

Atoms with two-level atomic ground states, e.g. Yb171

Page 46: Christine Muschik and J. Ignacio Cirac

Conclusions and Outlook:

Realization of Steady State Entanglement:

Atoms with two-level atomic ground states, e.g. Yb171

Increased optical depth + optical pumping

0 20 40 60

Id)1.05

0.95

0.85

)( t

Tim e in m s

0 10 20

1

1.06

Page 47: Christine Muschik and J. Ignacio Cirac

Conclusions and Outlook:

Realization of Steady State Entanglement:

Atoms with two-level atomic ground states, e.g. Yb171

Increased optical depth + optical pumping

Reduced spin-flip collisions

Better coatings, lower temperatures

Page 48: Christine Muschik and J. Ignacio Cirac

Proposal for long-lived entanglement

Other systems, e.g.optomechanical oscillators

Summary:

Dissipatively driven entanglement

Future

General theoretical model for quadratic Hamiltonians

Page 49: Christine Muschik and J. Ignacio Cirac

Main idea:

aaaaaadt ~~~2~

bbbbbb ~~~2

0,00,0~ vacSteady state:

,00,0 a ,00,0 b ,0EPRA ,0EPRB

AAAAAAdt 2

BBBBBB 2

EPREPREPR Steady state:

,UaUA UbUB

UU vacEPR

)~( UU

Page 50: Christine Muschik and J. Ignacio Cirac

Effective ground state Hamiltonian:

..)(1 1

,,CHaeegkd

k

N

i

N

j

rkijII

rkik

ji

iI

ls

k

N

i

N

j

rkijII

rkiiIk aeegkdH ji

us

1 1,,)(

Master equation:

BtBdAtAdtd termfirstt )(2)(2)(

iIIiIIiIiINicool tt ,,,,1 )()(2

iIIiIIiIiINiheat tt ,,,,1 )()(2

iIIiIIiIIiIIiIiIiIiINideph tt ,,,,,,,,1 )()(2

Entanglement:

dephheatcool ~

ttPdttPd

etPd

tPd

tP

tn

tP

et )(

~2

2

222

2

2

2

)(~

22

2

1)(

~)(

~

)(

)(

)()(