95
Quantum Criticality and Black Holes ubir Sachde Talk online at http://sachdev.physics.harvard.edu

Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

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Page 1: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Quantum Criticality and Black Holes ubir Sachde

Talk online at http://sachdev.physics.harvard.edu

Page 2: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=1√2

(|↑↓〉 − |↓↑〉)

Quantum Entanglement

Hydrogen atom:

Hydrogen molecule:

= _

Superposition of two electron states leads to non-local

correlations between spins

Page 3: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Change in the nature of

entanglement in a macroscopic

quantum system.

Quantum Phase Transition

Familiar phase transitions, such as water

boiling to steam, also involve macroscopic

changes, but in thermal motion

Page 4: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

The complex and non-local

entanglement at the critical point

between two quantum phases

Quantum Criticality

Page 5: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

1. Entanglement of spins Experiments on spin-gap insulators

2. Entanglement of valence bonds Deconfined criticality in antiferromagnets

3. Black Hole Thermodynamics Connections to quantum criticality

4. Nernst effect in the cuprate superconductorsQuantum criticality and dyonic black holes

Outline

Page 6: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

1. Entanglement of spins Experiments on spin-gap insulators

2. Entanglement of valence bonds Deconfined criticality in antiferromagnets

3. Black Hole Thermodynamics Connections to quantum criticality

4. Nernst effect in the cuprate superconductorsQuantum criticality and dyonic black holes

Outline

Page 7: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

The cuprate superconductors

Page 8: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Antiferromagnetic (Neel) order in the insulator

No entanglement of spins

Page 9: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

No entanglement of spins

Page 10: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Weaken some bonds to induce spin

entanglement in a new quantum phase

Page 11: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Oxygen

SrCu2O3

Copper

Page 12: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein
Page 13: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Ground state is a product of pairs

of entangled spins.

Page 14: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Phase diagram as a function of the ratio ofexchange interactions, λ

λ

Page 15: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Ground state is a product of pairs

of entangled spins.

Page 16: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Excitation: S=1 triplon

Page 17: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Excitation: S=1 triplon

Page 18: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Excitation: S=1 triplon

Page 19: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Excitation: S=1 triplon

Page 20: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Excitation: S=1 triplon

Page 21: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

G. Xu, C. Broholm, Yeong-Ah Soh, G. Aeppli, J. F. DiTusa, Y. Chen, M. Kenzelmann, C. D. Frost, T. Ito, K. Oka, and H. Takagi, Science 317, 1049 (2007).

Neutron scattering

Y2BaNiO5

Page 22: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Collision of triplons

Page 23: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Collision of triplons

Page 24: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Collision of triplons

-1

Collision S-matrix

Page 25: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Collision of triplons

Page 26: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Collision of triplons

Page 27: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

G. Xu, C. Broholm, Yeong-Ah Soh, G. Aeppli, J. F. DiTusa, Y. Chen, M. Kenzelmann, C. D. Frost, T. Ito, K. Oka, and H. Takagi, Science 317, 1049 (2007).

Parameter free

prediction by K. Damle

and S. Sachdev, Phys.

Rev. B 57, 8307 (1998)

from multiple collisions

with universal,

quantum S-matrices

Neutron scattering linewidth

Y2BaNiO5

Page 28: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Phase diagram as a function of the ratio ofexchange interactions, λ

λλc

Quantum critical point with non-local

entanglement in spin wavefunction

Page 29: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

1. Entanglement of spins Experiments on spin-gap insulators

2. Entanglement of valence bonds Deconfined criticality in antiferromagnets

3. Black Hole Thermodynamics Connections to quantum criticality

4. Nernst effect in the cuprate superconductorsQuantum criticality and dyonic black holes

Outline

Page 30: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

1. Entanglement of spins Experiments on spin-gap insulators

2. Entanglement of valence bonds Deconfined criticality in antiferromagnets

3. Black Hole Thermodynamics Connections to quantum criticality

4. Nernst effect in the cuprate superconductorsQuantum criticality and dyonic black holes

Outline

Page 31: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Resonance in benzene leads to a symmetric

configuration of valence bonds

(F. Kekulé, L. Pauling)

Entanglement of valence bonds

Page 32: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Resonance in benzene leads to a symmetric

configuration of valence bonds

(F. Kekulé, L. Pauling)

Entanglement of valence bonds

Page 33: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Antiferromagnetic (Neel) order in the

insulator

H = J∑〈ij〉

�Si · �Sj ; �Si ⇒ spin operator with S = 1/2

Page 34: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Induce formation of valence bonds by e.g.

ring-exchange interactions

A. W. Sandvik, Phys. Rev. Lett. 98, 227202 (2007)

H = J∑〈ij〉

�Si · �Sj + K∑�

four spin exchange

Page 35: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Valence bond entanglement in quantum spin systems

Page 36: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Valence bond entanglement in quantum spin systems

Page 37: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Valence bond entanglement in quantum spin systems

Page 38: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Valence bond entanglement in quantum spin systems

Page 39: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

P. Fazekas and P.W. Anderson, Phil Mag 30, 23 (1974).

=

Valence bond entanglement in quantum spin systems

Resonating valence bond (RVB) liquid

Page 40: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

N. Read and S. Sachdev, Phys. Rev.

Lett. 62, 1694 (1989).

R. Moessner and S. L. Sondhi,

Phys. Rev. B 63, 224401 (2001).

=

Valence bond entanglement in quantum spin systems

Valence Bond Solid (VBS)

Page 41: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

N. Read and S. Sachdev, Phys. Rev.

Lett. 62, 1694 (1989).

R. Moessner and S. L. Sondhi,

Phys. Rev. B 63, 224401 (2001).

Valence bond entanglement in quantum spin systems

Valence Bond Solid (VBS)

Page 42: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

N. Read and S. Sachdev, Phys. Rev.

Lett. 62, 1694 (1989).

R. Moessner and S. L. Sondhi,

Phys. Rev. B 63, 224401 (2001).

Valence Bond Solid (VBS)

Valence bond entanglement in quantum spin systems

Page 43: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

N. Read and S. Sachdev, Phys. Rev.

Lett. 62, 1694 (1989).

R. Moessner and S. L. Sondhi,

Phys. Rev. B 63, 224401 (2001).

Valence Bond Solid (VBS)

Valence bond entanglement in quantum spin systems

Page 44: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Excitations of the RVB liquid

Page 45: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Excitations of the RVB liquid

Page 46: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Excitations of the RVB liquid

Page 47: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Excitations of the RVB liquid

Page 48: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Electron fractionalization: Excitations carry spin S=1/2 but no charge

Excitations of the RVB liquid

Page 49: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Excitations of the VBS

Page 50: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Excitations of the VBS

Page 51: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Excitations of the VBS

Page 52: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Excitations of the VBS

Page 53: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

=

Excitations of the VBS

Free spins are unable to move apart: no fractionalization, but confinement

Page 54: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Phase diagram of square lattice antiferromagnet

H = J∑〈ij〉

�Si · �Sj + K∑�

four spin exchangeA. W. Sandvik, Phys. Rev. Lett. 98, 227202 (2007)

Page 55: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Phase diagram of square lattice antiferromagnet

K/J

T. Senthil, A. Vishwanath, L. Balents, S. Sachdev and M.P.A. Fisher, Science 303, 1490 (2004).

H = J∑〈ij〉

�Si · �Sj + K∑�

four spin exchange

Page 56: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Phase diagram of square lattice antiferromagnet

K/J

T. Senthil, A. Vishwanath, L. Balents, S. Sachdev and M.P.A. Fisher, Science 303, 1490 (2004).

Quantum critical point with RVB-like

entanglement: “deconfined criticality”

H = J∑〈ij〉

�Si · �Sj + K∑�

four spin exchange

Page 57: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Why should we care about the

entanglement at an isolated critical

point in the parameter space ?

Page 58: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Temperature, T

0K/J

Page 59: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

1. Entanglement of spins Experiments on spin-gap insulators

2. Entanglement of valence bonds Deconfined criticality in antiferromagnets

3. Black Hole Thermodynamics Connections to quantum criticality

4. Nernst effect in the cuprate superconductorsQuantum criticality and dyonic black holes

Outline

Page 60: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

1. Entanglement of spins Experiments on spin-gap insulators

2. Entanglement of valence bonds Deconfined criticality in antiferromagnets

3. Black Hole Thermodynamics Connections to quantum criticality

4. Nernst effect in the cuprate superconductorsQuantum criticality and dyonic black holes

Outline

Page 61: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Objects so massive that light is

gravitationally bound to them.

Black Holes

Page 62: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Horizon radius R =2GM

c2

Objects so massive that light is

gravitationally bound to them.

Black Holes

The region inside the black hole horizon is causally disconnected

from the rest of the universe.

Page 63: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Black Hole Thermodynamics

Bekenstein and Hawking discovered astonishing connections between the Einstein theory of black

holes and the laws of thermodynamics

The Second Law: dA ≥ 0

Entropy of a black hole S =kBA

4�2Pwhere A is the area of the horizon, and

�P =

√G�

c3is the Planck length.

Page 64: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Black Hole Thermodynamics

Bekenstein and Hawking discovered astonishing connections between the Einstein theory of black

holes and the laws of thermodynamics

Horizon temperature: 4πkBT =�

2

2M�2P

Page 65: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

AdS/CFT correspondence

The quantum theory of a black hole in a 3+1-dimensional negatively curved AdS universe is

holographically represented by a CFT (the theory of a quantum critical point) in 2+1 dimensions

A 2+1 dimensional

system at its quantum

critical point

Black hole

3+1 dimensional AdS space

Maldacena

Page 66: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

AdS/CFT correspondence

The quantum theory of a black hole in a 3+1-dimensional negatively curved AdS universe is

holographically represented by a CFT (the theory of a quantum critical point) in 2+1 dimensions

QCP in 2+1 D

Black hole

3+1 dimensional AdS space

Strominger, Vafa

Black hole

temperature =

temperature of

quantum

criticality

Page 67: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

AdS/CFT correspondence

The quantum theory of a black hole in a 3+1-dimensional negatively curved AdS universe is

holographically represented by a CFT (the theory of a quantum critical point) in 2+1 dimensions

QCP in 2+1 D

Black hole

3+1 dimensional AdS space

Strominger, Vafa

Black hole entropy

= entropy of

quantum criticality

in 2+1 dimensions

Page 68: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

AdS/CFT correspondence

The quantum theory of a black hole in a 3+1-dimensional negatively curved AdS universe is

holographically represented by a CFT (the theory of a quantum critical point) in 2+1 dimensions

QCP in 2+1 D

Black hole

3+1 dimensional AdS space

Maldacena

Dynamics of

quantum criticality

= waves in curved

gravitational

background

Page 69: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

AdS/CFT correspondence

The quantum theory of a black hole in a 3+1-dimensional negatively curved AdS universe is

holographically represented by a CFT (the theory of a quantum critical point) in 2+1 dimensions

QCP in 2+1 D

Black hole

3+1 dimensional AdS space

Son

“Friction” of

quantum critical

dynamics = black

hole absorption

rates

Page 70: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

1. Entanglement of spins Experiments on spin-gap insulators

2. Entanglement of valence bonds Deconfined criticality in antiferromagnets

3. Black Hole Thermodynamics Connections to quantum criticality

4. Nernst effect in the cuprate superconductorsQuantum criticality and dyonic black holes

Outline

Page 71: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

1. Entanglement of spins Experiments on spin-gap insulators

2. Entanglement of valence bonds Deconfined criticality in antiferromagnets

3. Black Hole Thermodynamics Connections to quantum criticality

4. Nernst effect in the cuprate superconductorsQuantum criticality and dyonic black holes

Outline

Page 72: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

La2CuO4

Phase diagram of doped antiferromagnets

K/J

Page 73: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

La2CuO4

N. Read and S. Sachdev, Phys. Rev. Lett. 62, 1694 (1989).

Phase diagram of doped antiferromagnets

T. Senthil, A. Vishwanath, L. Balents, S. Sachdev and M.P.A. Fisher, Science 303, 1490 (2004).

K/J

Page 74: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

La2CuO4

Phase diagram of doped antiferromagnets

K/J

δ

Page 75: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

0 Doping

p

4

d-wave

A1

A2

q

X

broken

g

VBS supersolid

M. Vojta and S. Sachdev, Phys. Rev. Lett. 83, 3916 (1999)

Page 76: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Temperature-doping phase diagram of the cuprate

superconductors

Scanning Tunneling

Microscopy experiments

Page 77: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Ca1.90Na0.10CuO2Cl2

Bi2.2Sr1.8Ca0.8Dy0.2Cu2Oy

Page 78: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

12 nm

Science 315, 1380 (2007)

Topograph

Ca1.90Na0.10CuO2Cl2

Bi2.2Sr1.8Ca0.8Dy0.2Cu2Oy

Page 79: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Intense Tunneling-Asymmetry (TA)

variation are highly similar

Science 315, 1380 (2007)

dI/dV Spectra

Ca1.90Na0.10CuO2Cl2

Bi2.2Sr1.8Ca0.8Dy0.2Cu2Oy

Page 80: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

M. Randeria, N. Trivedi & FC Zhang

PRL 95, 137001 (2005)

3.8 Å

Towards MI

p= # holes per CuO2See also M.B.J. Meinders, H. Eskes and G.A. Sawatzky,

PRB 48,3916 (1993).

Tunneling Asymmetry is related to hole density

Page 81: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

12 nm

Indistinguishable bond-centered TA contrast

with disperse 4a0-wide nanodomains

R-map at E=150meV

Ca1.90Na0.10CuO2Cl2

Bi2.2Sr1.8Ca0.8Dy0.2Cu2Oy

Y. Kohsaka et al. Science 315, 1380 (2007)

Page 82: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Ca1.88Na0.12CuO2Cl2, 4 KR map (150 mV)

4a0

12 nm

TA Contrast is at oxygen site (Cu-O-Cu bond-centered)

Y. Kohsaka et al. Science 315, 1380 (2007)

Page 83: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Ca1.88Na0.12CuO2Cl2, 4 KR map (150 mV)

4a0

12 nm

TA Contrast is at oxygen site (Cu-O-Cu bond-centered)

Y. Kohsaka et al. Science 315, 1380 (2007)

Page 84: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Temperature-doping phase diagram of the cuprate

superconductors

“Glassy” Valence

Bond Solid (VBS)

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Nernst experiment

H

ey

Hm

Page 86: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Non-zero temperature phase diagram

Page 87: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Non-zero temperature phase diagram

VBS

Page 88: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

Superfluid VBS Insulator

Non-zero temperature phase diagram

Coulomb interactions

VBS Supersolid

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Superfluid VBS Insulator

Non-zero temperature phase diagram

Coulomb interactions

VBS Supersolid

Quantum-critical

dynamics of vortices

in a magnetic field,

at generic density,

and with impurities

Page 90: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

To the CFT of the quantum critical point, we add

• A chemical potential μ

• A magnetic field B

After the AdS/CFT mapping, we obtain the Einstein-Maxwell theory of a black hole with

• An electric charge

• A magnetic charge

A precise correspondence is found between general

hydrodynamics of vortices near quantum critical points

and solvable models of black holes with electric and

magnetic charges

S.A. Hartnoll, P.K. Kovtun, M. Müller, and S. Sachdev, Phys. Rev. B (2007)

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LSCO - Theory

S.A. Hartnoll, P.K. Kovtun, M. Müller, and S. Sachdev, Phys. Rev. B (2007)

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LSCO - Experiments

N. P. Ong et al.

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Only input parameters Output

LSCO - Theory

�v = 47 meV Aτimp ≈ 10−12 s

ωc = 6.2GHz · B

1T

(35KT

)3

Similar to velocity estimates by A.V. Balatsky and Z-X. Shen, Science 284, 1137 (1999).

S.A. Hartnoll, P.K. Kovtun, M. Müller, and S. Sachdev, Phys. Rev. B (2007)

Page 94: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

To the CFT of the quantum critical point, we add

• A chemical potential μ

• A magnetic field B

After the AdS/CFT mapping, we obtain the Einstein-Maxwell theory of a black hole with

• An electric charge

• A magnetic charge

A precise correspondence is found between general

hydrodynamics of vortices near quantum critical points

and solvable models of black holes with electric and

magnetic charges

S.A. Hartnoll, P.K. Kovtun, M. Müller, and S. Sachdev, Phys. Rev. B (2007)

Page 95: Quantum Criticality and Black Holesqpt.physics.harvard.edu/talks/dartmouth.pdf · Black Hole Thermodynamics Bekenstein and Hawking discovered astonishing connections between the Einstein

• Studies of new materials and trapped ultracold atoms are yielding new quantum phases, with novel forms of quantum entanglement.

• Some materials are of technological importance: e.g. high temperature superconductors.

• Exact solutions via black hole mapping have yielded first exact results for transport co-efficients in interacting many-body systems, and were valuable in determining general structure of hydrodynamics.

• Theory of VBS order and Nernst effect in curpates.

• Tabletop “laboratories for the entire universe”: quantum mechanics of black holes, quark-gluon plasma, neutrons stars, and big-bang physics.

Conclusions