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Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID HELIUM: NEW PHYSICS AT THE EDGE OF ABSOLUTE ZERO 14-19 September 2008

Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

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Page 1: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Superfluid 3He in aerogel

I.A. Fomin,

P.L. Kapitza Institute for Physical Problems,Moscow.

XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA

100 YEARS LIQUID HELIUM: NEW PHYSICS AT THE EDGE OF ABSOLUTE ZERO

14-19 September 2008

Page 2: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 3: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

This ordering is characterized by the order parameter

gauge symmetry is broken

At KT 1~ liquid 3He is a normal Fermi liquid, it

can became superfluid via Cooper pairing at lower temperatures.

KT 17.2At 4He becomes superfluid.

Page 4: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Singlet Cooper pairing S=0, l=0

l= 0,2,4…

S=0, l=0 s-wave, or conventional Cooper pairing. It is realized in most of superconductors: Hg, Pb, Sn, Al, etc.. The order parameter is a one-component complex function:

ie|| only gauge symmetry is broken.

S=0

Page 5: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Triplet Cooper pairing (unconventional)

S=1 l=1,3,5…

The order parameter is multi-component:

zyx ,, . Each of the three components is a function

of direction in the momentum space.

Except for the gauge symmetry other symmetries arebroken as well.

Page 6: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

The order parameter of 3He: s=1, l=1

jA

momentum (orbital) index j=1,2,3 - px,py,pz orbitals

spin index = 1,2,3

jjkA

px py pz

Page 7: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Cooper pairing in a triplet (S=1) state

Page 8: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Unconventional superconductors:

UPt3, UGe2, Sr2RuO4, high-Tc, etc.

Additional complications: anisotropy, complicated Fermi-surfaces, impurities.

3He – canonical unconventional superfluid: spherical Fermi-surface, well known Fermi-liquid parameters, no impurities.

All floating impurities stick to the walls of a container.

Page 9: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Self-supporting structure – high porosity silica aerogel.

Aerogels with the porosity up to 99.5% can be made.

Mostly used with the porosity close to 98%

Porosity P=(empty volume/total volume)

Page 10: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 11: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 12: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 13: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Why Aerogel?

• Silica ball size:

3 nm

• Correlation length:

a ~ 10 - 100 nm

• Superfluid coherence length:

≈ 20 - 80 nm (P = 34 - 0

bar)

• Expect interesting physics

when: ~ a

DLCA simulation of a silica aerogel depicting the length scales and a (courtesy of T.M. Lippman).

Page 14: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

According to the theory of superconducting alloys

for conventional superconductors

for unconventional

How does aerogel effect the Tc of 3He?

Page 15: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Application of the Theory of superconducting alloys for a triplet p-wave Cooper pairing (Homogenious Scattering Model (HSM))

Page 16: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

solid 3He

normalphase

«A»

«B»

T (mK)

P (

bar)

Suppression of Tc

Page 17: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 18: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Homogenious scattering model

Page 19: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

W.F. Halperin and J.A. Sauls, cond-mat/0408593

Page 20: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

FLUCTUATIONS-1

Page 21: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

FLUCTUATIONS-2

Page 22: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 23: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 24: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Landau free energy

0*

jA

f

Page 25: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Tc

Tc2Tc1

Tc3

Ginzburg and Landau equation

Page 26: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

delocalized solution

no delocalized solutions

Page 27: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

x

Long-range order -- mobility edge

Page 28: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

DLCA simulation of a silica aerogel depicting the length scales and a

(courtesy of T.M. Lippman).

Page 29: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Perturbation expansion

mobility edge: k=0

+ + +=

average over realizations

Page 30: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Coincides with the homogeneous scattering model

Page 31: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 32: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 33: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

                      

                                      

    

Fractal structure (Sierpinski gasket)

Page 34: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 35: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
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Page 38: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID

Conclusions

1. It is possible to introduce impurities in the superfluid 3He.

2. Effect of impurities depends on correlation of their positions.

3. One can expect effects, analogous to discussed here in unconventional superconductors with a short correlation length, e.g. in high-Tc superconductors.

Page 39: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID
Page 40: Superfluid 3He in aerogel I.A. Fomin, P.L. Kapitza Institute for Physical Problems, Moscow. XV INTERNATIONAL SUMMER SCHOOL NICOLÁS CABRERA 100 YEARS LIQUID