properties of liquid 3he 12-24-18 - binghamton university
Post on 14-Feb-2022
4 Views
Preview:
TRANSCRIPT
Fermi liquid: Liquid 3He
Masatsugu Sei Suzuki
Department of Physics
(Date: December 23, 2018)
1. Heat capacity and entropy for Fermi gas
The internal energy FGU of the Fermi gas
2
2 22 5/2
22 2
2
22
3 5[1 ( ) ] [1 ]
5 12 8
3 5 5[1 ( ) ][1 ]
5 24 8
3 5[1 ( ) ]
5 12
FG B B
F F F
B B
F F
B
F
U k T k T
N
k T k T
k T
or
2
23 5[1 ( ) ]
5 12
BFG F
F
k TU N
The heat capacity:
2 22
23 5( ) 2
5 12 2
FG B BFG F
F F
dU k N kC N T T
dT
or
The heat capacity FGC :
2
2
FG B
B F
C k T
Nk
.
The entropy FGS :
2 2
2
FG BFG
F
C N kdS dT dT
T
or
2 2
2
BFG
F
N kS T
2 2
2 2
FG B
B F F
S k TT
Nk T
((Note))
In general case,
2
2( )
3FG F BC D k T
where ( )FD is the density of states at the Fermi energy F Using the relation 3
( )2
F
F
ND
, we
have the specific heat for free electron Fermi gas
2 22
23
3 2 2 2
B B BFG B
F F F
Nk k T NkN TC k T
T
or
2
0.998948 (K)2
FG
B F
C TT
Nk T
where 4.94 KFT for liquid 3He.
2. Pauli paramagnetism for Fermi gas model
The Pauli paramagnetism is given by
2 2
2 3 3( )
2 2FG F
F B F
N ND
k T
with
3( )
2F
F
ND
The magnetic moment of liquid 3He is
1
2I ℏ ℏ
where 2.1227 N and I = ½. The nuclear magneton is defined by
2N
p
e
m c
ℏ
(mp is the mass of proton). The gyromagnetic ratio (the ratio of the magnetic moment to the angular
momentum) is given by
2.12274.2454
/ 2
N N
I
ℏ ℏ ℏ
= 4.2454 x 4789.43=-2.033 x 104 (rad/s G)
with
2
N
p
e
m c
ℏ=4789.43
where
2 2
Bf
=32.361 (MHz/T)
The Pauli susceptibility can be rewritten as
2
2 2 233 32
2 2 8FG
F B F B F
n n nk T k T
ℏ
ℏ
3. Fermi energy of liquid 3He
Liquid 3He as a Fermi gas
spin 2
1I (fermion)
Density 081.0 g/cm3
The Fermi energy:
3/22
0
2
)3(2
nm
F ℏ
where m0 is the mass of 3He atom,
gg
m 2423
230 100.5105.010022.6
016.3
The number density:
322
24
0
/1062.1100.5
081.0cm
mV
M
M
N
V
Nn
=1.62 x 1028/m3
Then the Fermi energy is
416 10254.4erg10815.6 F eV.
The Fermi temperature
B
FF
kT
4.94 K.
That is only a little higher than the boiling point, 3.2 K.
4. Heat capacity of fermi liquid
As predicted for the fermi gas mode, the heat capacity of liquid 3He should be
2
0.99892
FG
B F
C
Nk T T
K-1
So although the linear temperature dependence agrees with experiment, the predicted coefficient
is too small by almost a factor of 3. According to the Fermi liquid theory, the heat capacity of the
liquid 3He is predicted as
( )2 2
1(1 ) 2.802 3 2
s
FL
B F F
C F
Nk T T T
where ( )
1 5.39s
F for P (pressure) = 0. Similarly, the entropy S is predicted as
( )2 2
1(1 ) 2.802 3 2
s
FL
B F F
S F
Nk T T T
The entropy of the solid, meanwhile, should be
ln 2 ln 2N
B Bk k N
since each nucleus has two possible spin orientations. This constant value should apply down to
very low temperatures, when the nuclear spins finally align and the entropy freezes out. Here is a
sketch of both entropy functions. We make a plot of the entropy of the fermi gas and Fermi
liquid as a function of T as well as the entropy of solid 3He.
For the Fermi gas, we have
2
2ln 2 0.69F
FG
TT
K
where
S NkB
T K0.25 K 0.69 K
Fermi liquid Fermi gas
ln 2solid
0.2 0.4 0.6 0.8 1.0
0.2
0.4
0.6
0.8
1.0
2
ln 22
FGFG
B F
ST
Nk T
.
For the Fermi liquid, we have
2
2 ln 20.25
2.80
FFL
TT
K.
where
2
2.80 ln 22
FLFL
B F
ST
Nk T
.
The temperature FLT (=0.25 K) is much lower than the temperature FGT (=0.69 K).
According to the Clausius-Clapeyron relation, the slope of the solid-liquid phase boundary on
a graph of P vs T should be proportional to the entropy difference, liquid solidS S . The above
analysis predicts that the slope should be positive for T>0.25 K, and negative at lower temperatures.
The experimental phase diagram shows just this behavior, with the transition from positive to
negative slope at about 0.3 K, just slightly higher than the prediction 0.25 K. This discrepancy
could be because of lattice vibrations giving the solid some additional entropy, and/or the entropy
of the liquid no longer being quite linear at relatively high temperatures. At very low temperatures,
where the entropy of the solid also goes to zero, the phase boundary becomes horizontal.
5. Entropy
The entropy is mainly due to the nuclear spin of the solid 3He around T = 0.3 K. The 3He atoms
form a lattice. Below 10 mK the nuclear spins starts to order because of the antiferromagnetic
exchange interaction. The nuclear spins antiferromagnetically ordered below the Neel temperature
TN = 2 mK. The antiferromagnetic exchange interaction is -0.85 mK.
Solidliq VV
For example, at T = 0.3 K, it is determined experimentally that
atomcmN
VV Solidliq /101.2 324
6. Pomeranchuk cooling
In the P-V phase diagram, the solid-liquid boundary below 0.3 K has a negative slope. This is
very unusual. Note that the solid-liquid boundary for most materials (except water) has a positive
slope. What are the entropies for the liquid phase and solid phase? The 3He atom is a fermion. The
heat capacity is proportional to T at low temperatures
2
2liquid A B
F
TC N k
T
2.80
The entropy is evaluated as
2
2.802
liquid
liquid A B
F
C TS dT N k
T T
where FT is the Fermi temperature. The entropy is proportional to T.
The entropy of solid 3He is dominated by the much larger contribution of the disordered nuclear
spins (spin 1/2). Each the nuclear spin (spin 1/2) of 3He atom has a magnetic moment, just like a
paramagnetic salts. In the paramagnetic state where the directions of spins are random, the solid
entropy is given by
2lnBAsoilid kNS .
Note that these spins are antiferromagnetically ordered with a Neel temperature NT 1 mK and
the entropy drops rapidly to zero. The liquid entropy coincides with the solid entropy at a
characteristic temperature 1T (=0.32 K). Below 1T , the solid entropy is higher (more disordered)
than the liquid entropy. Above 1T the liquid entropy (more disordered) is higher than the solid
entropy. Such a cross-over of the liquid and solid entropies of 3He at about 0.32 K produces a
pronounced minimum in the melting curve at about 2.93 MPa, followed by a rise in the melting
pressure to 3.45 MPa at T = 0 K. This negative slope is used to produce adiabatic compressional
cooling along the melting curve, a technique called Pomeranchuk cooling after its proposer, and
used by Osheroff et al. (1972a) in their discovery of the superfluid phases of 3He.
Fig. Entropy per atom in the coexisting solid and liquid phases of 3He. The entropy of the liquid
phase is less than that of the solid phase below a characteristic temperature 1 2
2ln 2F
T T
.
The dotted line from a to b corresponds to slow adiabatic compression from pure liquid to
pure solid.
T
S kB
Solid
Liquid
ln2
ab
T1
The phase boundary is expressed by the Clausius-Clapeyron equation
solidliq
solidliq
VV
SS
dT
dP
In the phase diagram of 3He around 0.3 K,
0dT
dP for T>0.3 K corresponding to solidliq SS
0dT
dP for T<0.3 K corresponding to solidliq SS
since Solidliq VV in the vicinity of 0.3 K.
Consider the liquid-solid boundary (denoted by red open circle) below 0.32 K, where solidliq SS ,
When temperature is increased, the entropy increases. The only way this can happen here is to
solid which has higher entropy. So the liquid freezes when the temperature rises. This explains the
negative slope below 0.32 K.
In order for entropy to increase, heat must be absorbed from the surrounding (like when a
normal solid melts). This gives rise to a cooling effect. Higher pressure forces the liquid to become
solid. This gives a cooling effect. This compressional cooling" method was proposed by Issak
Pomeranchuk in 1950.
Pomenranchuk predicted that adiabatic compression of coexisting solid and liquid would cool 3He. If the initial temperature is below 0.32 K, then an increase in the external pressure moves the
helium along the melting curve up and to the left: toward higher pressure and lower temperatures.
Typically, the temperature decreases from 0.3 K to 1 mK. The solid-liquid boundary (arrow) below
0.3 K has a negative slope.
7. Problem: Clausius-Clapeyron equation
Ralph Baierlein
12-9
((Solution))
Fig. Phase diagram. P (mmHg=torr) vs T (K)of liquid He3.
0.20 0.25 0.30 0.35 0.40 0.45 0.50
10 5
10 4
0.001
0.010
0.100
2( )
v v v v
g l g g B
l l Pl PldP
dT T v v Tv TPv k T
or
2
1 v
B
ldP dT
P k T
or
0ln ln v
B
lP P
k T
We make a plot of ln P vs 1/ T for 3He.
Fig. Least squares fit to the straight line; Plot of ln P vs 1/T.
(a) The least-squares fit of the data (lnP vs 1/T) to a straight line yields
ln 4.34001 3.14569 1/P T
3.14569v Bl k (latent heat of evaporation per particle)
or
2.5 3.0 3.5 4.0 4.5 5.0
10
8
6
4
2
42.7108 10vl
(eV/particle)
(b) T = 0.1 K.
ln 4.34001 3.14569 1/ 0.1 27.1169P
121.672 10P torr.
______________________________________________________________________________
8. Problem: Phonon
Ralph Baierlein
12-10
((Solution))
3
412
5V
D
TC R
C
The entropy:
3
4212 1
5
V
D
CdS dT R T
T
3
44
5solid
D
TS R
with
16K .
Nuclear spin of 3He
The entropy of solid 3He is dominated by the much larger contribution of the disordered nuclear
spins (spin 1/2). Each the nuclear spin (spin 1/2) of 3He atom has a magnetic moment, just like a
paramagnetic salts. In the paramagnetic state where the directions of spins are random, the solid
entropy is given by
ln 2nuclearS R
Fig. Entropy of lattice vibration (red) and nuclear spin (blue) for Helium three.
APPENDIX-I Fermi liquid theory
The life time a quasi-particle excitation dressed by interactions is rather long owing to the
surrounding degenerate Fermi sea. Thus the physical properties at FTT may be well described
by a theory based on quasi-particle excitations, the so-called Landau Fermi liquid theory. Since
the critical temperature Tc of this superfluid is of the order of 1000/FT , similar to that for
superconductivity in a metal, one can naturally study the system on the basis of this theory.
Fermi liquid relations between the Landau parameters and experimentally measured quantities
(a) Effective mass:
T K
S R
0 1 2 3 4 50.0
0.2
0.4
0.6
0.8
1.0
)(
13
11
* sF
m
m
(b) Specific heat:
)(
13
11
* s
g
N Fm
m
C
C
where
F
BgT
TNkC 2
2
1
(c) Spin suceptibility:
)(
0
)(
1
)(
0 1
3
11
1
1*a
s
a
g
N
F
F
Fm
m
where
FB
B
F
BgTk
NN 1
2
3
2
32
2
(d) Compressibility:
)(
0
)(
1
)(
0 1
3
11
1
1*s
s
s
g
N
F
F
Fm
m
where
F
gn
1
2
3
(e) The sound velocity:
)(
1
)(
0
2
3
11
1
s
s
g F
F
c
c
where
)3(2
22
nmk
TB
F ℏ
, )3(2
2
*
2*
nkm
TB
F ℏ
3/22 )3( npF ℏ
______________________________________________________________________________
APPENDIX II Proton; magnetic moment
Nuclear magnetic moment 2.792 N and I = 1/2 for proton.
where
2N
p
e
m c
ℏ
The gyromagnetic ratio:
2.7925.584
/ 2
N N
I
ℏ ℏ ℏ
= 5.584 x 4789.43=2.67442 x 104 (rad/s G)
2
N
p
e
m c
ℏ=4789.43
2 2
Bf
=42.5647 (MHz/T)
___________________________________________________________________________
top related