Eigenstates
In absence of disorder the eigenstates are delocalized plane waves.
In presence of disorder, three situations can occur and to distinguish them it is useful to introduce the inverse participation ratio, IPR
The normalization imposes
. For
,
, hence,
.
- Delocalized eigenstates In this case,
. Hence, we expect
- Localized eigenstates In this case,
for
sites and almost zero elsewhere. Hence, we expect
- Multifractal eigenstates. At the transition( the mobility edge) an anomalous scaling is observed:
Here
is q-dependent multifractal dimension, smaller than
and larger than zero.
Multifractality
The exponent
is called multifractal exponent :
imposed by normalization.
because the wave fuction is defined on all sites, in general
is the fractal dimension of the object we are considering. It is simply a geometrical property.
Delocalized eigenstates
In this case,
for all the
sites. This gives
- Multifractal eigenstates.
This case correspond to more complex wave function for which
we expect
The exponent
is positive and
is called multifractal spectrum . It is a convex function and its maximum is the fractal dimension of the object, in our case d. We can determine the relation between multifractal spectrum and exponent
for large L
This means that for
that verifies
we have
A metal has a simple spectrum. Indeed, all sites have
, hence
and
. Then
becomes
independent.
A multifractal has a smooth spectrum with a maximum at
with
. At
,
and
.
Larkin model
In your homewoork you solved a toy model for the interface:
For simplicity, we assume Gaussian disorder
,
.
You proved that:
- the roughness exponent of this model is
below dimension 4
- The force per unit length acting on the center of the interface is

- at long times the interface shape is
In the real depinning model the disorder is however a non-linear function of h. The idea of Larkin is that this linearization is correct up,
the length of correlation of the disorder along the h direction . This defines a Larkin length. Indeed from
You get
Above this scale, roguhness change and pinning starts with a crtical force
In
we have