
1. Introduction
A quantum physical system can be represented by a couple
, where
is some
-algebra Hermitian elements of which are called observables and
is some subset of the set
positive functionals with norm one called as the set of quantum states of this physical system. For the description of the evolution of quantum systems, one-parameter semi groups, groups and different operators and differential equations which are derived from different variance principles have long been used. In this work, we will try to construct a variational problem to find one-parameter semi groups describing the evolution of a quantum system [1] - [6] .
Denote by
, the set of pure states on
-algebra
.
In the set of linear, continuous functionals on the
-algebra
, we have the topological structure which is called as *weakly topological structure and which is defined by pre base:
,
where
[2] , and accordingly this in the set
we have the topological structure induced from this topological structure .
Denote by
the set of Hermit’s elements of
-algebra.
Let
be the set of all one-dimensional projectors on
-algebra
and
pure state. In the workthi [7] , we showed that pure state has the meaning 1 only on one one-dimensional projector
and the meaning 0 on the other one-dimensional projectors. Denote pure state which on projector
has the meaning 1 as
.
An integral representation of Hermit’s elements
,
where
element of spectrum
and
element of partition of unity of Hermit’s element
[8] follow that for the pure states
has placed the equality
, where
is some element of spectrum of Hermit element
. It gives opportunity to identify every pure state with the set of number
, where
.
Consider the Tikhonov’s product
, where
spectrum of element
. It is clear that
, because
is the set of such elements in product
which represent continuous linear mapswhit respect to the topological structure in
induced by norm from
-algebra
:
.
Consequently in the set
, we have topological structure induced from Tikhonov’s product
. This topological structure coincides with the induced topological structure from weakly topological structure on set of functionals on
algebra
.
For every state
we have
, therefore it is easy that the
value of quantum state on observable
is the middle value of this observable. The value
is called the middle (average) value of observable
of quantum physical system in the state
.
Every state is an element of the closure of the set convex linear combinations of pure states in the *weakly topological structure [2] . Let us call in the space
the closure of the set of pure states which generate
state by the support of this state and denote it as
.
If given physical quantum system
, where each state
represents some elementary particle, this elementary particle corresponds to set of pure states,
. This means that elementary particles of system
located in subspace
, where
.
Let us call the subspace
by physical space of the physical quantum system
.
Further, we denote the quantum physical system by
2. Dynamics of quantum System
Well known that the map
defined by formula
is isometric embedding
as Banach space in the double conjugate space
[8] . If
is a state then
[2] ; it follows, that if
is positive element, then
and
.
Thus, if
is positive element then
for each state on
. Because
is isometric, therefore
.
.
If
is hermit’s element
, because, for such elements
and
.
We note that the middle (average) value of the observed
in the state may not enter into the spectrum of this observable. Therefore we can assume
that
is closed subset of Tikhonov’s product
, where
is the minimal closed interval which contains
.
On each interval
we have a Lebesgue measure
and on
the product measure
[9] of this measures. The sets
and
measurable in
with measure
.
In quantum physical system
for hermit’s positive observable
the functional
may be considered as distribution observable
on the states
.
Let
positive observable represents the energy of system
, then
describes the density of distribution of energy in this system. If we assume that the time is the change distribution of energy in the system then the movement of our system we can describe by one-parameter continuous semi group
,
where:
set of all states,
is identify map,
where each parameter value
corresponds to own distribution of energy
i.e. to time moments.
Define the measures
on the set of states
, where
. The map
is continuous. It follows, that if
where
measurable with respect to measure
on
, then integral
.
exist and defines new measure on
Consider product measure
on
. This measure describes distribution of energy over the trajectories of the evolution of the system.
Let
, the set all of one- parameter semi groups on
For every this semi group we have measures on
:
,
where
measurable with respect to measure
on
. The product measures
on
describes distribution of energy over the
trajectories of the evolution of the system when this evolution is described by one parametric semi group
.
Let
is set of trajectories of evolution of system
, described by semi group
. Measure
represents the total energy contained in the set
of trajectories.
If
the set of all trajectory of evolution of the system, then the measure
we will consider as the total energy contained in the set of all trajectory of evolution quantum physical system
.
This energy we can represent as integral
.
We can assume that the measure
is an analog of the integral action in relation to energy, then the evolution of quantum physical system occurs along trajectories such one-parameter semi groups whose corresponding total energy of evolution is extremal for this action integral.
If we are interested in evolution of system in interval of time
then in last integrals we replace symbol
by the number
.
In closed system does not occur loss or acquisition of energy, therefore for describe evolution of closed quantum physical system we have:
.
It is clear the extremum principle for integral action in relation to energy in this form for closed system does not give anything. But if we will consider the observable of difference of potential energy and kinetic energy instead observable of the full energy in algebra of quantum system contains, then action integral will be useful.
Consider new another way of describe evolution of closed quantum system.
3. Entropy in quantum Physical Systems
From the second thermodynamic law follows, a closed system has a tendency to move to distribute energy with maximum entropy. The tendency to move to distribute energy with maximum entropy, follows, that the entropy of the distribution energy of the quantum system
, in the moment time
, defined so integral
,
should increase when increasing
.
The entropy
will grow if the energy distribution function will be smoothed out when increasing
. It will happens if one-parameter semi group
which describes the movement of closed quantum physical system is a compression semi group, in view, that for every
exists
, such that if
,
then
,
where parameter
represents time;
is observable of energy.
Let
be the entropy of quantum system
, in moment
when evolution occurs over a continuous semi group
.
If we are interested in evolution of system in interval of time
then in last integrals we replace symbol
by the number
.
As we see, the extremum principle of action for closed system does not give anything, but here as helping a principle of entropy production maximum, i.e.
we must well fine the compression semi group
for which
is maximal for all
.
If
is generator of the semi group
, then
depends on
as a function
. It follows that semi group
for which
is maximal for all
. We can find
as a solution of the equation
by solving it with gradient descent [10] .
With increasing entropy, the energy distribution to the quantum system is smoothed out. the energy dispersion band in the states of the system narrows. This causes compressed physical spaces with respect to the energy coordinate, but since the energy of the system does not change, there must happen the tensile propagation along some other coordinates, including coordinates of the corresponding position of the particle. It means that the space where the particles of the quantum system are located expands.