The Finite Square Well
reveal many of the qualitative characteristics of quantum mechanical (QM) systems.
THINK FIRST!
The first step in any problem is to gather together all your qualitative knowledge about the situation before you start working out any quantitative details. This is especially true in QM, where the ``blind calculation'' approach is often not only a waste of effort but actually intractable!
SYMMETRY:
In this case we save ourselves a mind-bogglingly difficult
mathematical nightmare by making a few simple observations
about symmetry: the potential
is symmetric
about x = 0; this implies that the probability of finding
the particle on one side of the well must be equal to
the probability of finding it on the other side.
Since the wavefunction 
is squared
to get this probability, it follows that
can be either an even function of x
or an odd
function of x 
.
This places lots of constraints on
for which we will soon be grateful.
BOUND or UNBOUND?
A potential well generally has bound states
of well-defined energy E < 0 unless the mass is too small
(see below).
There is also a continuum of unbound states with E > 0,
whose behaviour we may also want to examine.
[For instance, the classical particle will ``pass over''
the well and continue on the other side every time;
this will not be the case for the QM result!]
We will start with the bound state
.
If 
is localized around the potential well,
then to be normalizable it must obey
.
[Moreover, we certainly expect 
as we get further into regions where the
classical particle cannot penetrate at all
due to its inadequate energy!]
Our first guess for such functions
is always the decaying exponential function, here
(2)
for region 1 
.
[Remember, x = -|x| in this region.]
Since we are always free to choose the overall phase
of 
arbitrarily [multiplying by a constant factor
of 
has no effect on the physics],
we may do so immediately by choosing that
.
In this case the 
symmetry requirement
gives two possible solutions for region 3
:
where the + sign is for the symmetric ( even) solution
and the - sign is for the antisymmetric ( odd) solution.
On region 2 
we expect some sort of oscillatory function,
for which the obvious 
choices are
(3)
where the - sign is chosen for the ( odd)
function
for the following reason:
BOUNDARY CONDITIONS:
We must always satisfy the matching condition
for the wavefunction [
must be continuous]
and the matching condition for its spatial derivative
[
must also be continuous (except where
the potential is infinite)]
at the boundaries 
and 
.
The first matching condition immediately implies that
must be positive at 
,
since we chose 
positive.
For the odd function this mandates the negative sign
in Eq. (3) above.
If we now explicitly apply the matching condition
for 
at the boundaries, we get
(4)
where 
is the magnitude of 
at the boundary.
The matching condition for the derivative gives
(5).
Dividing Eq. (5) by Eq. (4) gives
(6).
Adding the squares of Eqs. (4) and (5) gives
(7).
APPLYING the SCHRÖDINGER EQUATION:
How do these guesses fare with our original equation?
On regions 1 and 3 we get
,
which ensures
(8)
since E < 0 is the same throughout.
On region 2 we have
or
(9).
Substituting these values for 
and k
back into Eqs. (7) and (6) gives
(10)
and 
(11),
respectively.
Equation (11) implies restrictions on the allowed values of E.
This is anticipated [remember, E is quantized]
but you may be surprised to find a transcendental
equation governing E. There is no algebraic solution
to Eq. (11)! [Actually, Eq. (11) is two transcendental
equations for 
.
As n and 
increase,
we alternate between even and odd solutions.]
If we define 
and
then Eq. (11) reads 
,
which one can plot up and solve graphically for the
allowed values of 
(and therefore 
).
For a detailed description of how to do this,
see pp. 156-162 of French & Taylor,
An Introduction to Quantum Physics.
ARE THERE ANY BOUND STATES?
Under what circumstances does Eq. (11) have a solution?
On the one hand, the general rule that confinement costs
energy would seem to dictate that a narrower well must be
deeper in order to ``hang on to'' a particle:
smaller L (or m)
should require larger 
.
The definition of 
reflects this aspect of the problem:
is smaller
for smaller 
and/or smaller 
.
However, 
while
, so that
the two must intersect somewhere, no matter how small
is.
Thus there is always at least one
(even) bound state for this potential!
The apparent paradox is resolved when we realize that
the exponentially decaying ``tails'' of
penetrate deeper and deeper into the classically forbidden region
as 
gets smaller and smaller, until the region
where 
is sinusoidal (inside the well) becomes a
negligible point at the centre of a wavefunction
that decays away exponentially from a centre cusp!
The stability of this solution
is extremely sensitive to the ``flatness'' of V = 0 in regions
far from the well, for obvious reasons.
An interesting limit is obtained by allowing the well
to shrink 
while holding constant the ratio
(so that 
in compensation).
This is called the delta function potential.
IS THAT THE WHOLE STORY??
After all this work, what have we learned?
We know 
everywhere to within a normalization constant A
which can be found by applying
if we need it
( if we want to calculate expectation values)
and we have what we need to find
(and therefore 
and 
) for the
stationary states allowed in this potential well.
It would be nice to have a tidy algebraic solution,
but even simple problems are not necessarily nice!
If you want exact solutions, you will have to solve the
transcendental equations each time you specify the
parameters 
,
L and m which govern the
physics of this problem. However, it is possible to
make many qualitative obervations (see class notes)
based on simple right-hemisphere graphical arguments.
We may also examine some limiting cases:
DEEPLY BOUND STATES:
If 
,
the lowest few eigenstates will have energies
that are only a little above the bottom of the well
[
,
where 
].
Then Eq. (11) reads approximately
or, even more approximately,
.
You may want to play with this approximation to see
the spectrum of deeply-bound states.
Note that 
,
so in the limit of the infinite square well
the solutions are simply
,
which is satisfied for 
.
Check that this agrees with the formula you know already,
bearing in mind that here we have defined the top
of the well to have V = 0....
UNBOUND STATES:
In all the equations above we have assumed E < 0 (bound states).
What happens when E > 0?
Taking the equations at face value,
we would conclude that 
is imaginary,
meaning that our initial assumption of exponentially decaying
solutions outside the well was incorrect and that
must be sinusoidal (oscillatory) everywhere.
This is precisely the case. See how far you can get
assuming that what we have written so far still applies....