The
Thistle Tube Experiment
By Mike
Johnston
Copyright
2003
This
paper deals with my observations of a very simple experiment. One
that many readers will already be familiar with from High School
chemistry classes. My reason for addressing this experiment here is
that it is indeed simple and easily understood but at the same time
it lends itself perfectly to my goal of illustrating the fact that a
container of water, with electrolyte, is not without
electrical energy. It is in fact a source of electrical energy
just like the power source that is used to operate the cell. I think
that this concept needs to be thoroughly understood before real
advances can be made in improving the efficiency of the electrolysis
process. For that matter, water itself is electrically neutral but
this does not imply that it is without electrical energy. A more
in-depth explanation of the details of this concept are to be posted
here soon but for now I want to examine this particular experiment
from perhaps a slightly different perspective than is usually seen.
The
illustration above depicts the thistle tube experiment as it is
commonly done. We see the container (a) consisting of the thistle
tube (b) through which the water and electrolyte mixture (c) is
added, a connecting tube (d) and two separate fluid reservoirs with
petcocks at the top (e). There is one electrode in each fluid
reservoir chamber (presumed to be made of a metal which is chemically
inert to attack by the electrolyte being used) (f) which are
connected to the leads from our DC power source (g).
When a direct current power source is connected to the
leads electrolysis occurs in the unit. Hydrogen gas is produced at
the cathode and Oxygen gas at the anode. The power that is supplied
by the power source is said to be being converted to stored energy in
the form of the released Hydrogen atoms. Efficiency is fairly good.
This is the extent of the explanation on energy interactions that is
usually given with this experiment.
Of course if you add a PH indicator to the solution you
can see that, initially, the solution is either acid (indicator turns
pink) or basic (indicator turns blue) overall, depending on the
electrolyte being used. Let's say we use Sulfuric Acid as the
electrolyte. The two ions present are H+ and SO4--. The solution is
acidic. The indicator turns the solution pink. In each chamber there
are an equal number of positive and negative ions. The SO4-- ions
have a negative electrical charge of .98 volts and the H+ ions have a
positive electrical charge of 0 volts. The negative is the greater
charge and so the solution is electrically negative or, acid. Even
though there are an equal number of both positive and negative ions
and for that reason the solution can be said to be “balanced”
chemically, it is not balanced or neutral electrically.
After
power is applied and the experiment operates for a while, we see that
the solution in the cathode chamber becomes more acidic and the
solution in the anode chamber becomes more basic. This is because
positive H+ ions in the cathode chamber are being converted to
hydrogen gas and the negative SO4-- ions are being converted to
oxygen gas in the anode chamber. Because of the way that the device
is constructed these ions are not able to travel to the opposite
sides and react. If the experiment is allowed to run long enough
electrolysis slows and eventually stops. This is due to the ongoing
buildup of oppositely charged ions in each chamber.
Here
is where it gets interesting for me. Remember that the electrons that
are picked up at the cathode are leaving the solution as hydrogen
gas. This represents the energy that is being contributed to the
experiment by the external power source. If this is all we consider
then the experiment makes a good illustration for the conservation of
energy rule and for the second law of thermodynamics. The applied
energy is all accounted for (with minor resistance losses) and the
world is happy.
But this isn't all that is going on here. Why, for
example, does electrolysis stop after the buildup of ions as
described above? There are still more ions available to react but
since there is now a surplus of ions in the chamber (s) which have
the same polarity as the chamber's electrode SO4-- or OH- in the
cathode chamber and H+ in the anode chamber) a resistance is set up.
One could call it a type of CEMF ( counter electromotive force). The
electrical charge in the chambers builds up gradually as electrolysis
progresses. For every electron that leaves the solution as hydrogen
gas in the cathode chamber one negative ion is created in that
chamber (the opposite being the case in the anode chamber). As the
negative ions build up they produce a counter negative charge which
eventually becomes equal to the negative charge of the cathode that
is being supplied by the outside power source. This gradual buildup
is why electrolysis slows and finally, when the charges in the cell
are equal to the electrode charge, electrolysis stops.
At this point we have a surplus of negative ions in the
cathode chamber and a surplus of positive ions in the anode chamber.
Between the two types of ions there is a difference of electrical
potential as I pointed out earlier. In other words we have a
measurable potential difference between the two chambers. A voltage.
The fact that one chamber is basic and the other acidic verifies this
fact. If you disconnect the unit from the power source and connect a
sensitive multimeter between the leads of the unit you may be able to
measure the potential difference in this manner too.
If we could cause a current to flow between the two
chambers, by connecting the leads to each other for example, how much
current could flow? Current would flow until the charges in the
chambers were equal. The amount of current that could flow would be
exactly equal to the amount of current that flowed while the unit was
under power from the outside source. Remember that current (amps) is
measured in the number of electrons that flow and that for every
electron that entered the unit and joined with a positive ion a
negative ion with one surplus electron was created (again, the
opposite is true in the anode chamber). So the amount of stored
current in the chambers is then equal to the amount of current which
flowed into the cell. In effect we have charged a “battery”
by operating the unit as an electrolysis cell and the amount of
potential energy stored in our “battery” (as oppositely
charged ions) is exactly equal to the amount of energy that
charged this battery.
Now consider that the energy that was delivered to the
cell is already spoken for as the potential energy stored in the
hydrogen atoms that were released from the cell! We now have DOUBLE
the energy between the hydrogen gas and the ions in the chambers as
what was originally applied. The only difference that one can point
to is that the applied voltage and the voltage of either of the now
existing sources of stored energy might be different. The voltage of
the hydrogen is 1.23 volts when reacting with oxygen in a fuel cell
and the stored energy between the chambers is .98 volts. But voltage
can be manipulated so the real test is that there are surplus
electrons available in both cases and positive (lacking) places for
the surplus electrons to be donated to or shared with.
The only explanation for this situation is the fact that
both the outside DC power source and the electrolysis cell are
power sources of slightly different types. Both devices are
contributing their individual energies to move electrons through the
system with the hydrogen gas that is released being a by-product of
the conduction process through both of the power sources. In this
case both the second law of thermodynamics and the conservation of
energy rule are preserved and yet the outcome is having twice the
potential energy now available as was originally applied by the
external power source alone.
-END-
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