Principles Of Ionization (1960)
Sign in to track this film in your collection or want list.
Creator: A/V Geeks 16mm Films
Description: Shows the properties of different solvents, including their electrical conductivity or lack of it. Shows how they affect the boiling point of water. Demonstrates ion migration during electrolysis. We digitized and uploaded this film from the A/V Geeks 16mm Archive. Email us at footage@avgeeks.com if you have questions about the footage and are interested in using it in your project.
Transcription
[Music] we have previously seen that adding a nonvolatile solute to a solvent changes the Vaper pressure of the solvent and therefore its Boiling Point now different classes of substances uh produce different effects on the boiling point change those substances which are known as non-electrolytes all behave in about the same fashion to produce one kind of effect on the boiling point other classes of substances those known as acids bases and salts which we have previously studied produce abnormally great effects on the boiling point of the solvent and we wish to illustrate uh both of these effects today we are now examining a sample of pure distilled water which is boiling in the test tube we have inserted a thermometer above our boiling distilled water and you will observe that the distilled water is boiling at 100° Centigrade on this thermometer we will now obtain the boiling point of the solution of Ura which is a solute that behaves normally this solution has a concentration of 2 molar which means that it contains uh two molecular weights of Ura dissolved in 1,000 G of water I'll add a few milliliters of Ura to the test tube then place the burner under the tube cause the solution to boil and we will then determine its boiling point you can see that the Ura solution boils at about 103° Centigrade next we will determine the boiling point of a two molal solution of sodium chloride in water this solution is made up in such a way that two formula weights of sodium chloride are dissolved in each 1,000 G of water we'll now place the burner under this solution and observe its boiling point the sodium chloride solution boils at about 105° Centigrade so the elevation caused by the presence of the sodium chloride solute is not quite twice as much as that caused by the Ura but is substantially greater than that caused by the Ura in your previous study of solutions you saw that the vapor pressure of the solution and therefore also its boiling point was changed by the presence of a nonvolatile solute and it's the only important factor to be considered is the number of solute particles present in a given number of solvent particles now we've just compared the boiling points of two solutions Ura and salt of equal molality this means that we've taken two formula weights of Ura and two formula weights of sodium chloride and added them to in each case 1,000 G of water now the Ura solution had a higher boiling point than pure water the presence of the nonvital Ura then did raise its boiling point and it did so because a certain number of Ura particles were present in the case of sodium chloride Solutions however the boiling point was raised to a higher temperature than that of the Ura even though we had two formula weights of each solute present and the explanation for this is that in the sodium chloride solution the formula weight of sodium chloride in solution was dissociated into a sodium ion and a chloride ion and therefore we have in the salt solution approximately twice as many particles as we do in the Ura solution and these this additional number of particles uh caused the higher elevation of the boiling point in this solution the apparatus uh which you see has been adapted to show us the uh roughly at least the conductivity of several different solutions uh the calibrations on the instrument on the right uh have no actual physical meaning and simply will indicate the uh extent to which the solution being tested conducts the electric current uh these two small copper wires are connected to a source of direct current and we see that essentially no current is Flowing between the two copper electrodes next we'll test the conductivity of a Ura solution similar to the one that we used in the boiling point experiment and again we observe no conductivity now next we'll test a dilute solution of acetic acid and we get a reading on our scale of between 2 and A2 and three units and finally we'll test the conductivity of a sodium chloride solution again similar to the one we used in the boiling point experiment and this time we obtain a reading of about 4 and2 units from this experiment then we see that the solute which has the highest conductivity sodium chloride is also the solute which produced most abnormal effect on the boiling point our conductivity experiment showed that for Pure Water Gave no conductance that we could measure with our instrument and neither did Ura solution this of course is because electrical conductance depends upon the presence of charged particles or ions and these Solutions contain very small uh concentrations of charged particles with acetic acid uh we measured rather low conductivity this is true because while acetic acid and water react to form hydronium ions and acetate ions the number of these ions present at equilibrium is very small compared to the number of unionized acetic acid molecules so the small number of ions produces a low conductivity in the case of Salt Solutions or sodium chloride Solutions uh all of the sodium and chlorine is present in the form of charged particles the concentration of these ions is high and the solution is therefore a good conductor the conductivity of a solution depends not only on the solute but on the Sol vent as well in this small Beaker we placed a few milliliters of a solution of phosphoric acid in alcohol and you'll notice that the solution conducts uh the current to a small degree now to this alcohol solution of phosphoric acid We'll add a few milliliters of distilled water which is itself as we saw earlier a nonconductor and you'll observe that the addition of the non-conducting distilled water to the solution of phosphoric acid and alcohol has resulted in a mixture which conducts the current very well in fact the original conductivity of this solution was probably due to traces of moisture which dissolved in the alcohol from the air in the room first we wish to examine the conductivity of solutions of two acids acetic acid and hydrochloric acid and then see how the differences in conductivity have implications in other sorts of chemical reactions in this Beaker we have a solution of acetic acid about six normal you can see that it has a some conductivity but not very much we'll then replace this with a solution of six normal hydrochloric acid you see the cond conductivity is substantially greater now we'll compare the rates of reaction of these two acids with zinc we saw previously that Solutions of hydrochloric acid in water were much better conductors than were Solutions of acetic acid now when acids react with active metals such as zinc the reaction is actually between the hydrogen ion and zinc and therefore Solutions which are more highly ionized should have a higher concentration of hydrogen ion in their Solutions this means that hydrochloric acid should react with zinc more rapidly than cedic acid and we can test this prediction uh by experiment in the two test tubes we've placed small quantities of Mossy zinc and to the tube on the left I'll add a few milliliters of dudic acid to the other tube I'll add an approximately equal amount of dute hydrochloric acid and you can see a very definite difference in the rate of reaction this illustrates a rather general property because other things being equal ionized solutes will ordin react more rapidly than molecular solutes and we see an example of this phenomena in the reaction of these two acids cic acid and hydrophic acid with zinc the ionized acid reacting rapidly and the weakly ionized acid reacting very slowly when we tested the conductivity of phosphoric acid in alcohol we found the solution was not a very good conductor but then when we added water which is also not a good conductor we found that the mixture then conducted very nicely the explanation of this is that the water molecules interact with the phosphoric acid molecules forming hydronium ions and dihydrogen phosphate ions and these ions which were not present before are the cause of the conductivity in the mixture of water and alcohol and phosphoric acid then we tested Solutions of two different acids with zinc we found that when a low concentration of hydronium ions was present from acetic acid that the reaction was very slow and small amounts of hydrogen were evolved however when we used large amounts of hydronium ion these can be obtained from any strong acid in this case we used hydrogen chloride we found that this High concentration of hydronium ions from the hydrogen chloride resulted in a rapid reaction and the rapid production of hydrogen so the rate of evolution of hydrogen then when active metals such as zinc react with acids depends primarily on the concentration of the hydronium ion in the solution when an electric current is passed through a salt solution the ions in the solution actually migrate or travel to the respective po the positive ions moving toward the negative pole and the negative ions moving toward toward the positive pole in the experiments that you've seen up to this time however all of the ions involved have been colorless and this migration was not observed this experiment actually demonstrates the migration of ions during electrolysis in order to demonstrate this phenomena we've used colored ions the bottom of this u tube contains a mixture of Blue Copper ions and yellow or orange dichromate ions ions yellow in the concentration we're using and the mixture appears green these two ions Solutions of these ions have been mixed with augur a material which sets up much like jelly this is to keep the ions from diffusing too rapidly above the augur copper D chromate mixture we've placed on each side a layer of clear augur and above the clear augur a solution of dilute uric acid and a solution of potassium nitrate now this apparatus uh will be connected to an electrolysis setup two electrodes will be inserted into the solution these will be attached to a source of direct current and as the electric current is passed through the solution you can see the Blue Copper ions migrating toward the cathode and the yellow di chromate ions migrating toward the ano now this migration takes about 45 minutes and in order to speed up sequence we've used the technique of time-lapse photography so that what you will see in about the next 8 or 10 seconds actually took about 45 minutes in this film we've seen the effect of different types of solutes on the boiling point of water we've examined the electrical conductivity or lack of conductivity Solutions of several different materials and these results were correlated with their effect on the boiling point of water then we also saw how during electrolysis the actual migration of ions can be demonstrated [Music] yeah
Online Copy: https://www.youtube.com/watch?v=mHtwbma1TN8
Metadata Source:YouTube
No holdings listed.
No related films.
Record added: 2026-05-28 18:01:31