ELECTROLYSIS O LEVEL CALCULATIONS

 

            Still In  our  Electrolysis  series  will be looking today some  basic  electrolysis calculations , if  you have  not yet  started  the  basic  please click here

 

The Faraday constant

The Faraday constant is the single most important bit of information in electrolysis calculations. Make sure you really understand the next bit.

 

Coulombs

The coulomb is a measure of the quantity of electricity. If a current of 1 amp flows for 1 second, then 1 coulomb of electricity has passed.

That means that you can work out how much electricity has passed in a given time by multiplying the current in amps by the time in seconds.

Number of coulombs = current in amps x time in seconds

If you are given a time in minutes or hours or days, then you must convert that into seconds before you do anything else.

For example, if a current of 2 amps flows for an hour, then:

Number of coulombs = 2 x 60 x 60 = 7200

(60 minutes in each hour; 60 seconds in each minute.)

That’s easy!

 

The Faraday

Electricity is a flow of electrons. For calculation purposes, we need to know how to relate the number of moles of electrons which flow to the measured quantity of electricity.

The charge that each electron carries is 1.60 x 10-19 coulombs. If you ever needed to use it in an exam, you would be given the value.

1 mole of electrons contains the Avogadro constant, L, electrons – that is 6.02 x 1023 electrons. You would also be given that in an exam if you needed to use it.

That means the 1 mole of electrons must carry

6.02 x 1023 x 1.60 x 10-19 coulombs

= 96320 coulombs

This value is known as the Faraday constant.

You may come across the formula F = Le, where F is the Faraday constant, L is the Avogadro constant and e is the charge on an electron (in terms of the number of coulombs it carries). We have just used that without actually stating it – it is basically obvious!

 

The numbers we are using here are rounded off. The calculation just shows you how to work it out if you have to, but doesn’t give the normally-used value. For exam purposes, the value of the Faraday constant is usually taken as 9.65 x 104 C mol-1 (coulombs per mole). This is another number you are unlikely to have to remember.

That is 96500 coulombs per mole.

So 96500 coulombs is called 1 faraday. Notice the small “f” when it is used as a unit.

Whenever you have an equation in which you have 1 mole of electrons, that is represented in an electrical circuit by 1 faraday of electricity – in other words, by 96500 coulombs.

Using the Faraday constant in calculations

Electrolysis calculations are no more difficult than any other calculation from an equation. In fact, you may well have done them as a part of whatever course you did before you started doing A level.

We will just look at four examples.

 

Example 1

Calculate the mass of silver deposited at the cathode during the electrolysis of silver nitrate solution if you use a current of 0.10 amps for 10 minutes.

F = 9.65 x 104 C mol-1 (or 96500 C mol-1 if you prefer). Ar of Ag = 108.

The first thing to do is to work out how many coulombs of electricity flowed during the electrolysis.

Number of coulombs = current in amps x time in seconds

Number of coulombs = 0.10 x 10 x 60 = 60

Now look at the equation for the reaction at the cathode:

Just as with any other calculation from an equation, write down the essential bits in words:

1 mol of electrons gives 1 mol of silver, Ag.

Now put the numbers in. 1 mol of electrons is 1 faraday.

96500 coulombs give 108 g of silver.

So, if 96500 coulombs give 108 g of silver, all you have to do is to work out what mass of silver would be produced by 60 coulombs.

Mass of silver = 60/96500 x 108 g = 0.067 g

 

 

Example 2

This example shows you how to do the calculation if the product you are interested in is a gas.

Calculate the volume of hydrogen produced (measured at room temperature and pressure – rtp) during the electrolysis of dilute sulphuric acid if you use a current of 1.0 amp for 15 minutes.

F = 9.65 x 104 C mol-1 (or 96500 C mol-1). The molar volume of a gas at rtp = 24 dm3 mol-1.

Start by working out how many coulombs of electricity flowed during the electrolysis.

Number of coulombs = current in amps x time in seconds

Number of coulombs = 1.0 x 15 x 60 = 900

Now look at the equation for the reaction at the cathode:

Write down the essential bits in words:

2 mol of electrons give 1 mol of hydrogen, H2.

Now put the numbers in. Two moles of electrons is 2 faradays.

2 x 96500 coulombs give 24 dm3 H2 at rtp.

So, if 2 x 96500 coulombs give 24 dm3 H2, work out what volume of hydrogen would be produced by 900 coulombs.

Volume of hydrogen = 900/(2 x 96500) x 24 dm3 = 0.11 dm3

Don’t quote your answer beyond 2 decimal places. The current and the molar volume are only quoted to that degree of accuracy.

Example 3

This example shows you what to do if the question is reversed.

How long would it take to deposit 0.635 g of copper at the cathode during the electrolysis of copper(II) sulphate solution if you use a current of 0.200 amp.

F = 9.65 x 104 C mol-1 (or 96500 C mol-1). Ar of Cu = 63.5.

This time you can’t start by working out the number of coulombs, because you don’t know the time. As with any other calculation, just start from what you know most about. In this case, that’s the copper, so start with the electrode equation.

Write down the important bits of this in words:

2 mol of electrons give 1 mol of copper, Cu.

Now put the numbers in. 1 mol of electrons is 1 faraday.

2 x 96500 coulombs give 63.5 g of copper.

You need to work out how many coulombs give 0.635 g of copper.

Number of coulombs = 0.635/ 63.5 x 2 x 96500 = 1930

Now what?

You know how many coulombs you need, and you know what the current was in amps. You have got all the information you need to work out the time.

Number of coulombs = current in amps x time in seconds

1930 = 0.200 x t

t = 1930/0.200 = 9650 seconds.

Don’t waste time trying to convert that into minutes or hours (unless the exam question specifically asks you to).

 

 

Special  thanks to www.chemguide.co.uk

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