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Electrolysis with inert electrodes (1 Viewer)
- Thread starter DAAVE
- Start date
smallcattle
Member
i think all you need to know is that inert electrodes will allow for slower reactions than the reactive metals
Nah not what I mean...
Say u electrolysise CuSO4.
U get copper on the cathode but u get oxygen gas at the anode because sulfate is too stable to be oxidised.
and theres more that we have to remember, I think the syllabus calls them 'selected solutions' but it doesnt actually tell us what they are... well yeah...
Say u electrolysise CuSO4.
U get copper on the cathode but u get oxygen gas at the anode because sulfate is too stable to be oxidised.
and theres more that we have to remember, I think the syllabus calls them 'selected solutions' but it doesnt actually tell us what they are... well yeah...
when u get a question, look at all the different species that could possibly be oxidised or reduced. eg. in a NaCl solution with inert electrodes, the Na+ ions cannot be oxidised and lose another electron to become Na2+, but it can be reduced. go through all the species like that, and then using the standards table thinggo find out the emf each half reaction produces - the one with the most positive value out of the oxidation equations u have written will be oxidised, and the same for reduction.
rumour
Active Member
I think the water will undergo electrolysis where there is an inert electrode, use the table to predict this.
selected solution can be in:
molten - which do not have water. so dont think anything about water
e.g. NaCl
Anode: Cl- ------> 1/2 Cl2 + e-
Cathode: Na+ + e- -----> Na (s)
dilute solution - this case you need to consider all possible solution that can be present in that electrolyte
e.g. NaCl possible ions present Na+, Cl-, H2O
Anode: Cl- ------> 1/2 Cl2 + e- E = -1.36V
H2O ------> 1/2 O2 + 2H+ + 2e- E = -1.23 V
Cathode: Na+ + e- -------> Na(s) E = -2.71 V
H2O + e- -------> 1/2 H2 (g) + OH- E = -0.83V
Look at the E value and use the one that requires less energy for the reaction to take place. this is the value closest to zero
:. Anode: H2O ------> 1/2 O2 + 2H+ + 2e- E = -1.23 V
Cathode: H2O + e- -------> 1/2 H2 (g) + OH- E = -0.83V
concentrated solution
taking same example. in this case there are more Na+ and Cl- ions than water
so once again look at the possible reaction above and determine which reaction is more likely to occur. This case
Anode: Cl- ------> 1/2 Cl2 + e- E = -1.36V
Cathode: H2O + e- -------> 1/2 H2 (g) + OH- E = -0.83V
molten - which do not have water. so dont think anything about water
e.g. NaCl
Anode: Cl- ------> 1/2 Cl2 + e-
Cathode: Na+ + e- -----> Na (s)
dilute solution - this case you need to consider all possible solution that can be present in that electrolyte
e.g. NaCl possible ions present Na+, Cl-, H2O
Anode: Cl- ------> 1/2 Cl2 + e- E = -1.36V
H2O ------> 1/2 O2 + 2H+ + 2e- E = -1.23 V
Cathode: Na+ + e- -------> Na(s) E = -2.71 V
H2O + e- -------> 1/2 H2 (g) + OH- E = -0.83V
Look at the E value and use the one that requires less energy for the reaction to take place. this is the value closest to zero
:. Anode: H2O ------> 1/2 O2 + 2H+ + 2e- E = -1.23 V
Cathode: H2O + e- -------> 1/2 H2 (g) + OH- E = -0.83V
concentrated solution
taking same example. in this case there are more Na+ and Cl- ions than water
so once again look at the possible reaction above and determine which reaction is more likely to occur. This case
Anode: Cl- ------> 1/2 Cl2 + e- E = -1.36V
Cathode: H2O + e- -------> 1/2 H2 (g) + OH- E = -0.83V
OK basically I've come up with some rules.
It is impossible to reduce aqueous solutions of things with potentials <-1V
It is really hard to oxidise things as the number increases (fluoride is hard to oxidise), however you can oxidise things like Cl if it has a high enough concentration.
It is really hard to oxidise ions like SO4 etc.
U can predict most of if by knowing them.
It is impossible to reduce aqueous solutions of things with potentials <-1V
It is really hard to oxidise things as the number increases (fluoride is hard to oxidise), however you can oxidise things like Cl if it has a high enough concentration.
It is really hard to oxidise ions like SO4 etc.
U can predict most of if by knowing them.