You're right - I'm sorry about that.

You’re right - a bad calculator mistake on my part. Hopefully the method still helps.

thanks for pointing that out mate i was so confused at what i had done wrong

nice, any chance you can share me the link to the video too?

@@samiultr huh?

You’re quite right - I mistyped a value into my calculator. I’m really sorry about that. The final pH is 3.88.

@@simonflynn4515 ah ok thank you 😊 the video was really helpful

This depends on how the buffer is formed. If I'm simply adding a salt to a weak acid, there is no reaction. We immediately arrive at a point on the titration curve. If, however, I add a strong alkali to an excess of weak acid, then there is a reaction (partial neutralisation) and I have to work out how much weak acid is left afterwards and how much salt is formed (I didn't have any before I added the weak acid and strong alkali together). This is why I did a number of examples. You always end up using the expression Ka = but how you determine the values to plug into this may vary depending on wht exactly it is you've added together to form your buffer.

@@simonflynn4515 Thank you so much! You have just saved my chemistry exam tomorrow morning:)

@@simonflynn4515 that makes so much sense, thanks so much!

I hope it went well.

I'm afraid not. My aim is to do videos that have longevity - sorry.

You would add it. But the point is that it does cancel

@@simonflynn4515 thanks sir. Your video are useful. I will defo be sharing your channel with new year 12’s!

I explained that the volumes cancel out (I’ve written it in blue). You can work out the concentrations here but you don’t need to with buffers. Either way, you get the same answer. Try it!

I'm not sure I did - I use the 'after' moles of 4.25 x 10^-3 weak acid and 3.75x10^-3 salt. Do you mind double-checking? Thanks.

Yes, actually you are right. My bad. Thanks again for the helpful video

Also this video was very helpful ty

There are no ICE tables in this video. ‘Before’ in the table you’re referring to is about the number of moles BEFORE you add the reactants together. This isn’t the same as an ‘Initial’ concentration in an equilibria. However, I didn’t need to do the ‘Before’ table again because I only needed to work out which of the weak acid and salt were being added to / decreased and just do the sum. Say if that doesn’t make sense.

@@simonflynn4515 ah yes I went through more examples and I understand better now, and I did mean the before and after. Thank you!

@@simonflynn4515 your buffer videos saved me for the 5 marker in p1 2023, thank you!

Thank you!

I don't need to plug in the concentration of the acis remaining providing I also only plug in the moles of the salt. Concentration is moles / volume. As the volumes are the same for the acid and salt, they cancel out and I can just use moles. Say if I've misunderstood your query. Thanks.

I used concentrations in the first two questions because this required either the same or fewer calculation. In the third, I explain why I don’t use concentrations - because the volumes cancel out. Providing your rearranged expression has the same number of [ ] above and below the fraction line (so the volumes cancel out), you can use moles or concentration. I’ve just don’t whichever is easier. I hope this helps.

@@simonflynn4515 howcome ka is in cm3 but the concentrations are in dm3 shouldnt they all be in the same units?

It doesn't feature in AQA's specification.

Can I ask why? I’m always up for constructive criticism as I’m sure you are.