standard solutions/vol/mol

"can someone explain this, if wanted to make say a 10% solution of cuso4 would i have to heat the cuso4 to remove the h2o weigh 10g of the anhydrous crystals and then add that to 90ml/g of h20?"

You don't have to heat just to simplify the arithmetic. Figure out how much of the pentahydrate is equivalent to ten grams of the anhydrous salt, and add water as needed (subtract the amount of water from the pentahydrate from the total amount of water you were supposed to add to the anhydrous salt).

Also, there's the formula C(a)V(a)==C(b)V(b) where C(a) and V(a) are the concentration and volume of solution a and similarly for solution b. It's very useful.

sparky (~_~)

% vol usually means (vol of solute)/(vol of solution)*100%. So a 10% vol ethanol means in 100 ml, 10 ml is EtOH. That, however, does not necessarily mean there is 90 ml of H2O, though, as volumes are not always additive due to molecular interactions (like EtOH and H2O decrease in volume when mixed). So to make a 10% ethanol solution, you would pour out 10 ml of EtOH, and add water until the total volume is 100 ml.

Molarity is (mols solute)/(L solvent). This is a solute-free basis, meaning it is a measure that is indepent of all the other stuff that might be in the solution (other than the solvent). Because the denominator is L of solvent and not L solution, we dont have to worry about non-additive properties like how much space the solute(s) takes up.

So a 1 M NaCl solution has 1 mol of NaCl in 1 L of H2O.

For a 1 M solution of Na+ (aq), we can have:

1 mol NaCl in 1 L H2O, or

0.5 mol NaOH and 0.5 NaCl in 1 L H20, or

1 mol NaOH and 2 mol KCl in 1 L H2O, etc you get the point.

As long as there is 1 mol of Na+ ions in 1 L of H20, that is a 1 M Na+ (aq) solution, regardless of all the other crap in there, like the KCl or the OH- ions.

Isn't molarity great?

[Edit]: And then there's molality... look that one up. It's even more useful.

[Edited on 6/26/2009 by Saerynide]

I realise you're getting a bit fed up with all my questions so if you could tell me if i have this correct or not.
Having read this thread and the links provided (Thanks again for those) i think i'm about ready to spend a couple of evenings making up my solutions,my plan is to make 50 10% solutions (i only have 50 bottles) and here's how i intend to do it, but i need to know if i have right or i'd have cocked up a lot of solutions by Monday

10% copper sulphate :- cu 64 s 32 4x o 64 = 160 5(h2o) 2x h 2 o 16 = 18 x 5 = 90 so according to my calculations copper sulphate pentahydrate is about 35% h2o so to make a 10% solution i would need to weigh out about 13g and then add h2o to 100ml or 52g then up to 400ml to make 400ml of solution.

10% hydrochloric acid :- if i use 36% conc hcl i would need to measure 29ml of conc hcl then add h20 to 100ml or 116ml conc then h20 to 400ml to make 400ml of solution.

10% nitric acid :- if i use 70% conc hno3 i would measure 15ml of conc hno3 and then add h20 to 100ml and so on!!

For sulphuric acid at 98% it should be approx 10ml then to 100ml.

For anhydrous solids like potassium chloride/ferrocyanide/permanganate etc it should be 10g solid then add h2o to 100ml.

I've rounded up/down so please don't point out the lack of precision i just need to know if i have got the hang of working it out.

BTW I haven't been working on this for a whole month (just in case you think i'm really slow)

I'm going to post a list of all the solutions i intend to make and would be grateful for any don't bother with that one or you should make this one stronger/weaker and don't forget this one type suggestions.

I don't mind which one i use!! I just want to be sure that i have worked it out correctly and know how to convert one to another.

I think i have it

1mol/l of cuso4 would have 160g of solute in 1000ml of solution and be a 16% solution.
1mol/l of feso4 would have 152g of solute in 1000ml of solution and be a 15.2% solution.
1mol/l of nacl would have 58.5g of solute in 1000ml of solution and be a 5.85% solution.
1mol/l of lico3 would have 67g of solute in 1000ml of solution and be a 6.7% solution.
And so on.
This has made acids a bit confusing ie h2so4 should be 100 but i've never come across anything over 98,hno3 should be 63 but mine is 70 and fuming is 99, hcl seems to work out ok.
But i think i'll ponder that one tomorrow!!
Thanks for the help chaps

I have a cunning plan(i don't have a CRC hand book and can't find a copy on line) i'm going to make my 400ml solution(the cuso4 is currently dissolving) then measure out 100ml weigh it and as i know their is 16g of solute once i have the total weight i can work out the weight percentage.
I love it when a plan comes together

I didn't know that, but added water to 350ml and then to 400ml just to be sure
What do you think of my system ?

Cunning!!

I tried to make a 1mol/l of potassium dichromate,i don't think it's going to work