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Offline Hemidol

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Molarity
« on: October 09, 2009, 11:56:21 PM »
Assume that 21.9675 g of (NH4)2SO4 is dissolved in enough water to make 500.0 mL of solution.
(a) What is the molarity of (NH4)2SO4?
(b) What is the molarity of the ammonium cation?
(c) What is the molarity of the sulfate anion?
The molar mass of (NH4)2SO4 is 132.140 g/mol.

Here is my work thus far:

(a) 21.9675g (NH4)2SO4 * (1 mole / 132.140g/mol) = 0.166226524 mole
(0.166226524 mole / 500 mL) * (1000 mL / 1 L) = 0.332488 M

Question relating to b-c, for finding the molarity of a specific cation / anion can I just find the molar mass of that specific cation / anion and do what I have just done here?

Thanks for reading.

Offline MrTeo

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Re: Molarity
« Reply #1 on: October 10, 2009, 12:30:27 AM »
Yes, because a salt is a strong electrolyte so in a watery solution we will find it fully dissociated in NH4+ and SO42-. Just pay attention to the fact that every mole of (NH4)2SO4 gives use twice the number of moles of cation.

Being more precise you could evaluate the hydrolysis of NH4+ which lowers the concentration of the cation and forms NH3 and H3O+, but as they don't give you the Kb you don't need to consider this fact.
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Offline Hemidol

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Re: Molarity
« Reply #2 on: October 10, 2009, 01:04:28 AM »
Yes, because a salt is a strong electrolyte so in a watery solution we will find it fully dissociated in NH4+ and SO42-. Just pay attention to the fact that every mole of (NH4)2SO4 gives use twice the number of moles of cation.

Being more precise you could evaluate the hydrolysis of NH4+ which lowers the concentration of the cation and forms NH3 and H3O+, but as they don't give you the Kb you don't need to consider this fact.
Snack for reply! ;)

Is that because in (NH4)2SO4 there is two mole NH4+ as indicated by the bolded two below?

(NH4)2SO4

Thus I can write:

(b) NH4+ has a molar mass of 15.018g

21.9675g (NH4)2SO4 * (1 mole / 132.140g/mol) * (2 moles NH4 / 1 mole (NH4)2SO4) * (15.018g / 1 mole NH4) = 4.993308839 / 500 mL * (1000 mL / 1 L) = answer

I have a feeling I did that incorrectly.

Offline plankk

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Re: Molarity
« Reply #3 on: October 10, 2009, 01:14:02 AM »
You don't need to use molar mass of cation or anion. You know the molarity of salt. You also know (for the formula (NH4)2SO4) that for one mole of you salt you receive (after dissolution) two moles of cation and one of anion. On the basis of that easy ratio calculate molarity of both ions.

Offline Hemidol

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Re: Molarity
« Reply #4 on: October 10, 2009, 01:22:35 AM »
You don't need to use molar mass of cation or anion. You know the molarity of salt. You also know (for the formula (NH4)2SO4) that for one mole of you salt you receive (after dissolution) two moles of cation and one of anion. On the basis of that easy ratio calculate molarity of both ions.


Ah I see. So then I can write:


21.9675g (NH4)2SO4 * (1 mole / 132.140g/mol) * (2 moles NH4 / 1 mole (NH4)2SO4) = (0.33248827 / 500 mL) * (1000 mL / 1 L) = 0.66497654 M NH4+

And then for S:


21.9675g (NH4)2SO4 * (1 mole / 132.140g/mol) * (1 moles SO4 / 1 mole (NH4)2SO4) = (0.33248827 / 500 mL) * (1000 mL / 1 L) = 0.166226524 mole
(0.166226524 mole / 500 mL) * (1000 mL / 1 L) = 0.332488 M SO4

Which doesn't make sense to me because how can SO4 anion have the same Molarity as the entire compound?  ???

P.S. Sorry for the double post.

Offline Borek

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Re: Molarity
« Reply #5 on: October 10, 2009, 04:41:02 AM »
Which doesn't make sense to me because how can SO4 anion have the same Molarity as the entire compound?

Thats OK - take a look at formula, it has stoichiometric coeffcient of 1.

(NH4)2SO4 -> (NH4)2(SO4)1

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