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Offline tpowell35

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Mass Percent Question
« on: July 27, 2012, 01:18:42 PM »
Question:
 A 2.769 g sample containing an unknown amount of AsCl3 was dissolved into a NaHCO3 and HCl aqueous solution. To this solution was added 1.550 g of KI and 50.00 mL of 0.00976 M KIO3. The excess of I3- was titrated with 50.00mL of 0.02000 M Na2S2O3 solution. What was the mass percent of AsCl3 in the original sample?

What I've done:

From answering the question wrong and getting some feedback, I know that I have to a) determine the limiting reagent from the KI and KIO3 reaction, b) determine the amount of I3- produced from said reaction and then c) determine its excess from titration with Na2S2O3, which will be equal to the moles of As3+ in the original sample.

So...

a) The first reaction is IO3- + 8I- + 6H+  ::equil:: 3I3- + 3 H2O.

Moles of KI = 1.550g * 1mol/166.00277g = 0.009337 mol
Moles of KIO3 = 0.050L * 0.00976 M = 0.000488 mol

b)KIO3 is the limiting reagent, right? So moles of I3- = 0.000488 * 3 = 0.001464 moles.

c) This reaction is I3- + 2S2O32- ::equil:: 3I- + S4O62-.

The 0.001464 moles of I3- would react with S2O32-, leaving 0.0009640 moles of I3-.

(0.05000 L * 0.02000 M = 0.001000 moles S2O32-, 1:2 ratio requires 0.0005000 moles of  I3- to react).

So... if the moles of  I3- = the moles of As3+, then there were 0.0009640 moles of As3+ in the original sample, * the molecular weight of arsenic is 74.92g/mol = 0.072222g/2.769g (weight of sample) * 100 = 2.608%.

But this is obviously not the answer. I feel like I'm missing some key component due to lack of sleep and this being finals week. Can anyone clarify or tell me where I'm screwing up?

Thanks!

Offline Borek

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Re: Mass Percent Question
« Reply #1 on: July 27, 2012, 03:13:36 PM »
Perhaps I am missing something, but it looks to me like you have calculated mass percent of As, not of AsCl3.

That is assuming everything else is OK, I have skimmed over the solution and it looks like it is OK, but then I am in a vacation mode  :P
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Offline persianprincess

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Re: Mass Percent Question
« Reply #2 on: July 28, 2012, 04:19:18 PM »
Yes, IO3 is the limiting reagent. First you'd have to find the amount reacted by subtracting the moles of I3 by the excess. Sooo

(0.05)*(0.00976 M KIO3)*(3 mol I3 / 1 mol IO3) = 0.001464 moles I3

Now we find the excess.

((0.02)(0.05))/2 = 5 x 10^-4 moles I3

Now we find the amount reacted.

0.001464- 5 x10^-4 = 9.64 x 10^-4 moles I3 reacted

So..

9.64 x 10^-4 AsCl3 * (181.28 g / 1 mol) = 0.1748 g AsCl3

Finally, to find the mass percentage of AsCl3 in the original sample...

0.1748/2.769 *100 = 6.31%

That should give you your answer.

Offline tpowell35

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Re: Mass Percent Question
« Reply #3 on: July 28, 2012, 05:34:40 PM »
Thanks to both of you. I knew it was something ridiculously obvious, if it were a snaked I'd have been bitten to death 10 times over...  :P

Offline Borek

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Re: Mass Percent Question
« Reply #4 on: July 29, 2012, 03:26:49 PM »
9.64 x 10^-4 AsCl3 * (181.28 g / 1 mol) = 0.1748 g AsCl3

Finally, to find the mass percentage of AsCl3 in the original sample...

0.1748/2.769 *100 = 6.31%

That should give you your answer.

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