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Offline Rutherford

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Serious inorganic problem
« on: April 15, 2012, 12:06:14 PM »
Some sample of NaOH absorbed CO2 and partially transformed into Na2CO3. 1g of that sample was dissolved in water so that the volume of the solution gets 100cm3. 20cm3 of that solution were titrated with HCl (c=0.2mol/dm3) with phenolphthalein and 24.22cm3 of the HCl solution were spent. Another 20cm3 of the beginning solution were titrated with the same HCl solution with methyl orange and the solution was heated so that CO2 dissapears from it. 24.7cm3 of HCl were spent. Calculate the mass share of Na2CO3 in the sample.

Tried many times to solve, but I couldn't understand this:
1.Is there NaHCO3 in the sample?
2.Why were different quantities of HCl spent? Is it related to the heating?
3.Why were different indicators used?

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Offline Rutherford

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Re: Serious inorganic problem
« Reply #2 on: April 16, 2012, 08:13:39 AM »
Ok, there are NaOH, NaHCO3 and Na2CO3 in the sample. If I understood well: OH- will react with HCl first and it can't be detected with an indicator. Then CO32- reacts which can be seen because of phenolphthalein, so 24.22cm3 of the HCl solution were spent on these two. When using methyl orange, after the previous two, HCO3- react with HCl, and now are 24.7cm3 of HCl spent. V1-V2 is spent on HCO3-, but there is said that it is spent on CO32-. Don't understand that part.

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Re: Serious inorganic problem
« Reply #3 on: April 16, 2012, 08:44:35 AM »
Ok, there are NaOH, NaHCO3 and Na2CO3 in the sample.

Can NaOH coexist with NaHCO3?
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Offline Rutherford

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Re: Serious inorganic problem
« Reply #4 on: April 16, 2012, 08:54:11 AM »
Is V2-V1 then used for Na2CO3?

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Re: Serious inorganic problem
« Reply #5 on: April 16, 2012, 09:22:00 AM »
Yes. That's what is written on the the page I linked to, isn't it?
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Offline Rutherford

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Re: Serious inorganic problem
« Reply #6 on: April 16, 2012, 09:43:34 AM »
Yes but the part with NaHCO3 confused me. Got the right result (5%). So, in similar problems I have to know what indicator is used for what base in the sample. Thanks again.

Offline Rutherford

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Re: Serious inorganic problem
« Reply #7 on: April 16, 2012, 02:13:08 PM »
Managed to do it, but after few hours, when I tried to do it again I got 2 times smaller result  ???. Don't know where I've mistaken, so I need help.
Calculated the n of HCl that was used to titrate Na2CO3
n(HCl)=(0.0247-0.02422)*0.2=9.6*10-5mol. n(Na2CO3)=n(HCl)/2=4.8*10-5mol.
c of Na2CO3 is the same in the 20cm3 and in the 100cm3. c=4.8*10-5/0.02=2.4*10-3mol/dm3.
n of Na2CO3 in 100cm3 is n=2.4*10-3*0.1=2.4*10-4mol
m=2.4*10-4*106=0.025g or 2.5%. The right answer is 5%.

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Re: Serious inorganic problem
« Reply #8 on: April 16, 2012, 04:46:15 PM »
n(Na2CO3)=n(HCl)/2=4.8*10-5mol

Why do you divide by two? What is the reaction equation?
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Offline Rutherford

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Re: Serious inorganic problem
« Reply #9 on: April 17, 2012, 08:00:10 AM »
I think that I know what you mean. I used this equation:
Na2CO3+2HCl :rarrow: 2NaCl+H2O+CO2, but the correct one would be:
Na2CO3+HCl :rarrow: NaHCO3+NaCl so it's not divided by 2. Right?

Offline Rutherford

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Re: Serious inorganic problem
« Reply #10 on: April 17, 2012, 03:11:17 PM »
After a lot of thinking and by the help of the link you gave me I think that I understood now. I am sorry for being so dumb, but I think this problem is a little too hard for just one year of studying chemistry in high school.

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