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percentage compositions (1 Viewer)

clicker

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a sample of impure Ba(NO3)2 is analysed by dissolving 0.222g of the mixture completely in water. excess Na2SO4 solution is added and a precipitate of BaSO4 is formed. the mass of the precipitate, after filtering and drying, is 0.182g .

calculate the percent of purity of the original Ba(NO3)2 sample.
 

jamesy_1988

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The percentage of Ba(NO3)2 in the sample is 70.45%, as per my calculations.

I will post the calculations when I have a bit more spare time

Jamesy
 

thunderdax

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Ba(NO<sub>3</sub>)<sub>2</sub>+Na<sub>2</sub>SO<sub>4</sub> -----> 2NaNO<sub>3</sub>+BaSO<sub>4</sub>
Then, work out the mass that should be created:
n=m/M
=.222/261.3
=.000850 moles
Now, for the barium sulfate,
n=m/M
.000850=m/233.4
m=.198g

Impurity=.198/.259*100
=76.6%

EDIT: Happy?
 
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Pace_T

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isnt molar mass of Ba(NO3)2 = 137.3 + (14 + 48)*2 = 261.3?
 
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