Question 10 chap 4 A sample of 0.7960 g of an unknown compound containing barium
ID: 552139 • Letter: Q
Question
Question 10 chap 4A sample of 0.7960 g of an unknown compound containing barium ions (Ba2+) is dissolved in water and treated with an excess of Na2SO4. If the mass of the BaSO4 precipitate formed is 0.7651 g, what is the percent by mass of Ba in the original unknown compound? Question 10 chap 4
A sample of 0.7960 g of an unknown compound containing barium ions (Ba2+) is dissolved in water and treated with an excess of Na2SO4. If the mass of the BaSO4 precipitate formed is 0.7651 g, what is the percent by mass of Ba in the original unknown compound? Question 10 chap 4
A sample of 0.7960 g of an unknown compound containing barium ions (Ba2+) is dissolved in water and treated with an excess of Na2SO4. If the mass of the BaSO4 precipitate formed is 0.7651 g, what is the percent by mass of Ba in the original unknown compound?
Explanation / Answer
Molar mass of BaSO4 = 1*MM(Ba) + 1*MM(S) + 4*MM(O)
= 1*137.3 + 1*32.07 + 4*16.0
= 233.37 g/mol
mass of BaSO4 = 0.7651 g
we have below equation to be used:
number of mol of BaSO4,
n = mass of BaSO4/molar mass of BaSO4
=(0.7651 g)/(233.37 g/mol)
= 3.278*10^-3 mol
This is number of moles of BaSO4
one mole of BaSO4 contains 1 moles of Ba
we have below equation to be used:
number of moles of Ba = 1 * number of moles of BaSO4
= 1 * 3.278*10^-3
= 3.278*10^-3
Molar mass of Ba = 137.3 g/mol
we have below equation to be used:
mass of Ba,
m = number of mol * molar mass
= 3.278*10^-3 mol * 137.3 g/mol
= 0.4501 g
mass % of Ba = mass of Ba*100/mass of sample
= 0.4501 * 100 / 0.7960
= 56.5 %
Answer: 56.5 %
Feel free to comment below if you have any doubts or if this answer do not work
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