Dylanamali
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- 2011
A lawn fertilser lists the sulfate content as 38.5% (w/w).
What mass of barium sulfate precipitate would be expected to form if a 1.50g sample of the fertiliser were analysed by reacting the sample with excess barium nitrate solution?
a) 0.238g
b) 0.578g
c) 1.40g
d) 3.64g
** I have no answer to this question but my answer was c). This is my working:
Ba(SO)4 -> Ba2+ + (SO4)2-
therefore Ba(SO)4 : (SO4)2- is 1:1
mass of sulfate = 1.50g x 0.385 = 0.5775g
n sulfate = 0.5775/96.07 = 0.006 mols
n sulfate = n barium sulfate = 0.006 mols
mass of barium sulfate = 0.006 x 233.37 = 1.40022 = 1.40g
Is this correct?
Thank you in advanced.
What mass of barium sulfate precipitate would be expected to form if a 1.50g sample of the fertiliser were analysed by reacting the sample with excess barium nitrate solution?
a) 0.238g
b) 0.578g
c) 1.40g
d) 3.64g
** I have no answer to this question but my answer was c). This is my working:
Ba(SO)4 -> Ba2+ + (SO4)2-
therefore Ba(SO)4 : (SO4)2- is 1:1
mass of sulfate = 1.50g x 0.385 = 0.5775g
n sulfate = 0.5775/96.07 = 0.006 mols
n sulfate = n barium sulfate = 0.006 mols
mass of barium sulfate = 0.006 x 233.37 = 1.40022 = 1.40g
Is this correct?
Thank you in advanced.
