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helpmewithmath70
13.09.2019 •
Chemistry
Calculate the number of mg of mn2+ left
unprecipitated in 100 ml of a 0.1000m solution of mnso4
to whichenough na2s has been added to makethe final
sulfide ion (s2-)concentration equal to 0.0900 m. assume
no change in volume due tothe addition of na2s.
thepksp of mns is 13.500.
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Ответ:
1.930 * 10⁻⁹ mg of Mn⁺² are left unprecipitated.
Explanation:
The reaction that takes place is:
Mn⁺² + S⁻² ⇄ MnS(s)
ksp = [Mn⁺²] [S⁻²]
If the pksp of MnS is 13.500, then the ksp is:
From the problem we know that [S⁻²] = 0.0900 M
We use the ksp to calculate [Mn⁺²]:
3.1623*10⁻¹⁴= [Mn⁺²] * 0.0900 M
[Mn⁺²] = 3.514 * 10⁻¹³ M.
Now we can calculate the mass of Mn⁺², using the volume, concentration and atomic weight. Thus the mass of Mn⁺² left unprecipitated is:
3.514 * 10⁻¹³ M * 0.1 L * 54.94 g/mol = 1.930 * 10⁻¹² g = 1.930 * 10⁻⁹ mg.
Ответ: