Given the concentration of a saturated solution of the following compound, what is the Ksp? SrF2: [Sr2+] = 5.82 × 10–4 mol L–1 ; [F– ] = 1.16 × 10–3 mol L–1
SrF2 dissociates as:
SrF2(s) <-> Sr2+(aq) + 2F-(aq)
Ksp = [Sr2+][F-]^2
= (5.82*10^-4) * (1.16*10^-3)^2
= 7.83*10^-10
Answer: 7.83*10^-10
Given the concentration of a saturated solution of the following compound, what is the Ksp? SrF2:...
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What is the solubility of SrF2 (s) in moles per liter (mol/L) in pure water? O 5.3 x 10-5 O 8.9 x 10-4 O 7.0 x 10-10 O 3.7x 105 2.8 x 10 3 pts Question 4 What is the solubility in moles per liter (mol/L) of SrF2 (s) from the previous problem in a.2 M Sr2 (aq) solution? O 5.9 x 10 O 1.2 x 10+ O 7.0 x 10° O 1.4 x 10 O 8.4 x 105
just #4
What is the solubility of SrF2 (s) in moles per liter (mol/L) in pure water? O 5.3 x 10-5 8.9 x 10-4 O 7.0 x 10-10 O 3.7 x 10-5 O 2.8 x 10-9 D Question 4 3 pts What is the solubility in moles per liter (mol/L) of SrF2 (s) from the previous problem in a.2 M Sr2(aq) solution? O 5.9 x 10-5 O 1.2 x 10-4 7.0 x 10 O 1.4 x 10-8 O 8.4 x...