Solubility Equilibria Flashcards
Test 3
1
Q
What is Ksp?
A
- Equilibrium constant K for “solubility product”
- It’s the product of the molar concentrations of the ions in the saturated solution, raised to appropriate powers
- It equals the ion product for a solution of a salt, when the solution is saturated (as evidenced by solid in solution)
- So there needs to be a solid on one side of the equation. Otherwise, you have Q, ion product.
2
Q
What is the relationship between Solubility and Ksp?
A
- Solubility is the amount of the salt that dissolves in an amount of solvent to make a saturated solution (grams)
- Convert solubility into molar solubility
- Ksp is the solubility product, which is the product of molar concentrations of ions in a saturated solution, raised to appropriate powers
- You can calculate Ksp from the known solubility of a salt, and vice versa
- Shortcuts:
- If the salt dissociates into 2 pieces, S = square root of Ksp. Ksp=S2
- If the salt dissociates into 3 pieces, S = cube root of Ksp/4 Ksp=4s3
3
Q
What is a common ion, and the common ion effect?
A
- Common ion: an ion that has been supplied by more than one solute.
- Effect: The common ion effect decreases the solubility of an ion in water –> precipitate
- A salt is less soluble in a solution that contains one of its ions than it is in pure water
- Application of Le Chatlier’s principle. When you add the common ion, there’s too much of it, so to counteract, precipitates out.
- A salt is less soluble in a solution that contains one of its ions than it is in pure water
4
Q
When will a precipitate form?
A
- A precipitate will only form if a solution is supersaturated
- When the ion product > Ksp
- Precipitate will NOT form if ion product ≤ Ksp
- When mixing two solutions of different salts, consider which combinations of their ions might produce a sparingly soluble salt, calculate the ion product, and compare it to the salt’s Ksp
5
Q
What is the difference between a salt’s ion product, and it’s solubility product constant?
A
- Q value and K value
- The ion product is the product of the ion molarities raised to powers from the subscripts in the salt’s formula. Not neccessarily at equilibrium. (Q value)
- The ion product gets a constant value in a saturated solution. That’s the solubility product constant (K value)
- When the ion product…
- < Ksp, the solution is unsaturated
- = Ksp, the solution is saturated
- > Ksp, the solution is supersaturated, and precipitate will form
6
Q
What is molar solubility?
A
- The molar concentration of the salt in its saturated solution
- = # moles of salt / 1 L solution
- In the ice chart, multiply the variable for the molar solubility by the stoich coefficient
7
Q
What is Kspa , and the effect of pH on solubility?
A
- This is the constant for the solubility product of acids
- Specifically for sulfides since without the presence of an acid, they’re insoluble.
- [H+] is in the denominator
- All Kspa values are about 1021 times larger than Ksp values because some metal sulfides are much more soluble in acid
8
Q
What is selective precipitation?
A
- Causing one metal ion to precipitate while holding the other in solution
- Possibile due to differences in solubility
9
Q
What is a complex ion?
A
- An ion that is composed of simpler species
- The charge is whatever the original charge of the ion was, if the ligand is neutral
- Very favorable. More soluble.
- It’s an eample of metals behaving as Lewis acids – they accept electron pairs, and form coordinate covalent bonds
- Ex: Cu(H2O)42+ or Cu(NH3)42+C
- Common ligands include neutral molecules with unshared electron pairs (like H2O or NH3) or anions (like OH- or any halide ion, like Cl-)
10
Q
What is a ligand?
A
- A Lewis base that attaches itself to a metal ion (electron donor) to form a complex ion
- Common ligands:
- Neutral molecules with unshared electron pairs (like H2O or NH3)
- Anions (like OH- or any halide ion, like Cl-)
11
Q
What are coordination compounds?
A
- Compounds that contain complex ions
- (named this way because at least some of the bonds are coordinate covalent bonds)
12
Q
What is Kf?
A
- The formation constant
- When the product of the reaction in equilibrium is a complex ion
- Ex: Ag+ (aq) + 2NH3 (aq) ⇄ [Ag(NH3)2]+(aq) Kf = 1.6 x 107
- Aka stability constant because the larger the value, the greater is the concentration of the complex at equilibrium, so the more stable is the complex
-
Ksp * Kf = Knet
- In a solubility with complex ion problem, you can multiply to get the overall equilibrium constant. (Because the net reaction is the solubility process + the complex iron formation process.)
- Kf is generally large (whereas Ksp is small)
- When calculating, don’t disregard any x’s in denominator
13
Q
What is the complex ion effect?
A
- The solubility of a sparingly soluble salt increases when a substance able to form a complex with its metal ion is put into its solution
- This is also based on le chatlier’s principle
- You can dissolve precipitates this way
- To get the new equilibrium constant:
- Ksp * Kf = Knet
14
Q
Generally, what effect do temperature and pH have on Ksp?
A
- There is an increase in solubility with temperature and pH
15
Q
If a compound dissociates into two pieces,
what are the equations for Solubility and Ksp?
A
- S = √Ksp
- Where S is the molar concentration of the solid
- Ksp = S2
17
Q
If you’re dissolving a precipitate by forming complex ions,
how do you calculate K of the overall reaction?
A
- Kc = Ksp x Kform
- Add the equation for dissociation of the solid to the equation for the formation of the complex ion, to get the overall equilibrium equation
- Multiply the Ksp and Kf values to get the net K
Ex:
- AgCl (s) ⇄ Ag+ (aq) + Cl- (aq) Ksp = 1.8 x 10-10
- Ag+ (aq) + 2NH3 (aq) ⇄ [Ag(NH3)2]+Kf = 1.6 x 107
- ——————————————————————-
- AgCl (s) + 2NH3 (aq) ⇄ [Ag(NH3)2]+ + Cl- (aq) Knet = 2.9 x 10-3
