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Concentration of the AG plus ions in a saturated solution of ag2c2o4 is 2.2 into 10 to the power minus 4 mole per litre solutebility product of ag2c2o4 is what?
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Concentration of the AG plus ions in a saturated solution of ag2c2o4 i...
Understanding the Solubility Product
The solubility product (Ksp) of a salt is a constant that represents the level at which a solute dissolves in a solvent. For the compound silver oxalate (Ag2C2O4), we can determine Ksp using the concentration of its ions in a saturated solution.
Ionization of Ag2C2O4
When Ag2C2O4 dissolves in water, it dissociates as follows:
- 1 mole of Ag2C2O4 produces:
- 2 moles of Ag+ ions
- 1 mole of C2O4^2- ions
Concentration of Ions
Given that the concentration of Ag+ ions in a saturated solution of Ag2C2O4 is 2.2 x 10^-4 moles per liter:
- Ag+ concentration = 2 x (2.2 x 10^-4) = 4.4 x 10^-4 moles per liter
- C2O4^2- concentration = 2.2 x 10^-4 moles per liter
Calculating Ksp
The Ksp expression for Ag2C2O4 can be written as:
Ksp = [Ag+]^2 * [C2O4^2-]
Substituting the concentrations:
Ksp = (4.4 x 10^-4)^2 * (2.2 x 10^-4)
Final Calculation
Calculating the values:
- (4.4 x 10^-4)^2 = 1.936 x 10^-7
- Ksp = 1.936 x 10^-7 * 2.2 x 10^-4 = 4.2672 x 10^-11
Conclusion
Thus, the solubility product (Ksp) of Ag2C2O4 is approximately 4.27 x 10^-11. This value indicates the extent to which Ag2C2O4 can dissolve in water, reflecting its low solubility.
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Concentration of the AG plus ions in a saturated solution of ag2c2o4 is 2.2 into 10 to the power minus 4 mole per litre solutebility product of ag2c2o4 is what?
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