CaCl2 here is Strong electrolyte
It will dissociate completely to give [Ca2+] = 0.12 M
At equilibrium:
CaCO3 <---->
Ca2+
+
CO32-
0.12
+s
s
Ksp = [Ca2+][CO32-]
3.4*10^-9=(0.12 + s)*(s)
Since Ksp is small, s can be ignored as compared to 0.12
Above expression thus becomes:
3.4*10^-9=(0.12)*(s)
3.4*10^-9= 0.12 * 1(s)^1
s = 2.833*10^-8 M
Answer: 2.8*10^-8 M
The solubility-product constant (Ksp) for Cacoz at 25°C is 3.4 x 10-9. What is the molar...
The solubility product, Ksp, for cobalt(III) hydroxide, Co(OH)3, is 1.6 x 10-44 at 25°C. What is the molar solubility of cobalt(III) hydroxide in a solution containing 0.063 M KOH at 25°C? 40) 0.0639x M Did you remember that the molar solubility of a substance is reduced whenever a common ion is present?
1. Silver chloride, AgCl, has a solubility product constant, Ksp = 1.8 x10-10 at 25°C. What is its solubility in pure water? 2. Silver chloride, AgCl, has a solubility product constant, Ksp = 1.8 x 10-10 at 25° C. What is its solubility in the presence of 0.10 molar sodium chloride?
he solubility product (Ksp) of PbBr2 is 8.9 X 10. Please calculate the molar solubility in: A) Pure water B) 0.20 M Pb(NOs)2 Pb Brs) Pbap +2 Br 8.9- M0T 2 LOZJLES . 45 25 O.Zts Zs 4.45./05 4 4s 0.2x0.2+s 13:105- J S0-60334 9. The solubility of an ionic compound MX (molar mass = 346 g/mol) is 4.63 X 103 g/L. What is the Ksp for this compound? HoW
3. What is the molar solubility of Al(OH)3 at 25°C (Ksp = 4.6 x 10")? a. 8.4 x 10 b. 2.8 x 10° c. 3.6 x 10° d. 1.4 x 10-9 e. 5.0 x 10-33
At 25 0C the solubility product constant, Ksp, for strontium sulfate, SrSO4, is 7.6 x 10-7. The solubility product constant for strontium fluoride, SrF2, is 7.9 x 10-10. (a) What is the molar solubility of SrSO4 in pure water at 25 0C? (b) What is the molar solubility of SrF2 in pure water at 25 0C? (c) An aqueous solution of Sr(NO3)2 is added slowly to 1.0 litre of a well-stirred solution containing 0.020 mole F- and 0.10 mole SO42-...
At 25°C, the solubility product constant (Ksp) for silver chromate, Ag2 CrO4, is 1.1 x 10-12. What is the concentration of Ag+ ions in a saturated solution? 1.3 x 10M 3.3 x 10-5M 1.0 x 10 M 6.5 x 10-SM 2.1x 10 M
14. What is the molar solubility of AgCl in pure water at 25°C? Ksp =1.8 x 10
The solubility product, Ksp, for cobalt(III) hydroxide, Co(OH)3, is 1.6X104 at 25°C. What is the molar solubility of cobalt(III) hydroxide in a solution containing 0.077 M KOH at 25°C? 125.82e-41 x M Did you remember that the molar solubility of a substance is reduced whenever a common ion is present? Supporting Materials Periodic Table Constants and Factors Supplemental Data Additional Materials Tutorial -/50 points FSUGenChem2L1 8.PRE.002. Complete the following table of data for Ce2(SO4)3 9 H20. (Assume the density of...
1. At 25 deg Celsius, the solubility product constant of PBI2 is 1.4 x 10^-8. Calculate the molar solubility in water. 2. The solubility of AgI at 25 deg Celsius is 9.1 x 10^-4 M. Calculate the Ksp of AgI at that temperature.
4) Calculate the molar solubility of AgCl (Ksp = 1.8 x 10-) at 25°C in: (a) Pure water (b) 3.0 M NH3 [Hint: AgCl(s) + 2NH3(aq) Ag(NH3)2(aq) + Cl(aq) K = 3.1 x 10