Assuming that the solubility of PbBr2(s) is 2.1x10 mol/L at 25°C, calculate the Ksp for this salt. Ignore any potential reactions of the ions with water.
Assuming that the solubility of PbBr2(s) is 2.1x10 mol/L at 25°C, calculate the Ksp for this salt
Assuming that the solubility of PbCl2(s) is 1.6x10-2 mol/L at 25°C, calculate the Ksp for this salt. Ignore any potential reactions of the ions with water. Ksp = _______ The solubility of Pb(IO3)2(s) in a 2.00x10-2 M KIO3 solution is 7.7x10-8 mol/L. Calculate the Ksp value for Pb(IO3)2(s). Ksp = _______
CHEMWORK Assuming that the solubility of PbCl2(s) is 1.6x102 mol/L at 25°C, calculate the Kgp for this salt. Ignore any potential reactions of the ions with water. Кар Submit Show Hints
(a) If the molar solubility of PbBr2 at 25 oC is 0.0118 mol/L, what is the Ksp at this temperature? Ksp = (b) It is found that 8.90e-06 g of Y2(CO3)3 dissolves per 100 mL of aqueous solution at 25 oC. Calculate the solubility-product constant for Y2(CO3)3. Ksp = (c) The Ksp of Ag2C2O4 at 25 oC is 5.40e-12. What is the molar solubility of Ag2C2O4? solubility =____ mol/L
(a) If the molar solubility of PbBr2 at 25 oC is 0.0118 mol/L, what is the Ksp at this temperature? Ksp = b) It is found that 6.25e-06 g of Cd3(PO4)2 dissolves per 100 mL of aqueous solution at 25 oC. Calculate the solubility-product constant for Cd3(PO4)2. Ksp = (c) The Ksp of Sc(OH)3 at 25 oC is 2.22e-31. What is the molar solubility of Sc(OH)3? solubility = mol/L
[References] CHEMWORK The Ksp for SrSO4(s) is 3.2x10-7. Calculate the solubility of SrSO4(s). Ignore any potential reaction of the ions with water. Solubility for SrSO4(s) = mol/L Sun
(a) If the molar solubility of PbBr2 at 25 oC is 0.0118 mol/L, what is the Ksp at this temperature? Ksp = _______ (b) It is found that 9.14e-08 g of Sc(OH)3 dissolves per 100 mL of aqueous solution at 25 oC. Calculate the solubility-product constant for Sc(OH)3. Ksp = ______ (c) The Ksp of Zn3(AsO4)2 at 25 oC is 2.80e-28. What is the molar solubility of Zn3(AsO4)2? solubility = ________mol/L
(a) If the molar solubility of Ag3PO4 at 25 °C is 4.26e-05 mol/L, what is the Ksp at this temperature? Ksp (b) It is found that 0.434 g of PbBr2 dissolves per 100 mL of aqueous solution at 25 °C. Calculate the solubility-product constant for PbBr2. Ksp (c) The Ksn of Ga(OH)3 at 25 °C is 7.28e-36. What is the molar solubility of Ga(OH)3? mol/L solubility
The Ksp for Ca 2(s) is 4.0x01. Calculate the solubility of CaF2(s). Ignore any potential reaction of the ions with water Solubility for CaF2(s) mo/L
The Ksp for lead bromide (PbBr2) is 4.6 x 10-6. Calculate the solubility of lead bromide in each of the following. a. water mol/L Solubility=[ b. 0.16 M Pb(NO3)2 Solubility = mol/L c. 0.016 M NaBr Solubility = mol/L
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