4) Calculate the molar solubility of the following compounds: a. CuCI, Ksp = 1.2x106 b. Mg(OH)2,...
Calculate the molar solubility of Mg(OH) 2 ksp = 1.8 * 10 ^ - 11 a) in water b) in 0.25 M NaOH (aq)
If x = molar solubility, Ksp = solubility product, which of the following compounds would have the relationship: 27x4 = Ksp? a) Bi2S3 b) Ag2CO3 c) AgCl d) PbI2 e) Ag3PO4
Calculate the molar solubility of Mg(OH)2 in the following solvents. Ksp = 1.8 x 10¯11 pure water 8.68×10?2 M MgCl2 3.65×10?2 M KOH(aq). Really i just need someone to explain how these things affect solubility numerically
Calculate the molar solubility of Ag3PO4 in moles/L, Ksp=1.8x10-18, and Ce(OH)3, Ksp=1.5x10-20
Calculate the molar solubility of Fe(OH)3, Ksp=4 x10^-38, Molar solubility = mol/L
Calculate the molar solubility of Mg(OH)2 in a solution that is basic with a pH of 12.62. Ksp = [Mg2+][OH–]2 = 5.6 × 10–12
What is Ksp for the following equilibrium if Mg(OH)2 has a molar solubility of 1.1×10−4 M? Mg(OH)2(s)↽−−⇀Mg2+(aq)+2OH−(aq)
Use the Ksp values to calculate the molar solubility of each of the following compounds in pure water. Part A MX ( K sp = 5.30×10−11) Express your answer in moles per liter. Part B Ag2CrO4 (Ksp = 1.12×10−12) Express your answer in moles per liter. Part C Ni(OH)2 (Ksp = 5.48×10−16) Express your answer in moles per liter.
Calculate the molar solubility of Mg (OH)_2 in: given: Ksp = 1.80 times 10^-11 a - Aqueous solution b - In aqueous of pH = 10.25 Mg (OH)_2 Mg^+2 + 2OH^-1
Mg(OH)2 is a sparingly soluble compound, in this case, a base, with a solubility product, Ksp, of 5.61×10−11. It is used to control the pH and provide nutrients in the biological (microbial) treatment of municipal wastewater streams. Based on the given value of the Ksp, what is the molar solubility of Mg(OH)2 in pure H2O? Mg(OH), is a sparingly soluble compound, in this case a base, with a solubility product, K sp, of 5.61 x 10-11. It is used to...