Calculate Ksp for Ag2S(s), then calculate molar solubility of Ag+ and S2-.
Delta G of Ag2S = -40.7KJ/mol
Delta G of Ag+ = 77.11KJ/mol
Delta G of S2- = 83.7KJ/mol
ICE table and clear breakdown of relationship of Ksp and Delta G. please.
Calculate Ksp for Ag2S(s), then calculate molar solubility of Ag+ and S2-. Delta G of Ag2S = -40.7KJ/mol Delta G of Ag+...
Calculate Ksp for Ag2S(s), then using standard free energies of formation, calculate molar solubility of Ag+ and S2-. Delta G of Ag2S = -40.7KJ/mol Delta G of Ag+ = 77.11KJ/mol Delta G of S2- = 83.7KJ/mol
The molar solubility of Ag2S is 1.26 × 10-16 M in pure water. Calculate the Ksp for Ag2S.
The "insoluble" salt, silver sulfide, has a solubility product, Ksp=6.3*10^-51 at 298 K. Ag2S(s)=2Ag+ (aq)+ S2-(aq) What is the concentration of Ag+ at equilibrium, at this temperature?
b. calculate the molar solubility(s) and from that the Ksp of Ba(OH)2 at 0*c. c. calculate the delta G* for the dissolution of Ba(OH)2 from the Ksp calculated in part b, at 0*c. Section: Date: Pre-Lab Questions 1. A 10.0 mL sample of Balohi, at Or is itrated with 200 M HCL and 5.22 ml of the acid are used to reach the yellow endpoint. a. Calculate the concentration of OH in the 10.0 mL sample of BalOH) at O'C....
The molar solubility of Ag2S is 1.26 x 10-16 M in pure water. Calculate the Ksp for Ag25. A) 6.81 x 10-63 B) 1.12 * 10-8 C) 3.78 x 10-12 D) 8.00 * 10-48 E) 1.59 x 10-32 nun
1. Calculate the solubility product constant, Ksp, for strontium fluoride if 1.2×10-3mol of F-ion is present in 2.0 L of a saturated strontium fluoride solution. A.9.0×10-8 B.2.7×10-11 C.6.9×10-9 D.1.1×10-10 E.1.4×10-6 2. Choose the correct equilibrium constant expression (Ksp) for the dissolution of Ag2S . (is the answer D?) A. [ Ag2S ] Ksp = [ Ag+]2 [ S2-] B. Ksp = [ Ag+][ S2-]2 C. [ Ag+] [ S2-] Ka = [ Ag2S ] D. Ksp = [ Ag+]2 [...
Please answer these questions: -Calculate the molar solubility of Cr2(CrO4)3 (Ksp = 6.47 x 10-22) in a 0.25M Na2CrO4 solution. USE AN ICE TABLE Calculate the molar solubility of AuCl3 (Ksp = 3.2 x 10-25) in a 0.65 M MgCl2 solution. USE AN ICE TABLE
Calculate the molar solubility of Fe(OH)3, Ksp=4 x10^-38, Molar 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
Q1: Part 1) The solubility product (Ksp) of AuCl3(s) is 3.2 × 10-25. Calculate the molar solubility of AuCl3(s) in pure water and with the molar solubility found, calculate the solubility of AuCl3(s) in units of mg AuCl3/mL in pure water. The molar mass of AuCl3 is equal to 303.33 g AuCl3/mol AuCl3. Part 2 )Calculate the molar solubility of AuCl3(s) in an aqueous 1.5 M NaCl solution. Q2: Calculate the pH of a solution if 75.0 mL of 0.195...