Mass of NiCl2 in 5 mL saturated solution = 2.73
g
Solubility (g/L) of NiCl2 = 546 g/L
Molar solubility of NiCl2 = 4.44 M
[Ni2+] = 4.44 M
[Cl-] = 8.88 M
Ksp for NiCl2 = 350.1
Why is it reasonable that the Ksp of NiCl2 should be so high?
Mass of NiCl2 in 5 mL saturated solution = 2.73 g Solubility (g/L) of NiCl2 =...
A 12.5% (w/w) NiCl2 (129.61 g/mol) solution has a density of 1.149 g/mL. Calculate(a) the molar concentration of NiCl2 in this solution.(b) the molar Cl− concentration of the solution.(c) the mass in grams of NiCl2 contained in each liter of this solution.
1) The solubility of Ni(OH)2 is measured and found to be 3.90×10-4 g/L. Use this information to calculate a Ksp value for nickel(II) hydroxide. Ksp = _______ 2) The solubility of Ag2CO3 is measured and found to be 3.58×10-2 g/L. Use this information to calculate a Ksp value for silver carbonate. Ksp = _________ 3) The mass of silver phosphate that is dissolved in 250 mL of a saturated solution is _____grams. 4)The mass of silver bromide that is dissolved...
What volume of 0.150 M NiCl2 solution can be made from 35.7 g of NiCl2? The molar mass of NiCl2 is 129.6 g/mol. 0.041 L 0.544 L 2.42 L 1.84 L
A saturated solution of calcium iodate contains 2.37 g/L of Ca(IO3)2. (a) What is the solubility of calcium iodate in mol/L? (b) What are the concentrations of Ca2+ and IO3 – ion, respectively, in the saturated solution? (c) Calculate the Ksp value for Ca(IO3)2. Part b ) Silver ion, Ag+ , readily forms complex ion, Ag(S2O3)2 3– , with thiosulfate, S2O3 2– , according to the following equation: Ag+ (aq) + 2S2O3 2– (aq) ⇌ Ag(S2O3)2 3– (aq); Kf =...
1. The Molar Solubility of Ca(10), in Pure Water Temperature of the saturated solution of calcium iodate: Volume (or mass) of saturated calcium iodate solution titrated: 25 °C 10 ml (or g) Dat Trial 1 Trial 2 Trial 3 Volume of Na S o titrant Final buret reading Initial buret reading ml mL mL mL Net volume of Na So 26.621 mL 30.019 mL Calculated concentration of 10 Standardized 0.05 M sodium thiosulfate (Na,8,0,) solution (10,51(E) - TIL 10 mols.0.2...
1. The Molar Solubility of Ca(10), in Pure Water Temperature of the saturated solution of calcium iodate: Volume (or mass) of saturated calcium iodate solution titrated: 25 °C 10 ml (or g) Dat Trial 1 Trial 2 Trial 3 Volume of Na S o titrant Final buret reading Initial buret reading ml mL mL mL Net volume of Na So 26.621 mL 30.019 mL Calculated concentration of 10 Standardized 0.05 M sodium thiosulfate (Na,8,0,) solution (10,51(E) - TIL 10 mols.0.2...
2. Solubility and Ksp of saturated CallO3)2 in o.0100 M KIO3 About 30-35 mL of this saturated solution was filtered. Two 10.00 mL samples of this solution were combined with -2 g KI, -50 mL of H20, and 10 mL 1.0 M HCL Each solution was titrated with standard thisolulfate solution (0.04913 M) exactly as in part 2 to a colorless end-point. The following data was collected Trial 1 Trial 2 Vr 23.79 mL 47.64 mL V- 0.00 mL 23.79...
Molar Solubility and Solubility Product of Calcium Hydroxide Volume of saturated Ca(OH)2 solution (mL) 25.00 Molar concentration of standard HCI solution (mol/L.) 0.0480 Buret reading, initial (mL) 1.70 Buret reading, final (mL) 13.90 Volume of HCI added (mL) Moles of HCI added (mol) Show calculation Moles of OH^- in saturated solution (mol) Show calculation [OH^-), equilibrium (mol/L) Show calculation. [Ca^2+], equilibrium (mol/L) Show calculation. Molar solubility of Ca(OH)2 (mol/L) Show calculation. Ks rho of Ca(OH)2 Show calculation. For Trials 2...
A generic salt, AB2, has a molar mass of 303 g/mol and a solubility of 5.90 g/L at 25 C. What is the Ksp of this salt at 25 "C? AB s))+2B (aq) Number sp The Ksp of CaSO4 is 4.93x 10 5. Calculate the solubility (in g/L) of Casou(s) in 0.350 M Na-So.(aq) at 25 c. Number g/L
a Ni(CN)2, nickel cyanide Ksp-3.0 x 10-23 Molar solubility mo/L [Ni2+] . CN Solubility g/L bPbla, lead(lI) odide Ksp8.7 x 10-9 Molar solubility mo/L Solubility g/L We were unable to transcribe this image