What is the molar solubility of magnesium fluoride in a solution that is 0.40 M F− ions? The Ksp of MgF2 is 6.4 × 10−9.
What is the molar solubility of magnesium fluoride in a solution that is ions? The Ksp of MgF2 is 6.4x10^-9
8.0 × 10−5 | |
8.0 × 10−9 | |
4.0 × 10−8 | |
1.6 × 10−8 |
What is the molar solubility of magnesium fluoride in a solution that is 0.40 M F− ions? The Ksp of MgF2 is 6.4 × 10−9....
Part A Calculate the molar solubility of magnesium fluoride (MgF2) in a solution that is 0.350 M in NaF. For magnesium fluoride, Ksp = 5.16 x 10-11. 02.05 x 10-5 M o 4.21 x 10-10 M O 2.35 x 10-4 M O 1.47 x 10-10 M Submit Request Answer
What is the molar solubility of MgF2 in a 0.38 M NaF solution? For MgF2, Ksp = 8.4 × 10–8.
V 17.34 What is the molar solubility of MgF2 in a 0.40 M. Mg(NO3)2 solution? (K for MgF2 = 8.0 X 10-8.) sp
A student does an experiment to determine the molar solubility of magnesium fluoride. She constructs a voltaic cell at 298 K consisting of a 0.766 M magnesium nitrate solution and a magnesium electrode in the cathode compartment, and a saturated magnesium fluoride solution and a magnesium electrode in the anode compartment. If the cell potential is measured to be 8.25x102 v, what is the value of Ksp for magnesium fluoride at 298 K based on this experiment? Ksp for MgF2-...
For the following equilibrium, MgF2(s)↽−−⇀Mg2+(aq)+2F−(aq) If Ksp=5.1×10−13, what is the molar solubility of magnesium fluoride: Report your answer in scientific notation with the correct number of significant figures.
1. If Ksp = 6.4 x 10-9 for magnesium fluoride, what is the concentration of Mg2+ and Fin equilibrium with solid magnesium fluoride? First write the equilibrium expression for Ksp. 2. The concentration of Ag+ in a solution saturated with Ag2C2O4 is 2.42 x 10-4 M. Calculate Ksp for Ag2C2O4.
What is the solubility in mole per liter for magnesium fluoride, MgF2, in a 2.4 mM solution of magnesium chloride, MgCl2? Hints: Use the 'small x' approximation and assume that magnesium chloride is fully soluble at this concentration. Ksp=5.16×10-11 for MgF2
Calculate the [F-] present in a satuated solution of magnesium fluoride if Ksp= 7.4 x10^-11 MgF2(s) <—-> Mg 2+ (aq)+ 2F-(aq)
7. The solubility of magnesium fluoride in pure water is 1.65 x 10 grams per 100 ml of water. a. Calculate Kup for magnesium fluoride (6 pts) MOP2 SE 1.65x10-3 I mol MgF2 Imb - 2.648810-4 100ML 62.309 Mafelio 3 Mg F2 kup = [M qat] [F]² - 5 (25)² = 253 Ksp = 3.71 x 10-13 Mg F2 I Mq "+ZFC b. What is the solubility of magnesium fluoride in a 0.500 M magnesium nitrate solution? (6 pts) c....
The molar solubility of barium fluoride in a water solution is ___ M. (the Ksp is given as 1.7 × 10-6)