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8. (1pt) Determine the molar solubility of PbSO, in pure water. Ksp (PbSO4) = 1.82 * 10-8 a. 1.82 * 10M C. 9.1 x 10...
Determine the molar solubility of PbSO4 in pure water. Ksp(PbSO4)= 1.82 x 10^-8.
5. a) Determine the molar solubility of PbSO4 in pure water, Ksp (PbSO4) = 1.82 * 10-8 b) A solution containing AgNO3 is mixed with a solution of NaCl to form a solution that is 0.10 M in AgNO3 and 0.075 M in NaCl. Calculate the value for the process. Will a precipitate of AgCl form? Give evidence to support your claim. Ksp (AgCl) = 1.77 10-10
Determine the molar solubility of PbSO4 in pure water. Ksp (PbSO4) = 1.6 × 10-10. a) 4.12 × 10-5 M b) 1.35 × 10-4 M c) 4.89 × 10-4 M d) 1.26 × 10-5 M e) 1.28 × 10-8 M
Which of the following compounds will have the highest molar solubility in pure water? PbSO4, Ksp = 1.82
Part A Use the molar solubility, 1.08 x 10-5 M in pure water to calculate Ksp for BaCrO4 Express your answer using three significant figures. Y AL OO ? Ksp = Submit Request Answer Part B. Use the molar solubility, 1.55 X 10' M in pure water to calculate Ksp for Ag, SO3 Express your answer using three significant figures. AED O ? Ksp = Submit Request Answer Part C Use the molar solubility, 2.22 x 10-8 M in pure...
Determine the molar solubility of AgI in pure water. Ksp (AgI)= 8.51 x 10-17
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
Determine the molar solubility of AgBr in: Ksp (AgBr) = 7.7 x 10^ -13 a. a solution of pure water b. a solution containing 0.150 M NaBr c. A solution containing 0.25 M NaCL
15) Determine the molar solubility of BaF2 in pure water. Ksp for BaF2 = 2.45 x 10-5. A) 1.83 x 10-2 M B) 1.23 x 10-5 M C) 2.90 10-2 M. D) 4.95 x 10-3 M 15) E) 6.13 x 10-6 M
14. What is the molar solubility of AgCl in pure water at 25°C? Ksp =1.8 x 10