Solid potassium chromate (K2CrO4) is slowly added to a solution containing 0.50 M AgNO3 and 0.50 M Ba(NO3)2. What is the Ag+ concentration when BaCrO4 just starts to precipitate? The Ksp for Ag2CrO4and BaCrO4are 1.1 × 10^-12 and1.2 ×10^-10, respectively. ANSWER SAYS 3.2 x 10^-4 M
Can someone explain how they got the answer? (3.2 x 10^-4 M)
answer might be wrong
I have solved this perfectly I am ?% sure answer will be this .I just answered this so that u may get the concept behind the question I know I haven't reach up to the answer .
Thanks
Solid potassium chromate (K2CrO4) is slowly added to a solution containing 0.50 M AgNO3 and 0.50...
An aqueous solution of Na2CrO4 at 25°C is slowly added to an aqueous solution containing 0.001 M Pb(NO3)2and 0.100 M Ba(NO3)2. Which solid will precipitate first? The Ksp of BaCrO4 is 1.17 x 10-10, and Ksp of PbCrO4 is 2.80 x 10-13 O BaCrO4(s) O NaNO3(s) O PbCrO4(s) Pb(NO3)2(s)
solid silver nitrate, AgNO3 is slowly added to a solution containing 0.2M chloride ion and 0.3M chromate ion. Assume that the addition of the solid causes no volume change. Which will precipitate first, the silver chloride or the silver chromate? For AgCl, Ksp = 1.81x10-10, for Ag2CrO4 Ksp = 1.12x10-12
A solution containing a mixture of 0.0441 M 0.0441 M potassium chromate ( K 2 CrO 4 K2CrO4 ) and 0.0513 M 0.0513 M sodium oxalate ( Na 2 C 2 O 4 Na2C2O4 ) was titrated with a solution of barium chloride ( BaCl 2 BaCl2 ) for the purpose of separating CrO 2− 4 CrO42− and C 2 O 2− 4 C2O42− by precipitation with the Ba 2+ Ba2+ cation. The solubility product constants ( ? sp Ksp...
28) What is the molar solubility of Mg(OH)2 in a basic solution with a pH of 11.18? Ksp for Mg(OH)2 is 5.6x 10-12 B) 5.6x 10-10 M D) 1.1 x 10-4 M C) 2.4 x 10-6 M A) 5.6 x 10-8 M 29) What is the molar solubility of AgCl in 0.10 M NaCN if the colorless complex ion Ag(CN) 2- forms? Ksp for AgCl is 1.8 x 10-10 and Kf for Ag(CN) 2- is 1.0 x 1021, D) 0.050...
12. Nal is slowly added to a solution containing 0.500 M Cut and 0.500 M Ag What will be the concentration of Agt remaining in solution when Cul starts to precipitate. What will be the percent Ag* remaining? Ksp = 1.1 x10-12 for Cul Ksp = 8.5 x 10-17 for Agl
Which compound will precipitate first when solid silver nitrate (AgNO3) is slowly added to a solution containing 0.0120 M each of carbonate and chloride ions? Show your calculation to justify your answer. Assume the volume does not change appreciably when the silver nitrate is added. Ksp values: AgCl, 1.6 X 10^-10 Ag2CO3, 8.1 X 10^-12
pt Solid Na SO, is added slowly to a solution that is 0.76M in Pb(NO3), and 0.45M in Ba (NO3),. In what order will solid PbSO4 and BaSO4 form? Calculate the percentage of Ba2+ that precipitates just before PbSo, begins to precipitate. Assume that Ksp (PbSO4) = 1.8 x 10-8 and Kg (BaSO4) = 1.1 x 10-20 will precipitate first. pe Percentage =
A) Solid barium nitrate is slowly added to 125 mL of a 0.0651 M potassium carbonate solution. The concentration of barium ion required to just initiate precipitation is ______ M. Ksp: BaCO3 8.1 × 10-9 B) Solid ammonium chromate is slowly added to 75.0 mL of a 0.0392 M calcium nitrate solution. The concentration of chromate ion required to just initiate precipitation is ______ M. Ksp: CaCrO4 7.1 × 10-4
If a dilute AgNO3 solution is slowly added
to the solution, what is the first compound to precipitate: Ag2CrO4
( Ksp = 1.2×10?12), Ag2CO3 (
Ksp = 8.1×10?12), or AgCl ( Ksp
= 1.8×10?10)?
Problem 17.75 A solution contains three anions with the following concentrations: 0.20 M Cro 0.10 M CO and 0.010 M Cl Part A If a dilute AgNO3 solution is slowly added to the solution, what is the first compound to precipitate: Aga Cro4 Ksp 1.2 x...
Solid barium acetate is slowly added to 75.0 mL of a 0.0376 M ammonium chromate solution. The concentration of barium ion required to just initiate precipitation is ____ M. Solid barium sulfate and solid barium carbonate are in equilibrium with a solution containing 1.43×10-2 M potassium carbonate. Calculate the concentration of sulfate ion present in this solution. [sulfate] = _____ M.