A solution contains 2.2×10−4 M Ag+ and 1.7×10−3 M Pb2+. If NaI is added, will AgI(Ksp=8.3×10−17) or PbI2(Ksp=7.9×10−9) precipitate first? AgI. My question is:
Specify the concentration of I− needed to begin precipitation.
A solution contains 2.2×10−4 M Ag+ and 1.7×10−3 M Pb2+. If NaI is added, will AgI(Ksp=8.3×10−17)...
Solid sodium iodide is slowly added to a solution that is 0.0050 M Pb2+ and 0.0050 M Ag+. What is the concentration of silver when the lead (II) iodide just begins to precipitate? [Ksp (Pbi2) = 1.4 × 10–8; Ksp (Agi) = 8.3 × 10–17] Please show all work
Solid PbI2 was added to a 0.030 M NaI solution. Calculate the molar concentration of lead ion in this solution. Ksp = 7.9 x 10-9 (at 25ºC) (Please show work) PbI2(s) <=> Pb2+ + 2I-
a. The solubility product, Ksp, for AgI is 8.3 x 10-17. What is the concentration of iodide ion (I- ) in solution saturated in silver iodide. b. What would the concentration of silver(I) ion (Ag+ ) be for a saturate solution of AgI which is also 0.20 M in NaI (soluble, of course)
The Ksp of AgI is 8.3× 10–17. You titrate 25.00 mL of 0.08870 M NaI with 0.05050 M AgNO3. Calculate pAg after the following volumes of AgNO3 are added: (a) 37.20 ml (b) Veq (c) 47.20 ml
The Ksp of AgI is 8.3× 10–17. You titrate 25.00 mL of 0.08160 M NaI with 0.05190 M AgNO3. Calculate pAg after the following volumes of AgNO3 are added: (a) at 35.10 mL (b) at Ve (volume at equilibrium) (c) at 47.10 mL
200 mL of an aqueous solution contains 0.030 M concentrations of both Pb2+ and Ag+. If 100 mL of 6.0 x 10-2 M NaCl is added to this solution will a precipitate form? If so, what will the precipitate be? The Ksp values for PbCl2 and AgCl are 1.7 x 10-5 and 1.8 x 10-10]
A solution of Na3PO4 is added dropwise to a solution that is 0.0810 M in Ag+ and 0.00171 M in Cu2+. The Ksp of Ag3PO4 is 8.89e-17. The Ksp of Cu3(PO4)2 is 1.4e-37. (a) What concentration of PO43- is necessary to begin precipitation? (Neglect volume changes.) [PO43-] = M. (b) Which cation precipitates first? Ag+ Cu2+ (c) What is the concentration of PO43- when the second cation begins to precipitate? [PO43-] = M.
1. 200 mL of an aqueous solution contains 0.030 M concentrations of both Pb2+ and Ag+. If 100 mL of 6.0 x 10-2 M NaCl is added to this solution will a precipitate form? If so, what will the precipitate be? The Ksp values for PbCl2 and AgCl are 1.7 x 10-5 and 1.8 x 10-
Hw5B-Chapter17 Problem 17.73 8 of 14 > Constants| Periodic T Part A Review able A solution contains 2.0x10 4 M Ag+ and 1.5x10 3 M Pb2 lf Nal is added, will Agl (K, 8.3 x 10 ") or P112 (K,-7.9 x 10。) precipitate frst? AgI will precipitate first Pb12 will precipitate first Previous Answers Correct Part B Specify the concentration of I needed to begin precipitatian. Express your answer using two significant figures Submit Request Answer
Ksp of AgCl = 1.77x10^-10 Ksp of PbCl2 = 1.70x10^-5 thanks! A solution contains 0.036 M Ag+ and 0.032 M Pb2+. If you add CI", AgCl and PbCI, will begin to precipitate. What is the concentration of Cl" required, in molarity, when AgCl precipitation begins? concentration of Cl" = What is the concentration of Cl required, in molarity when AgCl precipitation is 99.99% complete? concentration of Cl" = What is the concentration of CI required, in molarity when PbCl, precipitation...