What will happen once you mix a solution with a concentration of 15 mmol L-1 AgNO3 with an equal volume of a solution with a concentration of 10 mmol L-1? Ksp (AgCl) = 1.77 x 10-10.
Question
What will happen once you mix a solution with a concentration of 15 mmol L-1 AgNO3 with an equal volume of a solution with a concentration of 10 mmol L-1? Ksp (AgCl) = 1.77 x 10-10.
Solution
The question seems to be incomplete. It mentions two solutions, one of AgNO3 and another one with an unspecified solute. For a reaction to occur, we need to know what the second solution is. If it's a chloride source like NaCl, a precipitation reaction could occur forming AgCl, but without that information, a complete answer can't be provided.
Similar Questions
Ksp of AgCl is 1 × 10–10. Its solubility in 0.1 M KNO3 will be :-10–5 moles/litre> 10–5 moles/litre< 10–5 moles/litreNone of these
A solution of AgClO4 is diluted from its original concentration of 1.11 M to a new concentration of 1.1 M. If its new volume is 0.635 L, what was the original volume of the concentrated solution? L❮❯
Calculate the silver ion concentration, [Ag+], of a solution prepared by dissolving 1.00 g of AgNO3 and 10.0 g of KCN in sufficient water to make 1.00 L of solution. (Hint: Because Kf is very large, assume the reaction goes to completion then calculate the [Ag+] produced by dissociation of the complex.)
Precipitation of AgCl(Ksp=1.6×10−10)AgClKsp=1.6×10-10 occurs when
Determine the mass (in grams) of silver chloride, AgCl, that would be precipitated if an excess of AgNO3 solution is added to 55.0 cm3 of 0.200 mol dm−3 KCl solution. The balanced equation for the reaction is:KCl(aq) + AgNO3(aq) → AgCl(s) + KNO3(aq)Mr AgCl = 143.32
Upgrade your grade with Knowee
Get personalized homework help. Review tough concepts in more detail, or go deeper into your topic by exploring other relevant questions.