Problem 2
Aqueous solutions of copper salts. The pH of a mol dm copper(II) nitrate solution is 4.65. (2.1) Write the equation for the formation of the conjugate base of the hydrated ion. (2.2) Calculate the p of the corresponding acid–base pair. (2.3) Given , at what pH does start to precipitate? (2.4) Using V and V, write the disproportionation of and calculate its equilibrium constant. (2.5) Calculate the composition (mol dm) of the solution obtained by dissolving mol of copper(I) in of water.
Step 1 of 4: Acidity of hydrated Cu²⁺
Intuition
Because the dissociated fraction is tiny (%), the initial Cu²⁺ concentration can be used undiluted in the denominator.
Analysis
The hydrated ion donates a proton to water. With and , , hence p = 7.30.