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Alla [95]
3 years ago
8

A metal plating solution contains 50.00 mg/L of copper. Determine the concentration, in moles/L, to which the hydroxide concentr

ation must be raised to precipitate all but 1.3 mg/L of the copper using lime. The Ksp of copper hydroxide is 2.00 3 10219. Estimate the final pH (report your answer to two decimal places).
Chemistry
1 answer:
ExtremeBDS [4]3 years ago
5 0

Answer:

pH=6.51

Explanation:

Given:

  • <em>The concentration of Cu initially = 50mgL^{-1} = \frac{50*10^{-3}}{63.5}=0.787*10^{-3}molL^{-1}</em>
  • <em>The concentration of Cu finally = 1.3mgL^{-1} = \frac{1.3*10^{-3}}{63.5}=0.0205*10^{-3}molL^{-1} </em>
  • <em>K_{sp}=2.20*10^{-20} -This is the actual K_{sp} of Cu(OH)_2</em>

We know that ,

Cu(OH)_2⇒Cu^{2+}+2OH^-

Therefore ,

K_{sp}=[Cu^{2+}][OH^-]^2

2.20*10^{-20}=0.0205*10^{-3}*[OH^-]^2\\1.0731*10^{-15}=[OH^-]^2\\3.276*10^{-8}=[OH^-]

pOH=-log[OH^-]\\\\pOH=-log(3.276*10^{-8})\\pOH=7.485\\pH=14-pOH\\pH=14-7.49\\pH=6.51

Answer: pH=6.51

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