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A 0.187 M weak acid solution has a pH of 3.99. Find Ka for the acid. Express your answer using two significant figures.

User Geraldine
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1 Answer

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Answer:

5.56 × 10⁻⁸

Step-by-step explanation:

Step 1: Given data

  • Concentration of the weak acid (Ca): 0.187 M
  • pH of the solution: 3.99

Step 2: Calculate the concentration of H⁺

We will use the following expression.

pH = -log [H⁺]

[H⁺] = antilog -pH = antilog -3.99 = 1.02 × 10⁻⁴ M

Step 3: Calculate the acid dissociation constant (Ka)

We will use the following expression.


Ka = ([H^(+)]^(2) )/(Ca) = ((1.02 * 10^(-4))^(2) )/(0.187) = 5.56 * 10^(-8)

User Randi
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