Answer:
5.56 × 10⁻⁸
Step-by-step explanation:
Step 1: Given data
- Concentration of the weak acid (Ca): 0.187 M
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)](https://img.qammunity.org/2021/formulas/chemistry/college/o300t7x1xetx7pcltttgd6huu9h1t130x5.png)