Answer:
2.90×10¯⁴M
Step-by-step explanation:
Step 1:
Data obtained from the question.
Equilibrium constant for the acid , Ka = 3.5×10^–8
concentration of the acetic acid, [CH3COOH] = 2.40M
Concentration of Hydrogen ion, [H+] =..?
Step 2:
The balanced equation for the reaction.
CH3COOH(aq) <=> H+(aq) + CH3COO-(aq)
Step 3:
Determination of the concentration of Hydrogen ion, [H+]. This can be obtained as follow:
Initial concentration:
[CH3COOH] = 2.40M
[H+] = 0
[CH3COO-] = 0
During reaction:
[CH3COOH] = –y
[H+] = +y
[CH3COO-] = +y
At Equilibrium:
[CH3COOH] = 2.40 –y
[H+] = y
[CH3COO-] = y
Now, we can obtain the concentration of Hydrogen ion, H+ as follow:
Ka = [H+] • [CH3COO-] /[CH3COOH]
3.5×10^–8 = y×y/2.40
Cross multiply
y² = 3.5×10^–8 × 2.40
Take the square root of both side
y = √(3.5×10^–8 × 2.40)
y = 2.90×10¯⁴
[H+] = y = 2.90×10¯⁴M
Therefore, the concentration of H+ at equilibrium is 2.90×10¯⁴M