Hello!
The dissociation reaction of Acetic Acid is the following:
CH₃COOH + H₂O ⇄ CH₃COO⁻ + H₃O⁺
The ka value is expressed as follows:
![Ka= ([CH_3COO^(-)]*[H_3O^(+)] )/([CH_3COOH])](https://img.qammunity.org/2019/formulas/chemistry/high-school/n12mwt4ma9cptpwq6njf2adr68718wl6uv.png)
After the dissociation, we can clear for the concentration of H₃O⁺ (x) in the following way (Considering that x is small).
![Ka= (x*x)/([CH_3COOH]_i-x) \\ \\ x= √([CH_3COOH]_i*Ka)= \sqrt{2M*1,8*10^(-5) } \\ \\ x=0,006M=[H_3O^(+) ]](https://img.qammunity.org/2019/formulas/chemistry/high-school/trpt12ozt9zzu8wop1896oici57yzqlf2v.png)
So, to finish, we apply the definition of pH
![pH=-log[H_3O^(+)] =-log (0,006M)=2,22](https://img.qammunity.org/2019/formulas/chemistry/high-school/opxt6qld1vxhxfzfubljsktelcg4d86zpc.png)
So the pH of this solution is
2,22Have a nice day!