Answer: The hydronium ion concentration for the solution is
![3.98* 10^(-4)M](https://img.qammunity.org/2020/formulas/chemistry/high-school/r9za1pyqyuhpl30lzaf8435mqyw5dtiqac.png)
Step-by-step explanation:
pH is defined as the negative logarithm of hydrogen ion concentration or hydronium ion concentration present in a solution.
To calculate the pH of the reaction, we use the equation:
![pH=-\log[H_3O^+]](https://img.qammunity.org/2020/formulas/chemistry/high-school/f390cegazdnm7uy3e4lyqajx4gquacwg62.png)
We are given:
pH of the solution = 3.40
Putting values in above equation, we get:
![3.40=-\log[H_3O^+]](https://img.qammunity.org/2020/formulas/chemistry/high-school/2yx00yjh4xclz3sm03vhub3cmcug5s0xv6.png)
![[H_3O^+]=3.98* 10^(-4)M](https://img.qammunity.org/2020/formulas/chemistry/high-school/bsotozsh3kit1xqws2j2czuotvrlut3yzn.png)
Hence, the hydronium ion concentration for the solution is
![3.98* 10^(-4)M](https://img.qammunity.org/2020/formulas/chemistry/high-school/r9za1pyqyuhpl30lzaf8435mqyw5dtiqac.png)