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Calculate the pH of a 0.025 M solution of nitric acid. - Leaving Cert Chemistry - Question (i) - 2009

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Calculate the pH of a 0.025 M solution of nitric acid.

Worked Solution & Example Answer:Calculate the pH of a 0.025 M solution of nitric acid. - Leaving Cert Chemistry - Question (i) - 2009

Step 1

Calculate the pH

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Answer

To calculate the pH of the solution, we first recognize that nitric acid (HNO₃) is a strong acid and completely dissociates in water. The concentration of H⁺ ions in a 0.025 M HNO₃ solution is also 0.025 M.

Using the formula for pH: pH=log[H+]\text{pH} = -\log[\text{H}^+]

where [H⁺] is the concentration of hydrogen ions. Substituting the value:

pH=log(0.025)\text{pH} = -\log(0.025)

Using a calculator, we find that:

pH1.6\text{pH} \approx 1.6

Thus, the pH of the 0.025 M nitric acid solution is approximately 1.6.

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