Case 1: pH = 2.
1) find the molar concentration of H3O + or H+
pH = - log [H +] = 2 => [H+] = 10 ^-2 = 0.01 M
2) find the number of moles that will have 80 ml of a 0.01 M solution:
M = n /V => n = M * V = 0.01 M * 0.080 liter = 0.00080 moles
3) Find the volume of the 0.2 M solution that has 0.00080 moles of H+
M = n / V => V = n / M = 0.00080 mol / 0.2 M = 0.004 liter = 4 ml.
That means that you can take 4 ml of the solution 0.2M HCl (which will contain 0.00080 moles of H+) and add water until complete 80 ml.
You can verify: 0.00080 mol / 0.080 liter = 0.01 M
pH = log (1 / 0.01) = 2 .
Case 2: pH = 3.
1) concentration of H+
pH = - log [H+] = 3 => [H+] = 10^ -3 = 0.001
2) number of moles that will have 80 ml 0.001 M solution
M = n / V => n = M * V = 0.001M * 0.080 liter = 0.000080 moles
3) Volume of the 0.2 M solution that will contain 0.000080 moles
M = n / V => V = n / M = 0.000080 mol / 0.2 M = 0.0004 liter = 0.40 ml
Then, you can take 0.40 ml of 0.2 M HCl solution and add water until complete the 80 ml.
