pKa = - log Ka = - log (1.8 * 10^-5) = 4.745
volume of NaOH solution needed at equivalence point = 25.0 mL * 0.350 M / 0.350 M = 25.0 ml
and
total volume of solution = (25.0 + 25.0) = 50.0 ml
at equivalence point,
CH3COOH + NaOH ..........> CH3COONa + H2O
[salt] = 25.0 ml * 0.350 M / 50.0 ml = 0.175 M
so
salt hydrolysis occurs.
pH = 1/2 * [pKw + pKa + log C]
or
pH = 1/2 * [14 + 4.745 + log (0.175)]
or
pH = 8.994
or
pH = 9.0 (answer)
Calculate the pH at the equivalence volume for the titration of 25.0 mL of 0.350 M...
Calculate the pH in the titration of 45.0 mL of 0.350 M accetic acid by sodium hydroxide after the addition to the acid solution of 10.5 mL of 0.250 M NaOH. The ka of acetic acid is 1.8 x 10^-5
What is the pH at the equivalence point in the titration of a
29.4 mL sample of a 0.403 M aqueous acetic acid solution with a
0.386 M aqueous sodium hydroxide solution?
What is the pH at the equivalence point in the titration of a 29.4 mL sample of a 0.403 M aqueous acetic acid solution with a 0.386 M aqueous sodium hydroxide solution?
1) Calculate the pH in the titration of 50.00 mL of 0.060 M acetic acid (CH3COOH) with a 0.120 M sodium hydroxide, NaOH solution after the addition of the following volumes of base: Ka for acetic acid = 1.8 x 10-5 A) 0 mL pH = B) 10 ml pH =
A) What is the pH at the equivalence point in the titration of a 19.5 mL sample of a 0.416 M aqueous acetic acid solution with a 0.395 M aqueous barium hydroxide solution? B) A 17.3 mL sample of a 0.386 M aqueous hypochlorous acid solution is titrated with a 0.377 M aqueous sodium hydroxide solution. What is the pH at the start of the titration, before any sodium hydroxide has been added? C) When a 19.8 mL sample of...
Titrations 10. Calculate the pH at the equivalence point for the titration above of Sun acid (K=1.8x105) titrated with 0.2M sodium hydroxide. oint for the titration above of 50mL of 0.2M acetic 11. Sketch the titration curve when 50mL of 0.2M acetic acid (K 1.8x105) titrated with 0.2M sodium hydroxide.
1.Draw the pH titration curve for the titration of 35 mL of 0.150 M acetic acid with 0.200 M NaOH. Include the pH values and NaOH volume requested below on your pH titration curve. Also, put on the curve the species that dictates the pH at the requested pH values. For acetic acid, K = 1.8 x 10%. 1) the initial pH 2) the pH after 15.0 mL of NaOH have been added 3) the volume of NaOH at the...
Calculate the pH in the titration of 50.0 ml of 1.20 M acetic acid by 0.240 M sodium hydroxide after the addition of a) 10.0 ml of base b) 25.0 ml of base c) 35.0 ml of base.
calculate the pH of the solution at the equivalence point when 25.0 mL of .10 M benzoic acid is titrated with 0.10 M potassium hydroxide. The Ka for benzoic acid is 6.3 x 10^-5
1) What is the pH at the equivalence point in the titration of a 28.6 mL sample of a 0.318 M aqueous acetic acid solution with a 0.344 M aqueous potassium hydroxide solution? pH = 2) A 43.9 mL sample of a 0.512 M aqueous nitrous acid solution is titrated with a 0.203 M aqueous sodium hydroxide solution. What is the pH after 73.7 mL of base have been added? pH =
Calculate the pH in the titration of 50.0 mL of 0.120 M acetic acid by 0.240 M sodium hydroxide after the addition of (a) 10.0 mL of base, (b) 25.0 mL of base, and (c) 35.0 mL of base. Please give complete solution with the chemical equation and draw the titration curve. Will rate your answer.