Consider the titration of 40.0 mL of 0.223-M of KX with 0.174-M HCl. The pKa of HX = 6.72. Give all pH values to 0.01 pH units.
Consider the titration of 40.0 mL of 0.223-M of KX with 0.174-M HCl. The pKa of...
Consider the titration of 30.0 mL of 0.170-M of KX with 0.110-M HCl. The pKa of HX = 7.42. Give all pH values to 0.01 pH units. a) What is the pH of the original solution before addition of any acid? b) How many mL of acid are required to reach the equivalence point? c) What is the pH at the equivalence point? d) What is the pH of the solution after the addition of 26.4 mL of acid? e)...
Consider the titration of 50.0 mL of 0.183-M of KX with 0.090-M HCl. The pKa of HX = 8.13. Give all pH values to 0.01 pH units. a) What is the pH of the original solution before addition of any acid? pH = 10.70 b) How many mL of acid are required to reach the equivalence point? VA = 101.67 mL c) What is the pH at the equivalence point? pH = 4.67 d) What is the pH of the...
Consider the titration of a 40.0 mL sample of 0.150 M HCl with 0.200 M KOH a) What is the initial pH? b) What is the pH after the addition of 10.0 mL of the KOH? c) What is the pH at the equivalence point? d) What is the pH after 40.0 mL of KOH has been added?
Consider the titration of 50.0 mL of 0.133 M NH3 (a weak base with Kb = 1.76 x 10-5 ) with 0.223 M HCl (a strong acid). Calculate the pH of the solution at each of the following points: 1. What is the pH of the solution before the titration is begun? 2. What is the pH of the solution after the addition of 15 mL of HCl? 3. What is the pH of the solution at the equivalence point?...
16.36 Consider the titration of 40.0 mL of 0.100 M NaOH with 0.100 M HCI. a) b) c) What is the pH after adding 35.0 mL of acid? What is the pH at the equivalence point? What is the pH after adding 45.0 mL of acid?
30 Consider the titration of a 40.0 mL of 0.113 M weak acid HA (Ka=2.7 x 10) with 0.100 M LIOH. a What is the pH of the solution before any base has been added? 3 points b What would be the pH of the solution after the addition of 20.0 mL of LIOH? 3 points How many mL of the LiOH would be required to reach the halfway point of the titration? 3 points d What is the pH...
A 50.0 mL solution of 0.174 M potassium alaninate (H2NC2H5CO2K) is titrated with 0.174 M HCl. The pKa values for the amino acid alanine are 2.344 (pKa1) and 9.868 (pKa2), which correspond to the carboxylic acid and amino groups, respectively. a. Calculate the pH at the first equivalence point b. Calculate the pH at the 2nd equivalence point
Consider the titration of 40.0 mL of 0.500 M NH, with 1.00 M HC a) What is the initial pH of the NHg(aq)? b) What is the pH halfway to the equivalence point? c) What is the volume of HCI needed to reach the equivalence point? What is the pH at the equivalence point? d) Sketch the titration curve. Label the point(s) where there is a A) a weak base B) weak acid C) Buffer D) Strong acid in excess,...
Consider the titration of a 23.3 −mL sample of 0.125 M RbOH with 0.110 M HCl. Determine each quantity: A) the volume of added acid required to reach the equivalence point B) the pH at the equivalence point C) the pH after adding 6.0 mL of acid beyond the equivalence point D) Consider a buffer solution that is 0.50 M in NH3 and 0.20 M in NH4Cl. For ammonia, pKb=4.75. Calculate the pH of 1.0 L of the original buffer,...
Consider the titration of a 25.0 mL sample of 0.100 M HCl with 0.200 M KOH. The volume of equivalence is 12.50 mL. (Remember to report pH values with two places past the decimal point.) A)What is the pH of the sample before any KOH is added? B)What is the pH after 9.00 mL of KOH have been added? C)What is the pH at the equivalence volume? D)What is the pH after the addition of 14.0 mL of KOH?