1. Calculate the pH of a solution that is 1.00 M HF, 1.00 M HCl, and 1.439 MNaF. (Ka= 7.2 x10–4)
I am getting 2.48 for this one
2. Calculate the pH of a solution that is 1.00 MHF, 2.00 M HCl, and 1.439 MNaF. (Ka= 7.2 x10–4)
and for the second one i keep getting 2.48 or 0.25. Which one is it??
1. Calculate the pH of a solution that is 1.00 M HF, 1.00 M HCl, and...
Calculate the pH of a solution that is 0.50 M in HF (Ka = 7.2 x10-4) and1.50 M in NaF. A. 10.56 B. 3.62 C. 3.44 D. 0.30 E. 3.14
HELP! Exam tomorrow!! Calculate the pH of a solution that is 2.00 M HF, 1.00 M NaOH, and 0.500M NaF n 1.00 L of the solution. Ka for HF = 7.2 x 10-4) HF(aq) + OH-(aq)-->F-(aq) + H2O(l) Correct answer is 3.32 really need help with the set up!! How many moles of solid NaF would have to be added to 1.0 L of 1.90 M HF solution to achieve a buffer of pH 3.35? Assume there is no volume...
Given a 1.00 L solution that is 0.60 M HF and 1.00 M KF, calculate the pH after 0.060 mol NaOH is added, and calculate the pH after 0.20 mol HCl is added to the original solution. Ka = 7.2x10-4 pH = when NaOH is added pH = when HCl is added
Calculate the pH of a solution produced by adding 0.50 L of 1.00 M HCl to 0.50 L of 2.00 M NaClO. Ka(HClO) = 2.9x10-8 Calculate the pH of a solution produced by adding 0.50 L of 1.00 M NaOH to 0.50 L of 2.00 M HClO. Ka(HClO) = 2.9x10-8 It is desired to have a buffer with a pH = 5.000 using acetic acid. If [HAc] + [Ac─ ] = 0.500 M, what is the required [HAc] and [Ac─...
Consider 1.0 L of a solution which is 0.45 M HF and 0.2 M NaF (Ka for HF = 7.2 x 10-4). Assume 2 significant figures in all of the given concentrations so that you should calculate all of the following pH values to two decimal places. Calculate the pH after 0.10 mol of HCl has been added to the original solution. Assume no volume change on addition of HCl. Why do we need to convert to Kb? I know...
w question will save this response. Question 4 Calculate the pH of a solution that is 2.00 M HF, 1.00 M NaOH, and 0.672 M NaF. (Kg = 7.2 x 10-4 a. 3.14 b.3.37 c.2.67 d. 2.92 e none of these
Calculate the concentration of all species present and the pH of a 0.019-M HF solution. Ka for HF is 7.2 x 10-4 a (H+) = [F-]= [HF] = [OH-]= Submit
A 1.0-liter solution contains 0.25 M HF and 0.32 M NaF (Ka for HF is 7.2 × 10–4). What is the pH of this solution
Calculate the pH of a solution that is 0.25 M KF and 0.20 M HF. (Given: Ka (HF)-6.8x 10-4) O A. 3.26 O B. 3.36 O C. 3.46 D. 10.45 E. 10.64
What is the pH of a buffer solution containing 0.13 M HF and 5.0×10−2 M NaF? What is the pH of a buffer solution containing 1.0×10−2 M HF and 0.16 M NaF? Using the table given below for Ka values, compare the pH of an HF buffer that contains 0.13 MHF and 5.0x10-2 M NaF with another HF buffer that contains 1.0x10-2 MHF and 0.16 M NaF. Ka and K b values for selected weak acids and bases HF Acid...