Consider the titration of 50 mL of a solution of 0.05 M NaCl with 0.1M AgNO3. Calculate pAg after 10 mL of addition of AgNO3, at 25 mL, and 26 mL. The Ksp of AgCl is 1.8
Added by Randy C.
Step 1
First, we need to find the moles of NaCl and AgNO3 in the solution at each point. Show more…
Show all steps
Your feedback will help us improve your experience
Adi S and 93 other Chemistry 101 educators are ready to help you.
Ask a new question
Labs
Want to see this concept in action?
Explore this concept interactively to see how it behaves as you change inputs.
Key Concepts
Recommended Videos
Perform the calculations needed to generate a titration curve for 50.00 mL of a 0.0500 M NaCl solution titrated with 0.1000 M AgNO3. Note that for AgCl, the Ksp = 1.82×10-10. (i) Calculate pAg when 10.00 mL of AgNO3 is added. (ii) Calculate pAg when 25.00 mL of AgNO3 is added. (iii) Calculate pAg when 26.00 mL of AgNO3 is added. Given the solubility products above, show (by calculation) which of the two compounds concerned has the greater solubility in water. Ksp(AgCl) = 1.78x10-10 Ksp(Ag2CrO4) = 2.45x10-12
Sri K.
The silver ion concentration in terms of pAg during the titration of 25.00 mL of 0.1000 M NaCl with 0.0500 M AgNO3 after the addition 60 ml is
Ronald P.
A 25.00 mL solution containing AgNO3 was titrated with 0.1008 M sodium chloride. What was the concentration of Ag+ in the unknown if 23.25 mL of titrant was used to precipitate all the silver to silver chloride (AgCl)? Report the answer in mg/mL.
Razan K.
Recommended Textbooks
Chemistry: Structure and Properties
Chemistry The Central Science
Chemistry
Transcript
Watch the video solution with this free unlock.
EMAIL
PASSWORD