A 30 mL solution of 0.200 M Ethylene diamine (C2H8N2) was titrated with a 0.210 M solution of HCl. Calculate the pH values for each addition of HCl added during titration. C2H¬8N2 has a Kb=8.3 x 10-5. 1) 0.00 mL of HCl added 2) 5 mL of HCl added 3) 10 mL of HCl added 3) 10 mL of HCl added 4) 20 mL of HCl added 5) 28.6 mL of HCl added 6) 30 mL of HCl added 7) 35 mL of HCl added. 8) 50 mL of HCl added.
I already gave hints on how to solve this here: http://openstudy.com/study?version=feed:join-study-group&referrer=mit%208.01%20physics%20i%20classical%20mechanics,%20fall%201999&domain=ocw.mit.edu#/updates/527f022fe4b022369a7c6909 Please try to do it by yourself, show your work, then we can help further.
Join our real-time social learning platform and learn together with your friends!