50mL of a 0.1000 M aqueous solution of hydrazoic acid (HN3, Ka=1.9*10^-5) is titrated with a 0.1000M solution of sodium Hydroxide. Calculate the pH at the following points a. Before Titration b. After the addition of 5.00mL of NaOH c. After the addition of 25.00mL of NaOH d. After the addition of 50.00mL of NaOH e. After the addition of 5.00mL of NaOH Solution HN3+ NaOH--> NaN3 +H2O mini moles of HN3=5 ka=Ka=1.9*10^-5 pka=4.72 a) ph before addition before addition only weak acid is present alpha=sqrt(ka/c) =1.37*10^-2 c.alpha= [H+]= 1.37*10^-3 ph=2.86 b) after addition of 5 ml mini moles of naoh added=0.5 ph=4.72+log(0.5/(5-0.5)) ph=3.76 c) after addition of 25 ml Naoh ph=4.72+log(2.5/(5-2.5)) ph=4.72 d)after addition of 50 ml now this is equivalence point. Here N1v1=N2v2 here salt hydrolysis will take place N3- +H2O <=> HN3+OH- pOH=1/2(pKw-pKa-logC) C= 5/(50+50) =1/20M pOH=1/2(14-4.72+1.30) =5.29 ph=8.71.