Given that :
Reaction equation ; [tex]HB_{r} + KOH ---> KBr + H_{2}O[/tex]
A) and B) Determine the Initial pH before addition of titrant
First step : compute the value of pOH
pOH = - log ( [OH⁻])
= -log ( 0.320 ) = 0.50
∴ Initial pH before the titrant is added = 14 - pOH
= 14 - 0.5 = 13.5
C ) Determine the pH of solution after 5 mL titrant is added
First step : determine the reacting moles of each substance
n kOH = 0.025 mL * 0.320 mol/L = 0.00800 mol
n HBr = 0.005 * 0.750 mol/L = 0.00375 mol
next step : compute the value of the concentration of OH⁻ in final solution
n kOH ( remaining ) = 0.00800 - 0.00375 = 0.00425 mol
final solution = 25.00 mL + 5.00 mL = 30.00 mL
∴ The value of the concentration of [ OH⁻] in 30.00 mL
= [ OH⁻] = ( 0.0042 mol / 0.0300 mL )
= 0.142 M
hence pOH = - log (0.142) = 0.849
Final step; The pH of the solution after 5 mL of titrant is added
= 14 - pOH
= 14 - 0.849 = 13.15
Hence we can conclude that the initial pH before titrant was added is 13.50 and the pH after is as listed above.
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