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A 15.0 mL sample of 0.013 M HNO is titrated with 0.017MM Kb= 3.9 X 10-10. Determine the pH at these points: 02 M At the beginning (before base is added) pH = -log(Hβ‚‚O) = log (0.013) a 1-886 PH After adding 10.0 mL of CzHsNH2 pH After adding 20.00 mL of C2H5NH2

Respuesta :

Answer:

a) before base added:

β‡’ pH = 6.64

b) after 10 mL:

β‡’ pH = 12.23

c) after 20 mL:

β‡’ pH = 11.62

Explanation:

a) before base is added:

  • HNO + H20 ↔ H3O+ Β + NO-

∴ pKa = 11.4....from literature

β‡’ Ka = 3.98 E-12 = ( [ NO- ] * [ H3O+ ] ) / [ HNO ]

mass balance:

β‡’ C HNO = [ HNO ] + [ NO- ] = 0.013 M............(1)

charge balance:

β‡’ [ H3O+ ] = [ NO- ] + [ OH- ]...........where [ OH- ] is neglect, comes from water

β‡’ [ H3O+ ] = [ NO- ]..........(2)

(2) and (1) in Ka:

β‡’ 3.98 E-12 = [ H3O+ ]Β² / ( 0.013 - [ H3O+ ] )

β‡’ [ H3O+ ]Β² + 3.98 E-12 [ H3O+ ] - 5.17 E-14 = 0

β‡’ [ H3O+ ] = 2.273 E-7 M

β‡’ pH = 6.64

b) after adding 10.0 mL:

C2H5NH2 + H2O ↔ C2H5NH3+ + OH-

∴ C HNO = ((15*0.013) - (10*0.017)) / (15+10) = 1 E-3 M

∴ C C2H5NH2 = (10*0.017) / (15+10) = 6.8 E-3 M

mass balance:

β‡’ 1 E-3 + 6.8 E-3 = [ HNO ] + [ NO- ]

β‡’ [ HNO ] = 7.8 E-3 - [ NO- ].........(3)

charge balance:

β‡’ [ H3O+ ] + [ C2H5NH3+ ] = [ NO- ] + [ OH-]

∴ [ C2H5NH3+ ] β‰… C2H5NH2 = 6.8 E-3 M

β‡’ [ H3O+ ] + 6.8 E-3 = [NO-] + [ OH- ]....the value of [ OH- ] is neglected

β‡’ [ NO- ] = [ H3O+ ] + 6.8 E-3..........(4)

(3) and (4) in Ka:

β‡’ 3.98 E-12 = (( H3O+ ] + 6.8 E-3) * [ H3O+ ]) / ( 7.8 E-3 - ( [H3O+ ] + 6.8 E-3 ))

β‡’ 3.98 E-12 = ([ H3O+]Β² + 6.8 E-3 [ H3O+]) / ( 1 E-3 - [ H3O+ ] )

β‡’ [ H3O+ ]Β² + 6.8 E-3 [ H3O+ ] - 3.98 E-15 = 0

β‡’[ H3O+ ] = 5.85 E-13 M

β‡’ pH = 12.23

c) after adding 20,0 mL of C2H5NH2 (excess of base):

∴ C C2H5NH2 = ((20*0.017) - (15*0.013)) / ( 15+20 ) = 4.143 E-3 M E-3 M

β‡’ [ OH- ] β‰… C C2H5NH2 = 4.143 E-3 M

β‡’ pOH = 2.382

β‡’ pH = 11.62

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