How many grams of dry NH4Cl need to be added to 1.50L of a 0.200M solution of ammonia, NH3, to prepare a buffer solution that has a pH of 8.95? Kb for ammonia is 1.8
NH4 is the conjugate base for NH3. You will need to calculate
pKa for NH4. Then you can use the Henderson Hasselbalch equation to
find the concentration ration [base]/[acid]. Once you know the
ratio, you can determine the required molar concentration of the
salt and then calculate the mass of the salt.
Calculate pKa for NH4
Kb is 1.8x10^-5, where Ka*Kb=Kw
Ka = 1.0x10^-14/(1.8x10^-5)
Ka = 5.5x10^-10
pka = 9.26
Calculate the ration of base to acid using the HH equation and
rearrange to have [base]/[acid] by its self.
8.95=9.26 + log[base]/[acid]
[base]/[acid]= 0.73
Since the pH of the biffer is less than pKa that means the buffer
should contain more acid than base. The ratio of base to acid is
less than 1, which is in agreement with that expectation.
so now calculate the concentration of NH4
[NH3]/[NH4] =0.73
Concentration of NH3 is 0.200M
[NH4]=0.200/0.73
= 0.274 M
Now that you know the CONCENTRATION and have VOLUME, you now solve
for moles (re: C= n/V)
moles = 2.19mols
and using molar mass of 53.5g/mol...
mass = 117.165 grams of NH4Cl
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