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प्रश्न
The OH- concentration in a mixture of 5.0 mL of 0.0504 M NH4Cl and 2 mL of 0.0210 is M NH3 solution is x × 10-6 M. The value of x is ______. (Nearest integer)
[Given Kw = 1 × 10-14 and Kb = 1.8 × 10-5]
पर्याय
6
9
5
3
MCQ
रिकाम्या जागा भरा
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उत्तर
The OH- concentration in a mixture of 5.0 mL of 0.0504 M NH4Cl and 2 mL of 0.0210 is M NH3 solution is x × 10-6 M. The value of x is 3.
Explanation:
From Henderson - Hasselbalch equation
pOH = pkb + log `["salt"/"base"]`
[Salt] = `["NH"_4^+]` = 0.0504 M
[Base] = [NH3] = 0.0210 M
Given, `"K"_"b" = 1.8 xx 10^-5`
Thus, pKb = - log [Kb] = - log [1.8 × 10-5]
Thus, pKb of NH3 = 4.74
pOH = `4.74 + log ([0.0504 xx 5]/[0.0210 xx 2])`
pOH = 5.52
[-OH] = 10-pOH = 10-5.52 = 3 × 10-6
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Ionic Equilibrium in Solution
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