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Question

Calculate pH of 0.002 N NH4OH having 2 % dissociation.

A
7.6
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B
8.6
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C
9.6
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D
10.6
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Solution

The correct option is C 9.6
NH4OH is a weak base and partially dissociated
Concentration
NH4OHNH+4+OH
Before: 1 0 0

after 1α α α
Since NH4OH is partially dissociated[OH]=Concentration (C)×Dissociation (α)Here α=2 %=2100 C=0.002 N=2×103
[OH]=Cα=2×103×2100 =4×105M pOH=log[OH]=log(4×105)=4.4pH=144.4=9.6

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