What is the approximate value of pH of a 0.2M solution of ammonia? Given, Kb=1.76×10−5.
A
11.28
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B
9.82
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C
8.56
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D
13.47
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Solution
The correct option is A11.28 We know that for weak bases, pOH=12(pKb−logC) and pH+pOH=14 so, pH=14−12(pKb−logC) ⇒pH=14−12(−logKb−logC) putting the values, ⇒pH=14−12[−log(1.76×10−5)−log(0.2)] ⇒pH=14−12(4.75+0.69) ⇒pH=14−12(5.44) ⇒pH=14−2.72=11.28