The dissociation constant of a base MOH is 5.5×10−6, then calculate the dissociation constant of its conjugate acid.
A
1.81×10−9
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B
1.81×10−8
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C
2.81×10−7
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D
2.81×10−8
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Solution
The correct option is A1.81×10−9 MOH(aq)⇌M+(aq)+OH−(aq)BaseConjugateAcidKb=[M+].[OH−][MOH]M+(aq)+H2O(l)⇌MOH(aq)+H+(aq)Ka=[MOH][H+][M+] We see that, Kw=[H+][OH−]=Ka×Kb ⇒Ka=KwKb