What is the base dissociation constant for a weak base at equilibrium, B + H2O <===> BH+ + OH–?

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asked Jun 21, 2018 5.3k views

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Robowahoo · Answer 1 · 2018-06-26T02:31:35+0000

Answer: The base dissociation constant for the equation is

Step-by-step explanation:

Base dissociation constant,
K_b exists when a weak base is dissolved in water. It is expressed as the ratio of molar concentration of the products and the molar concentration of the reactants raised to power their respective stoichiometric coefficients.

For the dissociation of a weak base, the equation follows:

$B+H_2O\rightarrow BH^++OH^-$

The equilibrium constant for the above equation:

K_(eq)=([BH^=][OH^-])/([B][H_2O])

Concentration of water is very large and is taken as constant.

K_(eq)* [H_2O]=([BH^=][OH^-])/([B])

Hence, the equation becomes:

K_b=([BH^=][OH^-])/([B])

What is the base dissociation constant for a weak base at equilibrium, B + H2O <===> BH+ + OH–?

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