Textbook Question
Nicotine 1C10H14N22 can accept two protons because it hastwo basic N atoms 1Kb1 = 1.0 * 10-6; Kb2 = 1.3 * 10-112.Calculate the values of Ka for the conjugate acidsC10H14N2H+ and C10H14N2H22 + .
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17. Acid and Base Equilibrium
Ka and Kb
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1:48 minutesOpen Question
What is Kb for the conjugate base of HCN (Ka = 4.9 × 10−10)?
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