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Ka= 1.34 X 10-5
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CH3NH2 + H2O ↔ CH3NH3+ + OH–
Methylamine, CH3NH2, is a weak base that reacts according to the equation above. The value of the ionization constant, Kb, is 5.2510–4. Methylamine forms salts such as methylammonium nitrate, (CH3NH3
+)(NO3–).
(a) Calculate the hydroxide ion concentration, [OH–], of a 0.225–molar
aqueous solution of methylamine. (b) Calculate the pH of a solution made by adding 0.0100 mole of solid
methylammonium nitrate to 120.0 milliliters of a 0.225–molar solution of methylamine. Assume no volume change occurs.
(c) How many moles of either NaOH or HCl (state clearly which you
choose) should be added to the solution in (b) to produce a solution that has a pH of 11.00? Assume that no volume change occurs.
(d) A volume of 100. milliliters of distilled water is added to the solution in (c). How is the pH of the solution affected? Explain.
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