Greetings!
I am having problem solving #82 of the GRE Chemistry Practice Book:
82) A weak acid, HA, has a Ka of 1 x 10-5. If 0.100 mole of this acid is dissolved in one liter of water, the percentage of acid dissociated at equilibrium is closest to:
a) 0.100%
b) 1.00%
c) 99.0%
d) 99.9%
e) 100%
Initially, HA should be 0.1 M. Let H+ and A- be x. Multiply Ka with [HA] to get 1 x 10-6. Use this value in the “Change” part. During the change, HA is deducted by 1 x 10-6, while H+ and A- are increased by 1 x 10-6. At equilibrium, HA = 0.1 – 1 x 10-6, while H+ and A- have the value 1 x 10-6.
To get percent ionization, [H]+equil/[HA]initial x 100. Therefore, 1 x 10-6/0.1 x 100 = 0.001%. The problem is, I can’t find my answer in any of the choices above. Where did I go wrong? I will appreciate any help from you guys. The answer should be letter B.
Hope to hear from you. Thanks!
Sincerely,
Tashkent