Chemical Forums
Chemistry Forums for Students => Undergraduate General Chemistry Forum => Topic started by: kamilast on January 20, 2021, 03:36:28 PM
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The task is
calculate pH of the 0,1M solution K2Cd(CN)4. For complex logβ=18,9 and pKHCN=10
This is what I tried to do:
K2(Cd(CN)4) :rarrow: 2K+ + Cd(CN)42-
Cd(CN)4 ::equil:: Cd2+ + 4CN-
then i convert β to K by K=1\β and I made "before\after" table from where I got concentrations: Cd(CN)4=0,2-x ;Cd=x; Cn=4x
K=4x^5/0,1 and its 9,16x10^-5
CN- +H2O ::equil:: HCN+OH- Ka=10^-10
I did another table from where Ka=x^2/9,16x10^-5. when i put this into formula for pH it turned out that the answer is wrong.
I would be so greatfull for any hints :'(
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