The dissociation constant (K) for hydrofluoric acid (HF) can be calculated using the formula K = [H3O+][F-]/[HF]. Given a concentration of 2.0g of HF per liter and a pH of 2.2, the concentration of H3O+ can be determined using the equation [H3O+] = 10-pH. The molarity of HF must first be calculated by converting grams to moles, and then applying the equilibrium concentrations to find K. This process involves understanding the ionization of HF and the relationship between initial and equilibrium concentrations.
PREREQUISITESChemistry students, educators, and professionals involved in analytical chemistry, particularly those focusing on acid-base equilibria and dissociation constants.
JFo said:use the ph to find the concentration of H+
remember pH = -log[H+] => [H+] = 10^-pH
use the info they gave you about the amount of HF to get molarity of HF solution.
[F-] = [HF] - [H+]
then use the definition for the dissociation constant
maverick280857 said:ChemRookie, I received your message. Here goes.
Molarity = number of moles of solute per litre of solution
Molarity of HF before ionization = moles of HF given to you/volume of solution in litres. Let this equal a.
Now, consider the ionization of HF:
:::::::::: HF----------------->H+ + F-
t = 0_____a_______________ ~0____0
t = teq___a-x_______________x_____x
Here x is the concentration of HF that has been consumed during the ionization so that at equilibrium, H+ and F- are formed in equal amounts, i.e. x.
The crucial step: Note that I have put a ~ sign in the first line below H+. This is to indicate that the solution contains some amount of hydrogen ions due to the autoionization of water which we have neglected due to its small value. It is conceptually incorrect to say that H+ in such a solution is zero before HF ionizes. However, once HF has ionized then you can make an order of magnitude approximation and say that almost all the hydrogen ions (or more precisely hydronium ions) in solution are due to ionization of HF. Its like this: if x = 4 then 4 + 10^{-7} (example) is approximately 4.
Now,
K_{c} = \frac{[H^+][F^-]}{[HF]}
REMEMBER: These are molarities in the square brackets.
Now you should be able to use the definition of pH and solve the problem. Stated differently this is precisely what JFo told you:
"All the H+ and F- come from HF so the initial concentration of HF = concentration of HF at any time t + concentration of H+ (or F-) at that time."
Please try all this on paper and do many equilibrium problems after this to come to terms with the methods which look complex initially. You should look for constraints like charge balance, mass balance, etc.
Hope that helps...
cheers
Vivek
PS--the underscores are for spacing only...I couldn't figure out how to make that table well spaced :-D
I understand this tells us how strongly binded a solution is.
So I hve hydroflouric acid, it says it contains 2.0g of HF per litre and has a PH of 2.2. How do I figure what the dissociation constant for HF is?