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What is the pH of a 0.500 M solution of HF (Ka = 6.8 x 10¯4)?

1 Answer

6 votes

So,

First we need to write the dissociation reaction and check the initial, change, and final concentrations:

Using the fact that the equilibrium constant can be found with the equation:

We know the value for Ka, so, let's replace it and then solve for x:

The value of x represents the H+ ions concentration. Using the definition of pH:

Therefore, the pH of the solution is 1.74.

What is the pH of a 0.500 M solution of HF (Ka = 6.8 x 10¯4)?-example-1
What is the pH of a 0.500 M solution of HF (Ka = 6.8 x 10¯4)?-example-2
What is the pH of a 0.500 M solution of HF (Ka = 6.8 x 10¯4)?-example-3
What is the pH of a 0.500 M solution of HF (Ka = 6.8 x 10¯4)?-example-4
User Wouter Florijn
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