A group of students perform a titration experiment. The buret tube is filled to the 0.00ml line with 0.100M NaOH solution. The E. flask contains 50.0ml ov 0.100M HC2H3O2 solution. The Ka of the acetic acid is: Ka = 1.8 x 10-5. A) Write the ionic equation for the conjugate acid reactihng with water. One product is the OH- polyatomic ion.  B) What is the pH of the equivalence point?

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Chapter15: Acid-base Equilibria
Section: Chapter Questions
Problem 9RQ: What is an acidbase indicator? Define the equivalence (stoichiometric) point and the end point of a...
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A group of students perform a titration experiment. The buret tube is filled to the 0.00ml line with 0.100M NaOH solution. The E. flask contains 50.0ml ov 0.100M HC2H3O2 solution. The Ka of the acetic acid is: Ka = 1.8 x 10-5.

A) Write the ionic equation for the conjugate acid reactihng with water. One product is the OH- polyatomic ion. 

B) What is the pH of the equivalence point?

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