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c) A student titrated 50.0mL of a 0.10M solution of a certain weak acid with NaOH(aq) . The results are given in the graph above. (i) What is the approximate pKa of the acid?
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c) A student titrated 50.0mL of a 0.10M solution of a certain weak acid with NaOH(aq) . The results are given in the graph above. (i) What is the approximate pKa of the acid?

User Kawingkelvin
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1 Answer

5 votes

Answer:

3.2

Step-by-step explanation:

The missing graph is attached in the image below:

Initially, p.H from the graph is approximately 2.1

Therefore; the hydrogen ion concentration is


[H^+] = 10^(-2.1)


[H^+] = ({k_a * 0.10})^{(1)/(2)}


{k_a} = 6.3 * 10^( -4)

pKa =
-log ( 6.3 * 10^(-4))

pKa = 3.2

c) A student titrated 50.0mL of a 0.10M solution of a certain weak acid with NaOH-example-1
User Narendranath Reddy
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