Chemistry: The Central Science (13th Edition)

Published by Prentice Hall
ISBN 10: 0321910419
ISBN 13: 978-0-32191-041-7

Chapter 16 - Acid-Base Equilibria - Exercises - Page 718: 16.41c

Answer

False, the pH of the solution will be $0$.

Work Step by Step

Since it is a strong acid: $[HA] = [H^+]$ $[H^+] = 1.0M$ And we can find the pH: $pH = -log[H^+]$ $pH = -log(1.0) = 0$
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