A chemist must dilute 20.3mL of 3.32M aqueous zinc nitrate ZnNO32 solution until the concentration falls to 1.00M. He'll do this by adding distilled water to the solution until it reaches a certain final volume. Calculate this final volume, in milliliters. Be sure your answer has the correct number of significant digits.

Chemistry: The Molecular Science
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ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:John W. Moore, Conrad L. Stanitski
Chapter13: The Chemistry Of Solutes And Solutions
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A chemist must dilute 20.3mL of 3.32M aqueous zinc nitrate ZnNO32 solution until the
concentration falls to 1.00M. He'll do this by adding distilled water to the solution until it reaches a
certain final volume. Calculate this final volume, in milliliters. Be sure your answer has the correct
number of significant digits.
Transcribed Image Text:A chemist must dilute 20.3mL of 3.32M aqueous zinc nitrate ZnNO32 solution until the concentration falls to 1.00M. He'll do this by adding distilled water to the solution until it reaches a certain final volume. Calculate this final volume, in milliliters. Be sure your answer has the correct number of significant digits.
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