If 73.6 grams of carbonic acid are sealed in a 2.00 L soda bottle at room temperature (298.15 K) and decompose completely via the equation below, what would be the final pressure of carbon dioxide (in atm) assuming it had the full 2.00 L in which to expand? H2CO3(aq) → H20(1) + CO2(g)

Chemistry: Principles and Reactions
8th Edition
ISBN:9781305079373
Author:William L. Masterton, Cecile N. Hurley
Publisher:William L. Masterton, Cecile N. Hurley
Chapter5: Gases
Section: Chapter Questions
Problem 57QAP: A gas effuses 1.55 times faster than propane (C3H8) at the same temperature and pressure. (a) Is the...
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If 73.6 grams of carbonic acid are sealed in a 2.00 L soda
bottle at room temperature (298.15 K) and decompose
completely via the equation below, what would be the final
pressure of carbon dioxide (in atm) assuming it had the full
2.00 L in which to expand?
H2CO3(aq) → H20(1) + CO2(g)
atm
1 2
4
6.
C
7
8
9.
+/- .
+
х 100
LO
Transcribed Image Text:If 73.6 grams of carbonic acid are sealed in a 2.00 L soda bottle at room temperature (298.15 K) and decompose completely via the equation below, what would be the final pressure of carbon dioxide (in atm) assuming it had the full 2.00 L in which to expand? H2CO3(aq) → H20(1) + CO2(g) atm 1 2 4 6. C 7 8 9. +/- . + х 100 LO
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