In the synthesis of gasesous methanol from carbon monoxide gas and hydrogen gas, the following equilibrium concentration were determined at 483K: [CO(g)]=0.0911 M, [ H 2 ( g ) ] = 0.0822 M . Calulate the equilibrium constant and Δ t G ° for the reaction CO ( g ) + 2 H 2 ( g ) → CH 2 OH ( g ) .
In the synthesis of gasesous methanol from carbon monoxide gas and hydrogen gas, the following equilibrium concentration were determined at 483K: [CO(g)]=0.0911 M, [ H 2 ( g ) ] = 0.0822 M . Calulate the equilibrium constant and Δ t G ° for the reaction CO ( g ) + 2 H 2 ( g ) → CH 2 OH ( g ) .
Solution Summary: The author explains the relationship between equilibrium constant and DeltarG° for the given reaction.
In the synthesis of gasesous methanol from carbon monoxide gas and hydrogen gas, the following equilibrium concentration were determined at 483K: [CO(g)]=0.0911 M,
[
H
2
(
g
)
]
=
0.0822
M
. Calulate the equilibrium constant and
Δ
t
G
°
for the reaction
CO
(
g
)
+
2
H
2
(
g
)
→
CH
2
OH
(
g
)
.
Please do not use AI. AI cannot "see" the molecules properly, and it therefore gives the wrong answer while giving incorrect descriptions of the visual images we're looking at. All of these compounds would be produced (I think). In my book, I don't see any rules about yield in this case, like explaining that one product would be present in less yield for this reason or that reason. Please explain why some of these produce less yield than others.
Please answer the question and provide detailed explanations.
All of these compounds would be produced (I think). In my book, I don't see any rules about yield in this case, like explaining that one product would be present in less yield for this reason or that reason. Please explain why some of these produce less yield than others.
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The Laws of Thermodynamics, Entropy, and Gibbs Free Energy; Author: Professor Dave Explains;https://www.youtube.com/watch?v=8N1BxHgsoOw;License: Standard YouTube License, CC-BY