Question
Consider the following generic reaction. aA+bBcC+dD A plot of log(rate) versus log[A] when [B]is constant yields the following linear equation for its trendline. =0.99+2.97 What
Consider the following generic reaction.
aA+bBcC+dD
A plot of log(rate) versus log[A] when [B]is constant yields the following linear equation for its trendline.
=0.99+2.97
What is the order of the reaction with respect to A?
order:
A plot of log(rate) versus log[B] when [A] is constant yields the following linear equation for its trendline.
=1.07+3.21
What is the order of the reaction with respect to B?
order:
What is the overall order of the reaction?
overall order:
Identify the rate law for this reaction.
A. rate=[A][B]
B. rate=[A]2[B]2
C. rate=[A]2[B]
D. rate=[A][B]2
Please make it clear to read. TY!
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