CameraIcon
CameraIcon
SearchIcon
MyQuestionIcon
MyQuestionIcon
1
You visited us 1 times! Enjoying our articles? Unlock Full Access!
Question

Which of the following represents the rate law for the following reversible reaction?


A
d[A]dt=k1[A]+k2[B]
No worries! We‘ve got your back. Try BYJU‘S free classes today!
B
+d[A]dt=k1[A]k2[B]
No worries! We‘ve got your back. Try BYJU‘S free classes today!
C
d[B]dt=k1[A]k2[B]
Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses
D
d[B]dt=k1[A]k2[B]
No worries! We‘ve got your back. Try BYJU‘S free classes today!
Open in App
Solution

The correct option is C d[B]dt=k1[A]k2[B]

Let us write down the rate law for the reaction using what we know.

We know that rate of reduction in [A] and rate of increase in [B] are equal. So,

d[A]dt=d[B]dt

And we know that this is proportional [A]. But B is produced as the reaction starts and also starts converting back to A at the given rate k2

Therefore, we need to reverse sign of [B] in the rate law to account for this change.

We get,

d[A]dt=d[B]dt=k1[A]k2[B]

flag
Suggest Corrections
thumbs-up
0
Join BYJU'S Learning Program
similar_icon
Related Videos
thumbnail
lock
Types of Elementary Reactions
CHEMISTRY
Watch in App
Join BYJU'S Learning Program
CrossIcon