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Question

An optically active compound A upon acid catalysed hydrolysis yields two optically active compounds B and C by pseudo first order kinetics with respect to A. The observed rotation of the mixture after 20 min was 5° while after completion of the reaction it was – 20°. If the optical rotation per molar concentration of A, B and C are 60°, 40° and – 80° respectively and the observed rotation of a compound is directly proportional to the concentration of that compound. (Take optical rotation in degree)

List -IList -II(I) Rate constant of the reaction (in hour1)(P)1.0(II) Initial concentration of compound A (in M)(Q)2.08(III) If the initial concentratrion of A is 0.8 M then(R)0.5the observed optical rotation of mixture after 1 hour(IV) If initially along with A;B and C are also present with(S)22initial concentration [A] = 0.4M, [B] = 0.1 M and [C] = 0.2 Mthen net observed optical rotation of the mixture after 40 min.(T)22(U)18

Which of the following options has the correct combination considering List-I and List-II




A
(I),(Q)
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B
(II),(P)
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C
(II),(R)
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D
(I),(P)
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Solution

The correct option is C (II),(R)
AH+B+CAt t=0 a 0 0At t=20min ax x xAt t=completion 0 a a
According to the question,
60(a-x) + 40x + (-80)x = 5 [since the observed rotation is directly proportional to the concentration] .....(1)
40a - 80a = -20 .....(2)
a = 0.5 M
From equation (1) ,putting the value a=0.5, we get
x = 0.25 M
Since 0.25 is half of 0.5, 20 min is the half life of the reaction.
For a first order reaction, t12=0.693k
k=2.08 hour1
So the initial concentration of compound A = 0.5M
Rate constant of the reaction k = 2.08hour1

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