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Q.(a) A reaction is first order in A and second order in B.

(a) Write the differential rate equation.
(b) How is the rate affected on increasing the concentration of B three times? (1+1=2) OR
(b) For a certain chemical reaction, variation in the concentration in [R] vs time (s) is given below as a plot — a straight line of ln[R] (y-axis) against t(s) (x-axis), sloping downward from a high value at t=0 to a lower value at a later time. For this reaction:
(i) What is the order of the reaction?
(ii) What is the unit of rate constant k?
(iii) Write the relationship between k and t1/2.
(iv) What does the slope of the above line indicate? (1/2x4=2)
Assam AhsecAHSEC Higher Secondary (HS) Final Examination 2020Subjective· 2mImportance★★★★★
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(a) For a reaction first order in A and second order in B, tripling [B] increases the rate by a factor of 3² = 9. (b) A straight-line plot of ln[R] against t is the signature of first-order kinetics, with slope = −k and t1/2 = 0.693/k.

(a) Rate law and effect of tripling [B]

Given: reaction is first order in A, second order in B, so the differential rate equation is:

Rate = k[A]^1[B]^2 = k[A][B]^2

If [B] is increased three times (keeping [A] constant), the new rate is:

Rate(new) = k[A][3B]^2 = k[A] × 9[B]^2 = 9 × (k[A][B]^2) = 9 × Rate(original)

So tripling [B] increases the rate by a factor of 9 (the rate becomes 9 times the original rate).

(b) Analysis of the ln[R] vs t plot

The graph described is a straight line of ln[R] (y-axis) against t (x-axis), sloping downward — this is the diagnostic plot for a first-order reaction. Integrating the first-order rate law, −d[R]/dt = k[R], gives:

ln[R] = ln[R]0 − kt

which is the equation of a straight line (y = c + mx form) with intercept ln[R]0 and slope −k. A straight-line ln[R] vs t plot confirms first-order kinetics.

  1. Order of the reaction: first order (since ln[R] vs t is linear — this is the characteristic test for first order).
  2. Units of the rate constant k for a first-order reaction: since rate = k[R] and rate has units of concentration/time while [R] has units of concentration, k has units of (time)⁻¹, i.e. s⁻¹. …

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