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Q.For a first order reaction the correct graph is

(a) concentration [R0] (y-axis) vs time (x-axis): a curve decreasing from a high value toward zero, labelled K = - slope
(b) ln[R0] (y-axis) vs time (x-axis): a straight line with negative slope, labelled K = - slope
(c) concentration log[R0] (y-axis) vs time (x-axis): a straight line with positive slope starting from origin, labelled K = slope
(d) concentration [R0] (y-axis) vs time (x-axis): a flat horizontal line (constant concentration)
Jharkhand JacJAC Intermediate Board 2026MCQ· 1mImportance★★★★★
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For a first-order reaction, only a plot of ln(concentration) versus time is linear; a plot of concentration itself versus time is an exponential curve, not a straight line.

For a first-order reaction, integrating the rate law -d[R]/dt = k[R] gives:

ln[R] = ln[R]0 - kt

This is the equation of a straight line (y = mx + c) when ln[R] is plotted on the y-axis against t on the x-axis, with slope = -k, i.e. k = -slope.

  • Option (a), plain concentration [R] vs t, gives a decaying curve (exponential), not a straight line. …

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