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Radioactivity – decay rates and half life presentation for April 30, 2008 by Dr. Brian Davies, WIU Physics Dept.

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Presentation on theme: "Radioactivity – decay rates and half life presentation for April 30, 2008 by Dr. Brian Davies, WIU Physics Dept."— Presentation transcript:

1 Radioactivity – decay rates and half life presentation for April 30, 2008 by Dr. Brian Davies, WIU Physics Dept.

2 Probability of radioactive decay Radioactive decay obeys an exponential decay law because the probability of decay does not depend on time: a certain fraction of nuclei in a sample (all of the same type) will decay in any given interval of time. The rate law is:  N = - N  t where N is the number of nuclei in the sample is the probability that each nucleus will decay in one interval of time (for example, 1 s)  t is the interval of time (same unit of time, 1s)  N is the change in the number of nuclei in  t

3 Radioactive decay constant The rate law  N = - N  t can also be written:  N/N = -  t As an example, Suppose that the probability that each nucleus will decay in 1 s is = 1x10 -6 s -1 In other words, one in a million nuclei will decay each second. To find the fraction that decay in one minute, we multiply by  t = 60 s to get:  N/N = -  t = - (1x10 -6 s -1 ) x (60s) = - 6x10 -5 Equivalently: = 6x10 -5 min -1 and  t = 1 min

4 Rate of radioactive decay Now write the rate law  N = - N  t as:  N/  t = -  N ( -  N/  t is the rate of decay) Stated in words, the number of nuclei that decay per unit time is equal to  N, the decay constant times the number of nuclei present at the beginning of a (relatively short)  t. Example: if = 1x10 -6 s -1 and N = 5x10 9. then  N/  t = -  N = -1x10 -6 s -1  5x10 9 = - 5x10 3 s -1 If each of these decays cause radiation, we would have an activity of 5000 Bq. (decays per second)

5 Decrease of parent population  N = - N  t represents a decrease in the population of the parent nuclei in the sample, so the population is a function of time N(t).  N/  t = -  N can be written as a derivative: dN/dt = -  N and this can be solved to find: N(t) = N o exp(- t) = N o e - t Recall that e 0 = 1; we see that N o is the population at time t = 0 and so the population decreases exponentially with increasing time t.

6 Graph of the exponential exp(x) exp(x) x exp(0) = 1 + exp(x)<1 if x<0

7 Graph of the exponential exp(- t) exp(- t) t + exp(-1) = 1/e = 0.37 exp(-0.693) = 0.5 = ½ + exp(0) = 1 +

8 Half-life of the exponential exp(- t) exp(- t) t + exp(-0.693) = 0.5 = ½ + + t ½ The exponential decays to ½ when the argument is -0.693

9 Half-life of the exponential exp(- t) Because the exponential decays to ½ when the argument is -0.693, we can find the time it takes for half the nuclei to decay by setting exp(- t ½ ) = exp(-0.693) = 0.5 = ½ The quantity t ½ is called the half-life and is related to the decay constant by: t ½ = 0.693 or t ½ = 0.693/ In our previous example, = 1x10 -6 s -1 The half-life t ½ = 0.693/ = 6.93x10 5 s = 8 d

10 Half-life of number of radioactive nuclei Because the exponential decays to ½ after an interval equal to the half-life this means that the population of radioactive parents is reduced to ½ after one half-life: N(t ½ ) = N o  exp(- t ½ ) = ½ N o In our example, the half-life is t ½ = 8 d, so half the nuclei decay during this 8 d interval. In each subsequent interval equal to t ½, half of the remaining nuclei will decay, and so on.

11 Half-life of activity of radioactive nuclei Because the activity (the rate of decay) is proportional to the population of radioactive parent nuclei:  N/  t = -   N(t) but N(t) = N o e - t the activity has the same dependence on time as the population N(t) ( an exponential decrease ):  N/  t = (  N/  t) o  e - t In our example, the half-life is t ½ = 8 d, so the activity is reduced by ½ during this 8 d interval.

12 Multiple half-lives of radioactive decay The population N(t) decays exponentially, and so does the activity  N/  t. After n half-lives t ½, the population N(t) = N(n. t ½ ) is reduced to N o /(2 n ). In our example, the half-life is t ½ = 8 d, so the activity is reduced by ½ during this 8 d interval, and the population is also reduced by ½. After 10 half-lives, the population and activity are reduced to 1/(2 10 ) = 1/1024 = 0.001 times (approximately) their starting values. After 20 half-lives, there is about 10 -6 times N o.

13 Plotting radioactive decay (semi-log graphs)  N/  t = (  N/  t) o  e - t or N(t) = N o  e - t can be plotted on semi-log paper in the same way as the exponential decrease of intensity due to absorbers in X-ray physics. ln(N) = ln( N o  e - t ) = ln(N o ) + ln(e - t ) ln(N) = - t + ln(N o ) which has the form of a straight line if y = ln(N) x = t and m = - y = m. x + b with b = ln(N o )

14 Semi-log graph of the exponential exp(-x) exp(-x) x + exp(-1) = 1/e = 0.37 exp(-0.693) = 0.5 = ½ + exp(0) = 1 +

15 Plotting radioactive decay (semi-log graphs) Starting with N(t) = N o  e - t, we want to plot this on semi-log paper based on the common logarithm log 10. We previously had: ln (N) = ln (N o  e - t ) = ln (N o ) + ln (e - t ) = - t + ln (N o ) This unfortunately uses the natural logarithm, not common logarithm. We can use this result: log 10 (e x ) = (0.4343)x Repeat the calculation above for the common log 10 log(N) = log(N o ) + log(e - t ) = -(0.4343) t + log(N o ) If we plot this on semi-log paper, we get a straight line for y = log(N) as a function of t, with slope -(0.4343).

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