Chapter 42: Q44P (page 1304)
Figure 42-19 shows the decay of parents in a radioactive sample. The axes are scaled by and . What is the activity of the sample at?

Short Answer
The activity of the sample at t = 27s is 60 Bq.
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Chapter 42: Q44P (page 1304)
Figure 42-19 shows the decay of parents in a radioactive sample. The axes are scaled by and . What is the activity of the sample at?

The activity of the sample at t = 27s is 60 Bq.
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Figure 42-16 gives the activities of three radioactive samples versus time. Rank the samples according to their (a) half-life and (b) disintegration constant, greatest first. (Hint:For (a), use a straightedge on the graph.)

The isotope can decay to either or ; assume both decays have a half-life of . The ratio of the Caproduced to Ar theproduced is 8.54/1 = 8.54. A sample originally had only. It now has equal amounts ofand; that is, the ratio of Kto Aris 1/1 = 1. How old is the sample? (Hint:Work this like other radioactive-dating problems, except that this decay has two products.)
What is the binding energy per nucleon of the rutherfordium isotope ? Here are some atomic masses and the neutron mass.
Under certain rare circumstances, a nucleus can decay by emitting a particle more massive than an alpha particle. Consider the decays
Calculate the Qvalue for the (a) first and (b) second decay and determine that both are energetically possible. (c) The Coulomb barrier height for alpha-particle emission is 30.0 MeV. What is the barrier height foremission ? (Be careful about the nuclear radii.) The needed atomic masses are
Calculate the mass of a sample of (initially pure) that has an initial decay rate ofdisintegrations/s. The isotope has a half-life of .
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