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Plutonium alpha decay

Find the energy emitted in the α decay of 239 Pu .

Strategy

The energy emitted in the α decay of 239 Pu can be found using the equation E = ( Δ m ) c 2 . We must first find Δ m , the difference in mass between the parent nucleus and the products of the decay.

Solution

The decay equation is

239 Pu 235 U + 4 He .

Thus, the pertinent masses are those of 239 Pu , 235 U , and the α particle or 4 He , all of which are known. The initial mass was m ( 239 Pu ) = 239.052157 u . The final mass is the sum

m ( 235 U ) + m ( 4 He ) = 235.043924 u + 4.002602 u = 239.046526 u .

Thus,

Δ m = m ( 239 Pu ) [ m ( 235 U ) + m ( 4 He ) ] = 239.052157 u 239.046526 u = 0.0005631 u .

Now we can find E by entering Δ m into the equation:

E = ( Δ m ) c 2 = ( 0.005631 u ) c 2 .

We know 1 u = 931.5 MeV / c 2 , so we have

E = ( 0.005631 ) ( 931.5 MeV / c 2 ) ( c 2 ) = 5.25 MeV .

Significance

The energy released in this α decay is in the MeV range, many times greater than chemical reaction energies. Most of this energy becomes kinetic energy of the α particle (or 4 He nucleus), which moves away at high speed. The energy carried away by the recoil of the 235 U nucleus is much smaller due to its relatively large mass. The 235 U nucleus can be left in an excited state to later emit photons ( γ rays).

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Beta decay

In most β particle decays (or beta decay    ), either an electron ( β ) or positron ( β + ) is emitted by a nucleus. A positron has the same mass as the electron, but its charge is + e . For this reason, a positron is sometimes called an antielectron. How does β decay occur? A possible explanation is the electron (positron) is confined to the nucleus prior to the decay and somehow escapes. To obtain a rough estimate of the escape energy, consider a simplified model of an electron trapped in a box (or in the terminology of quantum mechanics, a one-dimensional square well) that has the width of a typical nucleus ( 10 −14 m ). According to the Heisenberg uncertainty principle    in Quantum Mechanics , the uncertainty of the momentum of the electron is:

Δ p > h Δ x = 6.6 × 10 −34 m 2 · kg/s 10 −14 m = 6.6 × 10 −20 kg · m/s .

Taking this momentum value (an underestimate) to be the “true value,” the kinetic energy of the electron on escape is approximately

( Δ p ) 2 2 m e = ( 6.6 × 10 −20 kg · m/s ) 2 2 ( 9.1 × 10 −31 kg ) = 2.0 × 10 −9 J = 12,400 MeV .

Experimentally, the electrons emitted in β decay are found to have kinetic energies of the order of only a few MeV. We therefore conclude that the electron is somehow produced in the decay rather than escaping the nucleus. Particle production (annihilation) is described by theories that combine quantum mechanics and relativity, a subject of a more advanced course in physics.

Nuclear beta decay involves the conversion of one nucleon into another. For example, a neutron can decay to a proton by the emission of an electron ( β ) and a nearly massless particle called an antineutrino    ( ν ):

0 1 n 1 1 p + −1 0 e + v .

The notation −1 0 e is used to designate the electron. Its mass number is 0 because it is not a nucleon, and its atomic number is −1 to signify that it has a charge of e . The proton is represented by 1 1 p because its mass number and atomic number are 1. When this occurs within an atomic nucleus, we have the following equation for beta decay:

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Source:  OpenStax, University physics volume 3. OpenStax CNX. Nov 04, 2016 Download for free at http://cnx.org/content/col12067/1.4
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