8.3 Solutions 455
8.20 Three types of decays are possible
64
29 Cu→64
30 Zn+β−+ν ̄
e (1)64
29 Cu→
64
28 Ni+β
++νe (2)64
29 Cu+e−→ 64
28 Ni+νe (3)The energy released for the three processes are as follows:Q 1 =mcu−mzn=(63. 929759 − 63 .929145)× 931. 5 = 0 .572 MeV
Q 2 =mcu−mNi− 2 me=(63. 929759 − 63 .927959)× 931. 5 − 2 × 0. 511
= 0 .655 MeV
Q 3 =mcu−mNi=(63. 929759 − 63 .927959)× 931. 5 = 1 .677 MeVWe calculate the recoil energy in the process (3) and show that it is
negligible.TNi+Tν=Q= 1 .677 (energy conservation) (4)
PNi=Pν
orPNi^2 = 2 MNiTNi=Pν^2 =Tν^2 (5)Solve (4) and (5) to obtainTNi=6eV8.21 Q=(MAl−MSi)×^931.^5
=Emax+Eγ
=(27. 981908 − 27 .976929)× 931. 5
= 4 .638 MeV
=Emax+Eγ
Therefore,Eγ=Q−Emax= 4. 638 − 2. 865
= 1 .773 MeVFig. 8.10β−decay of^2813 Al
followed byγdecay