1000 Solved Problems in Modern Physics

(Romina) #1

2.3 Solutions 119


2.52ΔE=μBBΔm=μBB(becauseΔm=±1)
=(9. 27 × 10 −^24 )(1.0)= 9. 27 × 10 −^24 J= 5. 79 × 10 −^5 eV.
The splitting of levels by equal amount in the presence of magnetic field is
called normal Zeeman effect.
f=ΔE/h= 5. 79 × 10 −^5 × 1. 6 × 10 −^19 / 6. 625 × 10 −^34 = 1. 398 × 1010 c/s


2.53 For the term^2 P 1 / 2 ,l=1,j=^12 ,s=^12 andg=^23. For the term^2 S 1 / 2 ,l=0,


j=^12 ,s=^12 andg=2. The energy levels and splitting of lines in sodium
are shown in Fig. 2.7.

2.54 The ground state energy is


E 0 =hv=

hc
λ

= 6. 63 × 10 −^34 × 3 × 1010 × 84 , 181 / 1. 6 × 10 −^19

= 10 .46 eV
The excitation linesE 2 = 10. 46 + 7. 69 = 18 .15 eV
The line 5461A is emitted when ̊ E 2 is deexcited to a lower levelE 1 such
that
E 2 −E 1 =

1 , 241

λ(nm)

=

1 , 241

546. 1

= 2 .27 eV
ThusE 1 = 18. 15 − 2. 27 = 15 .88 eV

Fig. 2.7Splitting of D 1 lines
in magnetic field


Therefore the two levels involved in the emission of the 5,461A line are ̊
18.15 eV and 15.88 eV

2.55 The 2sstate of the hydrogen atom cannot decay by electric dipole radiation
because a 2s → 1 stransition would violate theΔl =±1 rule (Laporte
rule). In point of fact the 2sstate is a metastable state with a long life time
which eventually decays to the 1sstate by a mechanism, such as collision
with other gas molecules, which is much less probable than an electric dipole
transition.

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