1000 Solved Problems in Modern Physics

212 3 Quantum Mechanics – II

Writing sin^2 θ= 1 −cos^2 θand simplifying we getu∗u=^29 A^23 e−^2 xx^4 which

is independent of bothθandφ. Therefore the 3dfunctions are spherically

symmetrical or isotropic.

3.71ψ 100 =

(

πa^30

)−^12

exp

(

−ar 0

)

The probabilitypof finding the electron within a sphere of radiusRis

P=

∫ R

0

|ψ 100 |^2. 4 πr^2 dr=

(

4 π

πa^30

)∫R

0

r^2 exp

(

−

2 r

a 0

)

dr

Set^2 ar 0 =x;dr=

(a 0

2

)

dx

P=

(

4

a 03

)

·

(

a^20

4

)

·

(a 0

2

)∫

x^2 e−xdx=^1 / 2

∫

x^2 e−xdx

Integrating by parts

P=^1 / 2 [−x^2 e−x+ 2

∫

xe−xdx]

=^1 / 2

[

−x^2 e−x+ 2

{

−xe−x+

∫

e−xdx

}]

=^1 / 2

[

−x^2 e−x− 2 xe−x− 2 e−x

] 2 R/a 0

0

=^1 / 2

[

−

(

2 R

a 0

) 2

exp

(

−

2 R

a 0

)

− 2

(

2 R

a 0

)

exp

(

−

2 R

a 0

)

−2exp

(

−

2 R

a 0

)

+ 2

]

P= 1 −e−

(^2) aR
0

(

1 +

2 R

a 0

+

2 R^2

a^20

)

3.72 The hydrogen wave function forn=2 orbit is

ψ 200 =

(

1

4

)

(

2 πa 03

)−^12

(

2 −

r

a 0

)

e−r/^2 a^0

The probability of finding the electron at a distancerfrom the nucleus

P=|ψ 200 |^2 · 4 πr^2 =

1

8

r^2

a^30

(

2 −

r

a 0

) 2

exp

(

−

r

a 0

)

Maxima are obtained from the condition dp/dr=0.

The maxima occur atr=(3−

√

3)a 0 andr=(3+

√

3)a 0 while minimum

occur atr= 0 , 2 a 0 and∞(Fig. 3.25) (the minima are found from the condi-

tionp=0).

3.73 (a)hν= 13. 6 Z^2

(

mμ

me

)(

1

22 −

1

32

)

Putmμ=106 MeV (instead of 106.7 MeV for muon)

Z=15 andme= 0 .511 MeV