1000 Solved Problems in Modern Physics

304 5 Solid State Physics

(c)λ=vFτ=(1. 39 × 106 )(3. 7 × 10 −^14 )

= 5. 14 × 10 −^8 m

5.15 〈vD〉=

e

m

ετ

=

(1. 6 × 10 −^19 )(20)(10−^14 )

9. 11 × 10 −^31

= 0 .0351 m/s

= 3 .51 cm/s

Note that the drift velocities are much smaller than the average thermal

velocities which are of the order of 10^5 m/s.

[

〈νT〉=(3kT/me)^1 /^2

]

5.16 Current,

i=

V

R

(1)

R=

ρl

A

(2)

where the resistivity,

ρ=

me

ne^2 τ

(3)

n=

Nod

A

× 3 × 104 (4) (4)

wherenis the number of electrons per m^3 , Nobeing Avagardro’s number,A

the atomic weight anddthe density, the factor 3 is for the trivalency.

n= 6. 02 × 1023 ×

2. 7

27

× 3 × 104 = 1. 806 × 1027

ρ=

9. 11 × 10 −^31

1. 806 × 1027 ×(1. 6 × 10 −^19 )^2 × 4 × 10 −^14

= 4. 92 × 10 −^9

R=

4. 92 × 10 −^9 × 20

2 × 10 −^6

= 0. 0492 Ω

i=

3

0. 0492

= 61 A ̊

5.17 (a)τ=

mσ

ne^2

Assuming that one conduction electron will be available for each sodium

atom,

n=

Noρ

A

=

6. 02 × 1023 × 0. 97

23

cm−^3 = 2. 539 × 1028 m−^3

τ=

9. 11 × 10 −^31 × 2. 17 × 107

2. 539 × 1028 ×(1. 6 × 10 −^19 )^2

= 3. 04 × 10 −^14 s

(b)〈vD〉=

e

m

ετ

=

(1. 6 × 10 −^19 )(200)(3. 04 × 10 −^14 )

9. 11 × 10 −^31

= 1 .07 m/s