Electrons
used in an electron microscope are accelerated by a voltage of 25 kV. If the
voltage is increased to 100 km then the de-Broglie wavelength associated with
the electrons would
(a)
Increase by 4 times
(b)
Increase by 2 times
(c)
Decrease by 2 times
(d)
Decrease by 4 times
Solution
Given
–
V1
= 25 kV
V2
= 100 kV
de
Broglie relations show that the wavelength is inversely proportional to
the momentum of a particle.
i.e.
λ
= (h/P)
-
- - - - - - - - - (1)
where
h
is a Plank’s constant
p
is a momentum of particle
p
= mass X velocity
p
= m X v
Kinetic
energy (say K ) of any particle in motion can be given as
K = (1/2) m v2
On
multiplying both side by ‘m’ we get,
mK
= (1/2) m2 v2
2
mK= m2 v2
2
mK= P2
P = √ (2 mK)
-
- - - - - - - - - (2)
If
an electron (of charge ‘e’) is accelerated by potential difference ‘V’ volt, it
aquires the kinetic energy
K = eV
Putting
this value in equation (2) we get,
P = √ (2 meV)
-
- - - - - - - - - (3)
From
equation (1) and (3)
de
Broglie wavelength can be given as
λ = [h/√ (2 meV)]
As,
‘h’
is a Planks constant,
‘m’
is mass of electron i.e. constant
And
‘e’
is charge on electron i.e. constant.
Therefore
we can say that
λ α [1/√(V)]
i.e.
λ √(V) = constant
i.e.
λ
1√(V1) = λ 2√(V2)
λ
1 = √ (V2/ V1 ) λ 2
λ
1 = √ (100 /25 ) λ 2
λ
1 = √ (4 ) λ 2
λ
1 = 2 λ 2
If
the voltage is increased from 25 kV to 100 kV, the de Broglie wavelength associated
with electron is decrease by two times.
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