Answer
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Hint: From the acceleration voltage get the kinetic energy of the accelerated electron. Using this to get the momentum of the electron and de-Broglie equation will give you the wavelength of the electrons. To compare the resolving power always remember that it is inversely proportional to the wavelength of light used.
Formula Used:
Kinetic energy of accelerated electron is given by:
$E = e.V$ -----(1)
Where,
E denotes the kinetic energy of the electron,
e is the charge of an electron,$e = 1.6 \times {10^{ - 19}}C$.
V is the accelerating potential applied.
Momentum of accelerated electron is given by:
$p = \sqrt {2mE} $ -----(2)
Where,
p is the momentum of the electron,
m is mass of an electron, $m = 9.1 \times {10^{ - 31}}kg$.
De-Broglie equation:
$\lambda = \dfrac{h}{p}$ ----(3)
Where,
$\lambda $is the wavelength associated to the particle,
h is the planck's constant, $h = 6.63 \times {10^{ - 34}}J.s$.
Complete step by step answer:
Given: Acceleration voltage of the electron is 50kV i.e. $V = 50kV = 5 \times {10^4}V$.
To find: Wavelength associated with the electron.
Comparison of resolution power with a microscope using yellow light.
> Step 1
First, using eq.(1) and eq.(2) in eq.(3) get an expression for $\lambda $as:
\[\lambda = \dfrac{h}{p} = \dfrac{h}{{\sqrt {2mE} }} = \dfrac{h}{{\sqrt {2mEV} }}\] ---(4)
> Step 2
Now, substitute the value of V to get $\lambda $:
$
\lambda = \dfrac{{6.63 \times {{10}^{ - 34}}}}{{\sqrt {2 \times 9.1 \times {{10}^{ - 31}} \times 1.6 \times {{10}^{ - 19}} \times 5 \times {{10}^4}} }}m \\
= 5.467 \times {10^{ - 12}}m \\
$
> Step 3
Hence, you got the wavelength associated with the electron as $5.467 \times {10^{ - 12}}m$. Wavelength of yellow light is ${\lambda _y} = 590nm = 5.9 \times {10^{ - 7}}m$. Now, the resolving power of a microscope is inversely proportional to the wavelength of light used.
Hence, the ratio of resolving power for the electron and optical microscope will be: $\dfrac{{{\lambda _y}}}{\lambda } = \dfrac{{5.9 \times {{10}^{ - 7}}m}}{{5.467 \times {{10}^{ - 12}}m}} \simeq {10^5}$.
Hence, De-Broglie wavelength associated with the electrons is $5.467 \times {10^{ - 12}}m$. The resolving power of an electron microscope will be ${10^5}$times of that of an optical microscope that uses yellow light.
Note: As it’s evident you have noticed that electron microscopes have significantly larger resolving power, very tiny biological specimens like tissues, cells or even some molecules are observed using electron microscopes.
Formula Used:
Kinetic energy of accelerated electron is given by:
$E = e.V$ -----(1)
Where,
E denotes the kinetic energy of the electron,
e is the charge of an electron,$e = 1.6 \times {10^{ - 19}}C$.
V is the accelerating potential applied.
Momentum of accelerated electron is given by:
$p = \sqrt {2mE} $ -----(2)
Where,
p is the momentum of the electron,
m is mass of an electron, $m = 9.1 \times {10^{ - 31}}kg$.
De-Broglie equation:
$\lambda = \dfrac{h}{p}$ ----(3)
Where,
$\lambda $is the wavelength associated to the particle,
h is the planck's constant, $h = 6.63 \times {10^{ - 34}}J.s$.
Complete step by step answer:
Given: Acceleration voltage of the electron is 50kV i.e. $V = 50kV = 5 \times {10^4}V$.
To find: Wavelength associated with the electron.
Comparison of resolution power with a microscope using yellow light.
> Step 1
First, using eq.(1) and eq.(2) in eq.(3) get an expression for $\lambda $as:
\[\lambda = \dfrac{h}{p} = \dfrac{h}{{\sqrt {2mE} }} = \dfrac{h}{{\sqrt {2mEV} }}\] ---(4)
> Step 2
Now, substitute the value of V to get $\lambda $:
$
\lambda = \dfrac{{6.63 \times {{10}^{ - 34}}}}{{\sqrt {2 \times 9.1 \times {{10}^{ - 31}} \times 1.6 \times {{10}^{ - 19}} \times 5 \times {{10}^4}} }}m \\
= 5.467 \times {10^{ - 12}}m \\
$
> Step 3
Hence, you got the wavelength associated with the electron as $5.467 \times {10^{ - 12}}m$. Wavelength of yellow light is ${\lambda _y} = 590nm = 5.9 \times {10^{ - 7}}m$. Now, the resolving power of a microscope is inversely proportional to the wavelength of light used.
Hence, the ratio of resolving power for the electron and optical microscope will be: $\dfrac{{{\lambda _y}}}{\lambda } = \dfrac{{5.9 \times {{10}^{ - 7}}m}}{{5.467 \times {{10}^{ - 12}}m}} \simeq {10^5}$.
Hence, De-Broglie wavelength associated with the electrons is $5.467 \times {10^{ - 12}}m$. The resolving power of an electron microscope will be ${10^5}$times of that of an optical microscope that uses yellow light.
Note: As it’s evident you have noticed that electron microscopes have significantly larger resolving power, very tiny biological specimens like tissues, cells or even some molecules are observed using electron microscopes.
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