When radiation is incident on a photoelectron emitter, the stopping potential is found to be 9V . If (e/m) for the electron is 1.8× 1011 Ckg- 1 , the maximum velocity of ejected electrons is

Question

When radiation is incident on a photoelectron emitter, the stopping potential is found to be 9V . If (e/m) for the electron is 1.8× 1011 Ckg- 1 , the maximum velocity of ejected electrons is (A) 6× 105 m s- 1 (B) 8× 105 m s- 1 (C) 106 m s- 1 (D) 1.8× 106 m s- 1

Tardigrade Admin · Accepted Answer

We know that the maximum kinetic energy of the electron is equal to the stopping potential of the electron,

K_{ma x} = e V_{0}

.
Kinetic energy

K_{ma x} = \frac{1}{2} m v_{ma x}^{2}

.

\frac{1}{2} m v_{ma x}^{2} = e V_{0}

∴ v_{ma x} = \frac{2 e V _{0}}{m} = 2 \times 1.8 \times 1 0^{11} \times 9

Therefore, maximum velocity of the emitted electron is,

v_{ma x} = 1.8 \times 1 0^{6} m s^{- 1}

.

Q. When radiation is incident on a photoelectron emitter, the stopping potential is found to be $9 V$ . If $\frac{e}{m}$ for the electron is $1.8 \times 1 0^{11} C k g^{- 1}$ , the maximum velocity of ejected electrons is

$6 \times 1 0^{5} m s^{- 1}$

$8 \times 1 0^{5} m s^{- 1}$

$1 0^{6} m s^{- 1}$

$1.8 \times 1 0^{6} m s^{- 1}$

Q. When radiation is incident on a photoelectron emitter, the stopping potential is found to be 9V . If me​ for the electron is 1.8×1011Ckg−1 , the maximum velocity of ejected electrons is

6×105ms−1

8×105ms−1

106ms−1

1.8×106ms−1

Q. When radiation is incident on a photoelectron emitter, the stopping potential is found to be $9 V$ . If $\frac{e}{m}$ for the electron is $1.8 \times 1 0^{11} C k g^{- 1}$ , the maximum velocity of ejected electrons is

$6 \times 1 0^{5} m s^{- 1}$

$8 \times 1 0^{5} m s^{- 1}$

$1 0^{6} m s^{- 1}$

$1.8 \times 1 0^{6} m s^{- 1}$