When radiation is incident on a photoelectron emitter- the stopping potential is found to be 9 volts- If e-m for the electron is 1-8 - 1011 Ckg -1 the maximum velocity of the ejected electrons is A- 6 - 105 ms -1B- 1-8 - 105 ms -1C- 8 - 105 ms -1D- 1-8 - 106 ms -1

The correct option is D 1.8 × 10^6 ms^ 11/2mv^2_max=eV_0⇒ v_max=√(2 ( e/m )V_0)=√(2× 1.8 × 10^11× 9)=1.8× 10^6 m/s. ...

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Standard XII

Physics

Stopping Potential Revisited

When radiatio...

Question

When radiation is incident on a photoelectron emitter, the stopping potential is found to be 9 volts. If e/m for the electron is $1.8 \times 10^{11} C k g^{- 1}$ the maximum velocity of the ejected electrons is

6 \times 10^{5} m s^{- 1}

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8 \times 10^{5} m s^{- 1}

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1.8 \times 10^{6} m s^{- 1}

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1.8 \times 10^{5} m s^{- 1}

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Solution

The correct option is C $1.8 \times 10^{6} m s^{- 1}$
$\frac{1}{2} m v_{m a x}^{2} = e V_{0} \Rightarrow v_{m a x} = \sqrt{2 (\frac{e}{m}) V_{0}} = \sqrt{2 \times 1.8 \times 10^{11} \times 9} = 1.8 \times 10^{6} m / s .$

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

The correct option is C 1.8×106ms−112mv2max=eV0⇒vmax=√2(em)V0=√2×1.8×1011×9=1.8×106 m/s.

When radiation is incident on a photoelectron emitter, the stopping potential is found to be 9 volts. If e/m for the electron is $1.8 \times 10^{11} C k g^{- 1}$ the maximum velocity of the ejected electrons is

The correct option is C $1.8 \times 10^{6} m s^{- 1}$
$\frac{1}{2} m v_{m a x}^{2} = e V_{0} \Rightarrow v_{m a x} = \sqrt{2 (\frac{e}{m}) V_{0}} = \sqrt{2 \times 1.8 \times 10^{11} \times 9} = 1.8 \times 10^{6} m / s .$