An electron experiences a force equal to its weight when placed in an electric field. The intensity of the field will be

  • A
    $1.7 \times 10^{-11} \ N/C$
  • B
    $5.0 \times 10^{-11} \ N/C$
  • C
    $5.5 \times 10^{-11} \ N/C$
  • D
    $56 \ N/C$

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An electron of mass $m_e$ and a proton of mass $m_p$ are kept in a uniform electric field. The ratio of the acceleration of electron $(a_e)$ to the acceleration of proton $(a_p)$ is

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$(D)$ time taken by the particle to hit $T$ is $\sqrt{\frac{5}{3}} \mu\text{s}$

An electron enters between two horizontal plates separated by $2\,mm$ and having a potential difference of $1000\,V$. The force on the electron is:

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$A$ $3 \text{ C}$ charge moves from the point $(0, -2, -5)$ to the point $(5, 1, 2)$ in an electric field expressed as $\vec{E} = 2\hat{i} + 3\hat{j} + 4\hat{k} \text{ N/C}$. The work done in moving the charge is . . . . . . $J$.

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