An electron is released from rest in a uniform electric of magnitude 2.00×104 N/C. Calculate the acceleration of the electron (Ignore gravitation)?

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An electron is released from rest in a uniform electric of magnitude 2.00×104 N/C. Calculate the acceleration of the electron (Ignore gravitation)?

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Answer 1 · 2016-02-17T05:42:04

$a = 3.51 \times 10^{15} \frac{m}{s^{2}}$ $a = 3.51 xx 10^15 m/s^2$
This would be magnitude of the electron’s acceleration. Since the electron has a negative charge the direction of the force on the electron and of course the acceleration is opposite the direction of the electric ﬁeld.

Explanation:

calculate Force first
Force $F = q_{e} E$ $F = q_eE$ , where $q_{e} = 1.602 \times 10^{- 19} C$ $q_e= 1.602xx10^-19 C$ charge of electron
$E = 2 \times 10^{4} \frac{N}{C}$ $E = 2xx10^4 N/C$ electric field
now divide force by mass of electron to have the acceleration.
$a = \frac{F}{m}$ $a = F/m$ , where $m = 9.11 \times 10^{- 31}$ $m= 9.11xx10^-31$ mass of electron
$a = q_{e} \frac{E}{m} = \frac{1.602 \times 10^{- 19} C \times 2.0 \times 10^{4} \frac{N}{C}}{9.11 \times 10^{- 31} k g}$ $a = q_eE/m = (1.602xx10^-19 C xx 2.0xx10^4 N/C)/(9.11xx10^-31 kg)$
$a = 3.51 \times 10^{15} \frac{m}{s^{2}}$ $a = 3.51 xx 10^15 m/s^2$
This would be magnitude of the electron’s acceleration. Since the electron has a negative charge the direction of the force on the electron and of course the acceleration is opposite the direction of the electric ﬁeld.

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An electron is released from rest in a uniform electric of magnitude 2.00×104 N/C. Calculate the acceleration of the electron (Ignore gravitation)?

1 Answer

Explanation:

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