1 Answer

Roman Sklyarov · Answer 1 · 2021-12-04T23:09:54+0000

Complete Question

A small plastic bead has been charged to 15nC. What is the magnitude of the acceleration of an electron that is 1.3 cm from the center of the bead?

Answer:

The acceleration is
$a = 1.40 *10^(17) \ m/s^2$

Step-by-step explanation:

From the question we are told that

The charge on the bead is
$q = 15n C = 15 *10^(-9) \ C$

The distance of the electron from the center of the bead is
$d = 1.3 \ cm = 0.013 \ m$

Generally the force between the electron and the bead is mathematically represented as

F = (k * q * e)/(d^2)

Here e is the charge on an electron with value
$e = 1.6 0 *10^(-19) \ C$

k is the coulombs constant with value
$k = 9*10^(9)\ kg\cdot m^3\cdot s^(-4) \cdot A^(-2).$

F = (9*10^(9) * 15*10^(-9) * 1.60 *10^(-19))/(0.013^2)

$F = 1.278 *10^(-13) \ N$

Mathematically

F = Ma

Here M is the mass of an electron with value
$9.11 *10^(-31) \ kg$

So

a = (F)/(M)

=>
a = ( 1.278 *10^(-13))/(9.11*10^(-31))

=>
$a = 1.40 *10^(17) \ m/s^2$

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