Correct question:
A particle with a charge of 7.50 nC is in a uniform electric field directed to the left. Another force, in addition to the electric force, acts on the particle so that when it is released from rest, it moves to the right. After it has moved a distance of 6.50 cm , the additional force has done an amount of work equal to 7.60×10−5 J and the particle has kinetic energy equal to 3.00×10−5 J .
(a) What work was done by the electric force?
(b) What is the potential of the starting point with respect to the end point?
(c) What is the magnitude of the electric field?
Answer:
(a) work done by the electric force is −4.6 × 10⁻⁵ J
(b) change in potential is −6.133 x 10³ J
(c) the magnitude of the electric field is 9.435 x 10⁴ V/m
Step-by-step explanation:
Given;
charge of the particle, q = +7.50 nC
distance moved by the particle, d = 6.50 cm
work done by the additional force, W = 7.60 × 10⁻⁵ J
kinetic energy of the particle, K.E = 3.00 × 10⁻⁵ J.
Part (A)
work done by the electric force
where;
is work done by the electric force
is work done by additional force
is final kinetic energy
is initial kinetic energy, this zero since the particle was released from rest
= 3.00 × 10⁻⁵ J - 7.60 × 10⁻⁵ J
= − 4.6 × 10⁻⁵ J
Part (B)
change in potential from the starting point with respect to the end point, is calculated as follow,
= QΔV
ΔV =
/ Q
ΔV = (− 4.6 × 10⁻⁵) / (7.5 x 10⁻⁹)
ΔV = − 6.133 x 10³ J
Part (C)
Electric field is given as;
E = ΔV / d
E = (− 6.133 x 10³) / (6.5 x 10⁻²)
E = − 9.435 x 10⁴ V/m
thus, the magnitude of the electric field is 9.435 x 10⁴ V/m