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3 votes
Two parallel plates of area 5.68.10-³ m²

have equal and opposite charges of
4.38 10-¹1 C placed on them. What is
the electric field between the plates?
[?] N/C

1 Answer

5 votes

Answer:


\vec E=871.33 \ (N)/(C) }

Step-by-step explanation:

Given that two parallel plates with an area of
5.68 * 10^(-3) \ m^2 have equal and opposite charges of
4.38 * 10^(-11) \ C. Find the value of the electric field between them.

Using the following equation,


\boxed{ \vec E=(Q)/(A \epsilon_0); \ \ \epsilon_0=8.85 * 10^(-12)(C^2)/(Nm^2) }

Plug the known values into the equation.


\vec E=(4.38 * 10^(-11))/((5.68 * 10^(-3))(8.85 * 10^(-12)))\\\\\therefore \boxed{\boxed{\vec E=871.33 \ (N)/(C) }}

Thus, the electric field is found.

answered
User Siddharth Mehra
by
8.5k points