The energy associated with electric field is E and with magnetic field is B for an electromagnetic wave in free space is given by( $∈_0$-permittivity of free space $μ_0$-permeability of free space)

JEE Main - 2023
JEE Main

Updated On: Sep 14, 2024

$U_E=\frac{E^2}{2∈_0},U_B=\frac{μ_0B^2}{2}$
$U_E=\frac{∈E^2}{2},U_B=\frac{μ_0B^2}{2}$
$U_E=\frac{E^2}{2∈_0},U_B=\frac{B^2}{2μ_0}$
$U_E=\frac{∈_0E^2}{2},U_B=\frac{B^2}{2μ_0}$

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The Correct Option is D

Solution and Explanation

The correct option is(D): $U_E=\frac{∈_0E^2}{2},U_B=\frac{B^2}{2μ_0}$

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The energy associated with electric field is E and with magnetic field is B for an electromagnetic wave in free space is given by( \(∈_0\)-permittivity of free space \(μ_0\)-permeability of free space)

The Correct Option is D

Solution and Explanation

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