The intensity of the light from a bulb incident on a surface is $0.22 W m^{- 2}$ . The amplitude of the magnetic field in this light-wave is _____ $\times 10^{- 9} T$
(Given : Permittivity of vacuum $ϵ_{0} = 8.85 \times 10^{- 12} C^{2} N^{- 1} m^{- 2}$ , speed of light in vacuum $c = 3 \times 10^{8} {m s}^{- 1}$ )

Question

The intensity of the light from a bulb incident on a surface is $0.22 W m^{- 2}$ . The amplitude of the magnetic field in this light-wave is _____ $\times 10^{- 9} T$

(Given : Permittivity of vacuum $ϵ_{0} = 8.85 \times 10^{- 12} C^{2} N^{- 1} m^{- 2}$ , speed of light in vacuum $c = 3 \times 10^{8} {m s}^{- 1}$ )

TestHub · Accepted Answer

The intensity is defined as energy per unit time per unit area. Therefore, $I = \frac{d E}{A d t}$ .

Energy density is energy per unit volume. Therefore, $U_{d} = \frac{d E}{A d x}$ .

Dividing $\frac{I}{U_{d}} = \frac{d x}{d t} = c$

$\Rightarrow U_{d} = \frac{I}{c} = \frac{0.22}{3 \times 10^{8}} = \frac{22}{3} \times 10^{- 10} J m^{- 3}$

Magnetic energy density will be half of total energy density, Therefore, $U_{b} = \frac{11}{3} \times 10^{- 10} J m^{- 3}$ .

Now energy density in magnetic field is given by, $U_{b} = \frac{B^{2}}{2 μ_{0}}$ . Therefore,

$\frac{B_{rms}^{2}}{2 μ_{0}} = \frac{11}{3} \times 10^{- 10} J m^{- 3}$ where $B_{rms}^{2} = (\frac{B_{0}}{\sqrt{2}}) = \frac{B_{0}^{2}}{2}$

$\Rightarrow \frac{B_{0}^{2}}{4 μ_{0}} = \frac{11}{3} \times 10^{- 10} \Rightarrow B_{0} = \sqrt{4 \times (4 π \times 10^{- 7}) \times \frac{11}{3} \times 10^{- 10}} \Rightarrow B_{0} = 4.29 \times 10^{- 8} T ≃ 43 \times 10^{- 9} T$

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