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1 30 Outline Maxwell’s Equations and the Displacement Current Electromagnetic Waves Polarization.

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Presentation on theme: "1 30 Outline Maxwell’s Equations and the Displacement Current Electromagnetic Waves Polarization."— Presentation transcript:

1 1 30 Outline Maxwell’s Equations and the Displacement Current Electromagnetic Waves Polarization

2 2 displacement current ‘explains’ existence of B around E

3 3 Maxwell’s Equations Gauss’ Law: E & B Faraday’s Law Ampere’s Law

4 4 EM waves transverse: E perpendicular to B speed: c = f = 3  10 8 m/s

5 5 dipole radiation

6 6 Electric Dipole Radiation I(r = 1.0m, angle = 90) is 12 W/m 2. I at 2.0m and angle of 30 degrees is: Example:

7 7 antennas can respond to E or B

8 8 EM Waves carry energy and momentum, shared equally between the electric and magnetic fields.

9 9 Energy and Momentum in EM Waves Intensity: energy/area/time [watts/sq.meter]

10 10 Example 50W Bulb Assume that 5.00% of the electrical power consumed by the bulb is converted to light. The average intensity at a distance of r = 1.00m: The rms value of E:

11 11 Polarization Unpolarized light is the superposition of many waves with random direction of E. Linearly Polarized light has only one direction of E.

12 12 Polarizing Filters Polarizing material only allows the passage of only one direction of E Malus ’ Law:

13 13 Two Filters (incident light unpolarized) 1 st reduces intensity by 1/2. 2 nd reduces according to Malus’ Law

14 14 Polarization by Scattering and Reflection Light scattered at 90 degrees is 100% polarized.

15 15 Summary displacement current added to Ampere’s Law: completes Maxwell Eqs., which explain ‘light’ properties (transverse EM wave with speed c) visible light small segment of spectrum energy density, intensity polarization by reflection/scattering Malus’ Law

16 16 EM waves accelerating charges produce ‘waves’ of E and B can be ‘pulse’ or ‘harmonic wave’

17 17 Momentum momentum = U/c The total energy received in the time by an area A The momentum received The average force Radiation pressure

18 18

19 19

20 20 Example (cont.) Part (b) 2. Use to find 3. Use to find

21 21 Example: Consider a laser that puts out an average power of P=1.0 milliwatt in a beam having a diameter of 1.0 mm. What is the peak amplitude of the electric field? The area of the laser beam is The electromagnetic flux S is Recall so that Substitution of the numerical values yields and thus

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