Estimate how far the first brightest diffraction fringe is from the strong central maximum if the screen is 10.0 m away.


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electrical potential energy =0.072 j


electrical potential energy is given by

u= q δv

q= charge=6 c

δv= potential difference and is given by

δv= e d

e= electric field

d= distance=5 mm=0.005 m

δv=2.4 (0.005)=0.012 v

now electric potential energy= u= q δv

u=6 (0.012)

u=0.072 j

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