Determine the intensity of electric field which can balance a drop of oil of mass 0.001mg carrying 3 electronic charge
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Answer:
According to Your Question
Fe = mg
q E = mg
E = mg/q
q = 10^-6gram = 10^-9KG
g = 10
q = 3e = 3 × 1.6 × 10^-19
Put Value
E = 2 × 10^10V/m
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