An electron is released from rest in a uniform electric field. the electron accelerates vertically upward, traveling 4.50m in the first 3.00μs after it is released.

Question

Mathematics

Cheeky

17 June, 13:00

An electron is released from rest in a uniform electric field. the electron accelerates vertically upward, traveling 4.50m in the first 3.00μs after it is released.

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Elijah Zavala · Answer 1

If you are looking for the strenght of the electric field, then what you need to do is the following calculation:

E=F/q, and F=ma,

thus E = (ma) / q = (m· 2· x) / (t 2· q) = [ (9.11*10-31kg) ·2· (4.5m) ] / [ (3*10-6s) 2 (1.6*10-19C) ] = 5.69 N/C

That is the strenght. Now that you know that the force is up and that the electron is negative then the projectile motion principles must be used

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