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A proton is moved from a position where the electric potential is 125 V to a position where the electric potential is 275 V. The magnitude of the charge on a proton is 1.602 × 10-19
c.

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BlueSky06
We are asked to solve for the capacitance of a charged proton and the formula is shown below:
C=  q / ΔV  

The given values are the following:
ΔV = 275 volts - 125 volts
C= 1.602 x 10-9 C
q = C * ΔV
q = 1.602x10-9 C * (150 volts)
q = 2.403 x 10-7 F

Answer:

q = 2.403 x 10-7 F

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