How Do You Calculate Electric Field and Potential in a Parallel Plate Capacitor?

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Homework Help Overview

The problem involves calculating the electric field, potential difference, and energy stored in a parallel plate capacitor with given parameters such as charge, area, dielectric permittivity, and distance between plates.

Discussion Character

  • Exploratory, Assumption checking, Mathematical reasoning

Approaches and Questions Raised

  • The original poster attempts to apply relevant equations for electric field and potential difference but seeks confirmation on the correctness of their calculations. Some participants question the accuracy of the orders of magnitude in the charge density calculation and the application of permittivity.

Discussion Status

Participants are actively engaging in checking calculations and clarifying the use of permittivity in the context of the problem. There is a focus on ensuring the correct application of concepts without reaching a definitive conclusion.

Contextual Notes

There is a mention of potential confusion regarding the use of vacuum permittivity and relative permittivity in the calculations, indicating a need for clarification on these definitions.

ledwardz
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Homework Statement



A parallel plate capacitor has a charge of 50pC
area = 10mm^2
dielectric material permittivity = 2.5
distance between plates = 0.5 mm

find the electric field
the potential difference between the 2 plates
the energy stored in the capacitor


Homework Equations



electric field = Charge density / permittivity
charge density = q / a

therefore E = 5*10^-3 / 2.5 = 2* 10 ^-3

PD= Ed = 2*10^-3 * 0.005 = 1*10^-5

energy u = 0.5V*q = 0.5 * 1*10^-5* 50*10^-9 = 2.5*10^-13 J

can anyone tell me if this is correct? thanks again for any help. Cheers, Lee:shy:
 
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You seem to have lost track of the orders of magnitude in the charge density. Check the calculation.

The permittivity κ is a multiplier for the vacuum permittivity, εo.
 
gneill said:
You seem to have lost track of the orders of magnitude in the charge density. Check the calculation.

The permittivity κ is a multiplier for the vacuum permittivity, εo.

ahh pooo. so ε = εor but i have the right idea for the rest of the equation?

thanks for reply also.
 
ledwardz said:
ahh pooo. so ε = εor but i have the right idea for the rest of the equation?

thanks for reply also.

Sure. Straighten out the powers of ten and the permittivity and you're golden.
 

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