Electric Field in Capacitors and Diodes

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Discussion Overview

The discussion explores the similarities and differences between capacitors and diodes, particularly focusing on the behavior of electric fields in these components. It addresses theoretical concepts related to charge movement, electric fields, and the nature of materials involved in capacitors and diodes.

Discussion Character

  • Exploratory
  • Technical explanation
  • Debate/contested

Main Points Raised

  • One participant describes how electrons move in a capacitor and how an electric field is established between the plates, questioning why electrons do not flow across the electric field in a capacitor as they do in a diode.
  • Another participant notes that the PN junction of a diode is a semiconductor, while the dielectric of a capacitor is an insulator, suggesting a fundamental difference in material properties.
  • A participant raises a question about the terminology of the depletion region in a PN junction, asking if it behaves like an insulator due to the lack of free carriers.
  • Further clarification is sought regarding the nature of the depletion region and its implications for the behavior of diodes compared to capacitors.

Areas of Agreement / Disagreement

Participants express differing views on the behavior of electric fields in capacitors and diodes, with no consensus reached on the implications of the depletion region or the comparison between the two components.

Contextual Notes

The discussion includes assumptions about the behavior of electric fields and the definitions of materials involved, which may not be fully resolved. The implications of the depletion region and its comparison to insulators remain unclear.

amenhotep
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Hello,
Capacitor
When a capacitor is connected to a voltage source, electrons will move from one plate and accumulate in the other in accordance to Q=CV. Due to the imbalance of charges (positive and negative ions) between the plates, an electric field exists that flow in the direction of the more negative plate. If we assume an ideal capacitor (no leakage resistor), the electrons at the negative plate will not flow across the electric field into the positive plate.
Diode
When a p and n semiconductor materials are chemically combined together, initially free electrons in the n material diffuse across the junction into the n material. Without prolonging the story, positive ions in the n material and negative ions in the p material around the junction form an electric field in the direction of the p material. This electric field prevents less energetic electrons in the n material from flowing across junction. For this reason, the negative terminal of a power supply must be connected to the n material to allow current through the diode.
My question
Now, let's see the similarities between the capacitor and diode.
Capacitor -- Diode
+ve plate -- n material
-ve plate -- p material
dielectric -- pn junction
The electric field points from the n (or positive plate of the capacitor) to the p (or negative plate of the capacitor).
In the case of the diode, the p material has minority carriers (few electrons) and these can easily flow across the electric field into the n material. This constitutes the so-called leakage current.
In the case of the capacitor, one should expect something similar, that the electrons on the negative plate should flow across the field because the field is oriented in the same direction as that in the diode. But according to all what I know about capacitors, electrons do not flow across the E field. The question is why not? Why electrons can flow across the E field in a diode (from p to n) and cannot in a capacitor?
Thanks.
 
Engineering news on Phys.org
The PN junction of a diode is a semiconductor. The dielectric of a capacitor is an insulator.
 
Baluncore said:
The PN junction of a diode is a semiconductor. The dielectric of a capacitor is an insulator.
But why is the pn junction called the depletion region. Doesn't that mean there are no carriers available which implies that pn junction is behaving like an insulator ? An insulator should be a material with no free carriers.
 

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