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photoresistor

File:LDR_1480405_6_7_HDR_Enhancer_1.jpg · Wikimedia Commons · See Wikimedia Commons

EntityQ194120· pop 47· linked from 337 articles

photoresistor

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Also known as LDR, light dependent resistor

A photoresistor (also known as a light-dependent resistor, LDR, or photo-conductive cell) is a passive component that decreases in resistance as a result of increasing illuminance (light) on its sensitive surface, in other words, it exhibits photoconductivity. A photoresistor can be used in light-sensitive detector circuits and light-activated and dark-activated switching circuits acting as a semiconductor resistance. In the dark, a photoresistor can have a resistance as high as several megaohms (MΩ), while in the light, it can have a resistance as low as a few hundred ohms. If incident light

In the Vinony graph

Within Vinony's link graph, photoresistor is referenced by 337 other articles, and connects out to vacuum tube, photodiode and MOSFET.

Vinony files it under Optical devices, Resistive components and Sensors.

Its subject is documented across 46 Wikipedia language editions.

Key facts

Electronic component.name
Photoresistor
Electronic component.image
File:LDR 1480405 6 7 HDR Enhancer 1.jpg
Electronic component.image_size
201
Electronic component.type
Passive
Electronic component.working_principle
Photoconductivity
Electronic component.symbol
File:Photoresistor symbol.svg
Electronic component.symbol_caption
The symbol for a photoresistor

via Wikipedia infobox

Wikidata facts

Image
Photoresistor with orange background-7536.jpg
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Commons category
Photoresistors
different from
photoresist
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Encyclopedic overview

5 sections
Contents
  • Design considerations
  • Applications
  • See also
  • References
  • External links

A photoresistor (also known as a light-dependent resistor, LDR, or photo-conductive cell) is a passive component that decreases in resistance as a result of increasing illuminance (light) on its sensitive surface, in other words, it exhibits photoconductivity. A photoresistor can be used in light-sensitive detector circuits and light-activated and dark-activated switching circuits acting as a semiconductor resistance. In the dark, a photoresistor can have a resistance as high as several megaohms (MΩ), while in the light, it can have a resistance as low as a few hundred ohms. If incident light on a photoresistor exceeds a certain frequency, photons absorbed by the semiconductor give bound electrons enough energy to jump into the conduction band. The resulting free electrons (and their hole partners) conduct electricity, thereby lowering resistance. The resistance range and sensitivity of a photoresistor can substantially differ among dissimilar devices. Moreover, unique photoresistors may react substantially differently to photons within certain wavelength bands.

A photoelectric device can be either intrinsic or extrinsic. An intrinsic semiconductor has its own charge carriers and is not an efficient semiconductor (such as silicon is). In intrinsic devices, most of the available electrons are in the valence band, and hence the photon must have enough energy to excite the electron across the entire bandgap. Extrinsic devices have impurities, also called dopants, added whose ground state energy is closer to the conduction band; since the electrons do not have as far to jump, lower energy photons (that is, longer wavelengths and lower frequencies) are sufficient to trigger the device. If a sample of silicon has some of its atoms replaced by phosphorus atoms (impurities), there will be extra electrons available for conduction. This is an example of an extrinsic semiconductor.

Excerpted from Wikipedia’s “photoresistor” article, available under the CC BY-SA 4.0 licence.

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