Q.What is an LED?
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Optoelectronic Devices: When Light Meets a p-n Junction
You already know that a p-n junction diode lets current flow one way. But there is a deeper story: the junction can also talk to light. It can either emit light when current passes through it, or generate current when light falls on it. Devices that do this are called optoelectronic devices — and they are simply p-n junctions designed to make that light–electricity conversion efficient.
The Intuition: Two Sides of the Same Coin
Think of a p-n junction as a tiny energy staircase. On the p-side, holes are at a high energy level (the valence band). On the n-side, electrons are at a higher energy level (the conduction band). When an electron falls down that staircase — from the n-side to the p-side — it loses energy. That energy has to go somewhere.
In an ordinary silicon diode, the lost energy turns into heat (vibrations of the crystal lattice). But in a direct bandgap semiconductor like gallium arsenide, that energy can instead be released as a photon — a particle of light. That is an LED (light-emitting diode).
Now reverse the process. A photon carrying just the right amount of energy can hit the junction and kick an electron up the staircase — from the valence band to the conduction band. That creates an electron–hole pair. If you connect the diode to a circuit, those carriers get swept away by the built-in electric field, producing a current. That is a photodiode (or, if you do it on a large area with no external bias, a solar cell).
The key requirement for efficient light emission or absorption is a direct bandgap. Silicon has an indirect bandgap — it barely emits light and absorbs it weakly. That is why LEDs and laser diodes are made from compounds like GaAs, GaN, or InP, not from silicon.
The Precise Statement
An optoelectronic device is a p-n junction (or a related semiconductor structure) that converts electrical energy into light (LED, laser diode) or light into electrical energy (photodiode, solar cell). The conversion happens because electrons and photons exchange energy across the bandgap of the semiconductor.
| Device | Input | Output | Bias condition | Key use |
|---|---|---|---|---|
| LED | Electric current | Light (spontaneous emission) | Forward bias | Indicators, displays, lighting |
| Laser diode | Electric current | Coherent light (stimulated emission) | Forward bias (high current) | Optical communication, barcode readers |
| Photodiode | Light | Electric current | Reverse bias (or zero bias) | Light detection, optical receivers |
| Solar cell | Sunlight | Electric power | Zero bias (photovoltaic mode) | Power generation |
How Each One Works (Briefly)
LED: Under forward bias, electrons from the n-side and holes from the p-side meet in the depletion region. They recombine. In a direct-gap semiconductor, that recombination emits a photon whose energy equals the bandgap. The colour of the LED depends on the bandgap — wider gap gives shorter wavelength (blue), narrower gap gives longer wavelength (red).
Photodiode: Under reverse bias, the depletion region widens and the electric field is strong. When a photon with energy hν≥Eg is absorbed, it creates an electron–hole pair. The field immediately sweeps them apart — electron to n-side, hole to p-side — producing a photocurrent proportional to the light intensity.
Solar cell: Same physics as a photodiode, but no external battery. The built-in field separates the photo-generated carriers, creating a voltage across the junction. Connect a load, and current flows. The cell is essentially a large-area photodiode optimised for sunlight. …
An LED (Light Emitting Diode) is a heavily-doped p-n junction diode which, under forward bias, emits spontaneous light due to electron-hole recombination. …
An LED is a heavily-doped p-n junction that converts electrical energy directly into light when forward biased, via radiative recombination of injected charge carriers.
Working
An LED is a p-n junction diode made from a direct-band-gap compound semiconductor (e.g. GaAs, GaAsP, GaP), and is very heavily doped compared to an ordinary rectifying diode. When it is forward biased, electrons are injected from the n-region into the p-region and holes from the p-region into the n-region. Near the junction, these excess minority carriers recombine with the majority carriers. In a direct-band-gap material, this recombination releases the electron's excess energy as a photon of light (rather than as heat/lattice vibrations, as in ordinary silicon diodes), so light is emitted from the junction region.
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- CBSE 2023Set ANNUAL1 markQ.True/False : LED works under reverse bias condition.
›Reveal solutionSolution
False — an LED emits light only under forward bias, not reverse bias.
A light-emitting diode is a heavily doped p-n junction operated in forward bias. Forward bias drives electrons and holes into the junction where they recombine, releasing the energy as photons (light). Under reverse bias no such recombination current flows, so no light is emitted (and enough reverse volta …
- CBSE 2022Set ANNUAL1 markQ.What is an LED?
›Reveal solutionSolution
An LED is a heavily-doped p-n junction that converts electrical energy directly into light when forward biased, via radiative recombination of injected charge carriers.
Working
An LED is a p-n junction diode made from a direct-band-gap compound semiconductor (e.g. GaAs, GaAsP, GaP), and is very heavily doped compared to an ordinary rectifying diode. When it is forward biased, electrons are injected from the n-region into the p-region and holes from the p-region into the n-region. Near the junction, these excess minority carriers recombine with the majority carriers. In a direct-band-gap material, this recombination releases the electron's excess energy as a photon of light (rather than as heat/lattice vibrations, as in ordinary silicon diodes), so light is emitted from the junction region.
…
- CBSE 2020Set 55/1/11 markQ.Why cannot we use Si and Ge in fabrication of visible LEDs ?
›Reveal solutionSolution
Silicon and germanium are indirect bandgap semiconductors, meaning radiative recombination is extremely inefficient; photons emitted also fall in the infrared range, not visible light. Only direct bandgap materials like GaAs or GaN produce visible LEDs efficiently.
Why bandgap type matters for light emission
When an electron and hole recombine in a semiconductor, the energy released can take two paths: it can emerge as a photon (light) or dissipate as heat through lattice vibrations (phonons). Whether recombination produces useful light depends critically on the band structure of the material.
In a direct bandgap semiconductor, the conduction band minimum and valence band maximum occur at the same crystal momentum k. An electron can drop straight down in energy, emitting a photon that carries away the bandgap energy Eg while conserving momentum trivially. This radiative process is fast and efficient.
In an indirect bandgap semiconductor like Si or Ge, the conduction minimum and valence maximum sit at different k-values. For an electron to recombine, it must simultaneously change both energy and momentum. A photon alone cannot provide the momentum change (photons carry negligible momentum compared to crystal lattice scales), so the transition requires a phonon to conserve momentum. This three-particle process—electron, hole, and phonon—is far less probable. Most recombinations become non-radiative, releasing heat instead of light.
Watch outEven when an indirect-gap material does emit a photon, the quantum efficiency is typically <10−4, meaning fewer than 1 in 10,000 recombinations produce light. Direct-gap LEDs achieve efficiencies above 50%.
The two problems with Si and Ge
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Radiative efficiency is abysmal
Silicon has Eg≈1.1eV and germanium Eg≈0.66eV, both indirect. The probability of radiative recombination is so low that injected carriers overwhelmingly recombine non-radiatively. You pump in electrical power and get heat, not light.
-
Photon energy lies in the infrared
Even if Si or Ge did emit efficiently, the photon energy E=hν=Eg corresponds to wavelengths
λSi=1.1eV1240eV⋅nm≈1130nm(near-IR),
λGe=0.661240≈1880nm(mid-IR). …
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- CBSE 2019Set ANNUAL1 markQ.LED emits light when connected in ______. (Fill in the blank using 'forward bias' or 'reversed bias')
›Reveal solutionSolution
An LED emits light only when forward biased.
An LED is a specially doped p-n junction diode. Under forward bias the junction conducts: electrons and holes are injected across the junction and recombine, releasing energy as photons (light). Under reve …
- CBSE 2019Set ANNUAL1 markMCQQ.In amplitude modulated wave, the amplitude of each side band frequency is(a) A_c(b) μA_c(c) μA_c/2(d) 2μA_c
›Reveal solutionSolution
Each side band amplitude in an AM wave is μA_c/2: option (c).
An amplitude-modulated wave can be written as a sum of three sinusoids: the carrier (angular frequency ω_c, amplitude A_c) and two side bands at frequencies (ω_c + ω_m) and (ω_c − ω_m):
c_m(t) = A_c sinω_c t + (μA_c/2) cos(ω_c − ω_m)t − (μA_c/2) cos(ω_c + ω_m)t,
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- CBSE 2018Set ANNUAL1 markQ.Write the name of any one dopped semiconductor used for making light emitting diode(LED).
›Reveal solutionSolution
LEDs use compound semiconductors such as Gallium Arsenide (GaAs).
An LED is a heavily doped p-n junction which emits light when forward biased. Because plain silicon and germanium are indirect-band-gap materials that do not efficiently emit light, LEDs use direct-band-gap compound semiconductors whose band gap corresponds to visible/infrared photon energies.
Common materials: …
- CBSE 2016Set ANNUAL1 markQ.What is the full form of LED?
›Reveal solutionSolution
LED = Light Emitting Diode.
An LED (Light Emitting Diode) is a heavily-doped p-n junction diode which, when forward biased, emits spontaneous light (electroluminescence) as electrons and holes recombine across the junction, releasing energy roughly equal to the semiconductor's band gap as a photon. The colour (wavelength) of light emitted depends on the band gap of the semiconducting mate …
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