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Photonic Quantum Computing
Purcell enhanced electroluminescence of a unipolar light emitting quantum device at 10 micron
arXiv
Authors: Marta Mastrangelo, Djamal Gacemi, Axel Evirgen, Salvatore Pes, Alexandre Larrue, Pascal Filloux, Isabelle Sagnes, Abdelmounaim Harouri, Angela Vasanelli, Carlo Sirtori
Year
2026
Paper ID
3510
Status
Preprint
Abstract Read
~2 min
Abstract Words
155
Citations
N/A
Abstract
Efficient generation of radiation in the mid- and far- infrared relies primarily on lasers and coherent nonlinear optical phenomena driven by lasers. This wavelength range lacks of luminescent devices because the spontaneous emission rate becomes much longer than the nonradiative energy relaxation processes and therefore emitters have to count on stimulated emission produced by linear or non-linear optical gain. However, spontaneous emission is not a fundamental property of the emitter. By engineering metamaterials composed of arrays of nano-emitters into microcavities coupled to patch antennas, we have demonstrated mid-infrared electroluminescent devices emitting a collimated beam with excellent spatial properties and a factor 100 increase in the collected power, compared to standard devices. Our results illustrate that by reshaping the photonic environment around emitting dipoles, as in the Purcell effect, it is possible to enhance the spontaneous emission and conceive efficient optoelectronic light emitting devices that operate close to the thermodynamical equilibrium as LEDs in the visible range.
Why This Paper Matters
- This paper contributes to the Photonic Quantum Computing research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- Efficient generation of radiation in the mid- and far- infrared relies primarily on lasers and coherent nonlinear optical phenomena driven by lasers.
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