A photonic integrated circuit (PIC) or integrated optical circuit is a microchip containing two or more photonic components which form a functioning circuit. This technology detects, generates, transports, and processes light. Photonic integrated circuits utilize photons (or particles of light) as opposed to electrons that are utilized by electronic integrated circuits. The major difference between the two is that a photonic integrated circuit provides functions for information signals imposed on optical wavelengths typically in the visible spectrum or near infrared (850–1650 nm).
The most commercially utilized material platform for photonic integrated circuits is indium phosphide (InP), which allows for the integration of various optically active and passive functions on the same chip. Initial examples of photonic integrated circuits were simple 2-section distributed Bragg reflector (DBR) lasers, consisting of two independently controlled device sections – a gain section and a DBR mirror section. Consequently, all modern monolithic tunable lasers, widely tunable lasers, externally modulated lasers and transmitters, integrated receivers, etc. are examples of photonic integrated circuits. As of 2012, devices integrate hundreds of functions onto a single chip.
Pioneering work in this arena was performed at Bell Laboratories. The most notable academic centers of excellence of photonic integrated circuits in InP are the University of California at Santa Barbara, USA, the Eindhoven University of Technology and the University of Twente in the Netherlands.
A 2005 development showed that silicon can, even though it is an indirect bandgap material, still be used to generate laser light via the Raman nonlinearity. Such lasers are not electrically driven but optically driven and therefore still necessitate a further optical pump laser source.
Photonics is the science behind the detection, generation, and manipulation of photons. According to quantum mechanics and the concept of wave-particle duality first proposed by Albert Einstein in 1905, light acts as both an electromagnetic wave and a particle.
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The course offers an overview on selected advanced photonics topics. It targets students with a broad photonics background or equivalent, who are willing to broaden their knowledge in the discipline.
Series of lectures covering the physics of quantum heterostructures (including quantum dots), microcavities and photonic crystal cavities as well as the properties of the main light emitting devices t
Silicon photonics is the study and application of photonic systems which use silicon as an optical medium. The silicon is usually patterned with sub-micrometre precision, into microphotonic components. These operate in the infrared, most commonly at the 1.55 micrometre wavelength used by most fiber optic telecommunication systems. The silicon typically lies on top of a layer of silica in what (by analogy with a similar construction in microelectronics) is known as silicon on insulator (SOI).
Un ordinateur optique (ou ordinateur photonique) est un ordinateur numérique qui utilise des photons pour le traitement des informations, alors que les ordinateurs conventionnels utilisent des électrons. Les photons ont la particularité de ne pas créer d’interférence magnétique, de ne pas générer de chaleur et de se propager très rapidement. Les transistors optiques sont beaucoup plus rapides que les transistors électroniques. Des ordinateurs optiques pourraient être plus puissants que les ordinateurs conventionnels actuels.
vignette|Image de la lumière d'un laser ultra large-bande émergeant d'une fibre monomode de cristal photonique dont on voit la sortie à droite (point blanc).|alt=Sur fond noir une grande tache en forme d'étoile irisée à gauche et un petit point blanc à droite. La photonique est la branche de la physique concernant l'étude et la fabrication de composants permettant la génération, la transmission, le traitement (modulation, amplification) ou la conversion de signaux optiques.
Couvre les miroirs Bragg, obtenant des réflectivités supérieures à 99 % comme alternative aux miroirs métalliques, et leur importance dans l'interaction lumière-matière.
Photonic integrated circuits are paving the way for novel on-chip functionalities with diverse applications in communication, computing, and beyond. The integration of on-chip light sources, especially single-mode lasers, is crucial for advancing those pho ...
Washington2024
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Electro-optical photonic integrated circuits (PICs) based on lithium niobate (LiNbO3) have demonstrated the vast capabilities of materials with a high Pockels coefficient1,2. They enable linear and high-speed modulators operating at complementary metal–oxi ...
This talk will highlight opportunities for terahertz science and technology from nonlinear integrated photonic circuits by exploring waveguides, resonators and terahertz antennas. Their present and future applications in metrology, emission and waveform co ...