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      Silicon Photonics Rectangular Universal Interferometer

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          Universal Linear Optics

          Linear optics underpins tests of fundamental quantum mechanics and computer science, as well as quantum technologies. Here we experimentally demonstrate the longstanding goal of a single reprogrammable optical circuit that is sufficient to implement all possible linear optical protocols up to the size of that circuit. Our six-mode universal system consists of a cascade of 15 Mach-Zehnder interferometers with 30 thermo-optic phase shifters integrated into a single photonic chip that is electrically and optically interfaced for arbitrary setting of all phase shifters, input of up to six photons and their measurement with a 12 single-photon detector system. We programmed this system to implement heralded quantum logic and entangling gates, boson sampling with verification tests, and six-dimensional complex Hadamards. We implemented 100 Haar random unitaries with average fidelity 0.999 \(\pm\) 0.001. Our system is capable of switching between these and any other linear optical protocol in seconds. These results point the way to applications across fundamental science and quantum technologies.
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            Multipurpose silicon photonics signal processor core

            Integrated photonics changes the scaling laws of information and communication systems offering architectural choices that combine photonics with electronics to optimize performance, power, footprint, and cost. Application-specific photonic integrated circuits, where particular circuits/chips are designed to optimally perform particular functionalities, require a considerable number of design and fabrication iterations leading to long development times. A different approach inspired by electronic Field Programmable Gate Arrays is the programmable photonic processor, where a common hardware implemented by a two-dimensional photonic waveguide mesh realizes different functionalities through programming. Here, we report the demonstration of such reconfigurable waveguide mesh in silicon. We demonstrate over 20 different functionalities with a simple seven hexagonal cell structure, which can be applied to different fields including communications, chemical and biomedical sensing, signal processing, multiprocessor networks, and quantum information systems. Our work is an important step toward this paradigm.
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              Optical Filter Design and Analysis

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                Author and article information

                Journal
                Laser & Photonics Reviews
                Laser & Photonics Reviews
                Wiley
                18638880
                November 2017
                November 2017
                November 07 2017
                : 11
                : 6
                : 1700219
                Affiliations
                [1 ]ITEAM Research Institute; Universitat Politècnica de València; Valencia 46022 Spain
                [2 ]Dept. Teoría de la Señal y Comunicaciones; Universidad de Vigo; ETSI Telecomunicación; Vigo 36310 Spain
                [3 ]Optoelectronics Research Centre; University of Southampton; Hampshire Southampton SO17 1BJ United Kingdom
                Article
                10.1002/lpor.201700219
                3b4825cc-9994-430b-b27a-06961a9f2ee0
                © 2017

                http://doi.wiley.com/10.1002/tdm_license_1.1

                http://creativecommons.org/licenses/by/4.0/

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