Programmable multifunctional integrated nanophotonics

Programmable multifunctional integrated nanophotonics (PMIN) is a new paradigm that aims at designing common integrated optical hardware configurations, which by suitable programming can implement a variety of functionalities that can be elaborated for basic or more complex operations in many applic...

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Main Authors: Pérez Daniel, Gasulla Ivana, Capmany José
Format: Article
Language:English
Published: De Gruyter 2018-07-01
Series:Nanophotonics
Subjects:
Online Access:https://doi.org/10.1515/nanoph-2018-0051
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spelling doaj-1433d9b9e298422c812f6ea3724d8e862021-09-06T19:20:31ZengDe GruyterNanophotonics2192-86062192-86142018-07-01781351137110.1515/nanoph-2018-0051nanoph-2018-0051Programmable multifunctional integrated nanophotonicsPérez Daniel0Gasulla Ivana1Capmany José2Photonics Research Laboratories, ITEAM Research Institute, Universitat Politècnica de València, Camino de Vera s/n, 46022 Valencia, SpainPhotonics Research Laboratories, ITEAM Research Institute, Universitat Politècnica de València, Camino de Vera s/n, 46022 Valencia, SpainPhotonics Research Laboratories, ITEAM Research Institute, Universitat Politècnica de València, Camino de Vera s/n, 46022 Valencia, SpainProgrammable multifunctional integrated nanophotonics (PMIN) is a new paradigm that aims at designing common integrated optical hardware configurations, which by suitable programming can implement a variety of functionalities that can be elaborated for basic or more complex operations in many application fields. The interest in PMIN is driven by the surge of a considerable number of emerging applications in the fields of telecommunications, quantum information processing, sensing and neurophotonics that will be calling for flexible, reconfigurable, low-cost, compact and low-power-consuming devices, much in the same way as how field programmable gate array (FPGA) devices operate in electronics. The success of PMIN relies on the research into suitable interconnection hardware architectures that can offer a very high spatial regularity as well as the possibility of independently setting (with a very low power consumption) the interconnection state of each connecting element. Integrated waveguide meshes provide regular and periodic geometries, formed by replicating a unit cell, which can take the form of a square, hexagon or triangle, among other configurations. Each side of the cell is formed by two integrated waveguides connected by means of a Mach-Zehnder interferometer (MZI) or a tunable directional coupler that can be operated by means of an output control signal as a crossbar switch or as a variable coupler with independent power division ratio and phase shift. In this paper, we review the recent advances reported in the field of PMIN and, especially, in those based on integrated photonic waveguide meshes, both from the theoretical as well as from the experimental point of view. We pay special attention to outlining the design principles, material platforms, synthesis algorithms and practical constraints of these structures and discuss their applicability to different fields.https://doi.org/10.1515/nanoph-2018-0051integrated opticsnanophotonicsoptical signal processing
collection DOAJ
language English
format Article
sources DOAJ
author Pérez Daniel
Gasulla Ivana
Capmany José
spellingShingle Pérez Daniel
Gasulla Ivana
Capmany José
Programmable multifunctional integrated nanophotonics
Nanophotonics
integrated optics
nanophotonics
optical signal processing
author_facet Pérez Daniel
Gasulla Ivana
Capmany José
author_sort Pérez Daniel
title Programmable multifunctional integrated nanophotonics
title_short Programmable multifunctional integrated nanophotonics
title_full Programmable multifunctional integrated nanophotonics
title_fullStr Programmable multifunctional integrated nanophotonics
title_full_unstemmed Programmable multifunctional integrated nanophotonics
title_sort programmable multifunctional integrated nanophotonics
publisher De Gruyter
series Nanophotonics
issn 2192-8606
2192-8614
publishDate 2018-07-01
description Programmable multifunctional integrated nanophotonics (PMIN) is a new paradigm that aims at designing common integrated optical hardware configurations, which by suitable programming can implement a variety of functionalities that can be elaborated for basic or more complex operations in many application fields. The interest in PMIN is driven by the surge of a considerable number of emerging applications in the fields of telecommunications, quantum information processing, sensing and neurophotonics that will be calling for flexible, reconfigurable, low-cost, compact and low-power-consuming devices, much in the same way as how field programmable gate array (FPGA) devices operate in electronics. The success of PMIN relies on the research into suitable interconnection hardware architectures that can offer a very high spatial regularity as well as the possibility of independently setting (with a very low power consumption) the interconnection state of each connecting element. Integrated waveguide meshes provide regular and periodic geometries, formed by replicating a unit cell, which can take the form of a square, hexagon or triangle, among other configurations. Each side of the cell is formed by two integrated waveguides connected by means of a Mach-Zehnder interferometer (MZI) or a tunable directional coupler that can be operated by means of an output control signal as a crossbar switch or as a variable coupler with independent power division ratio and phase shift. In this paper, we review the recent advances reported in the field of PMIN and, especially, in those based on integrated photonic waveguide meshes, both from the theoretical as well as from the experimental point of view. We pay special attention to outlining the design principles, material platforms, synthesis algorithms and practical constraints of these structures and discuss their applicability to different fields.
topic integrated optics
nanophotonics
optical signal processing
url https://doi.org/10.1515/nanoph-2018-0051
work_keys_str_mv AT perezdaniel programmablemultifunctionalintegratednanophotonics
AT gasullaivana programmablemultifunctionalintegratednanophotonics
AT capmanyjose programmablemultifunctionalintegratednanophotonics
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