37 research outputs found

    Quantum information processing with space-division multiplexing optical fibres

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    The optical fibre is an essential tool for our communication infrastructure since it is the main transmission channel for optical communications. The latest major advance in optical fibre technology is spatial division multiplexing (SDM), where new fibre designs and components establish multiple co-existing data channels based on light propagation over distinct transverse optical modes. Simultaneously, there have been many recent developments in the field of quantum information processing (QIP), with novel protocols and devices in areas such as computing, communication and metrology. Here, we review recent works implementing QIP protocols with SDM optical fibres, and discuss new possibilities for manipulating quantum systems based on this technology.Comment: Originally submitted version. Please see published version for improved layout, new tables and updated references following review proces

    Mode division multiplexing using an orbital angular momentum mode sorter and MIMO-DSP over a graded-index few-mode optical fibre

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    Mode division multiplexing (MDM)– using a multimode optical fiber’s N spatial modes as data channels to transmit N independent data streams – has received interest as it can potentially increase optical fiber data transmission capacity N-times with respect to single mode optical fibers. Two challenges of MDM are (1) designing mode (de)multiplexers with high mode selectivity (2) designing mode (de)multiplexers without cascaded beam splitting’s 1/N insertion loss. One spatial mode basis that has received interest is that of orbital angular momentum (OAM) modes. In this paper, using a device referred to as an OAM mode sorter, we show that OAM modes can be (de)multiplexed over a multimode optical fiber with higher than −15 dB mode selectivity and without cascaded beam splitting’s 1/N insertion loss. As a proof of concept, the OAM modes of the LP11 mode group (OAM−1,0 and OAM+1,0), each carrying 20-Gbit/s polarization division multiplexed and quadrature phase shift keyed data streams, are transmitted 5km over a graded-index, few-mode optical fibre. Channel crosstalk is mitigated using 4 × 4 multiple-input-multiple-output digital-signal-processing with <1.5 dB power penalties at a bit-error-rate of 2 × 10−3

    All-in-fiber dynamic orbital angular momentum mode sorting

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    The orbital angular momentum (OAM) spatial degree of freedom of light has been widely explored in many applications, including telecommunications, quantum information and light-based micro-manipulation. The ability to separate and distinguish between the different transverse spatial modes is called mode sorting or mode demultiplexing, and it is essential to recover the encoded information in such applications. An ideal dd mode sorter should be able to faithfully distinguish between the different dd spatial modes, with minimal losses, have dd outputs, and have fast response times. All previous mode sorters rely on bulk optical elements such as spatial light modulators, which cannot be quickly tuned and have additional losses if they are to be integrated with optical fiber systems. Here we propose and experimentally demonstrate, to the best of our knowledge, the first all-in-fiber method for OAM mode sorting with ultra-fast dynamic reconfigurability. Our scheme first decomposes the OAM mode in fiber-optical linearly polarized (LP) modes, and then interferometrically recombines them to determine the topological charge, thus correctly sorting the OAM mode. In addition, our setup can also be used to perform ultra-fast routing of the OAM modes. These results show a novel and fiber integrated form of optical spatial mode sorting that can be readily used for many new applications in classical and quantum information processing.Comment: 9 pages, 6 figure

    Compact and high-performance vortex mode sorter for multi-dimensional multiplexed fiber communication systems

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    With the amplitude, time, wavelength/frequency, phase, and polarization/spin parameter dimensions of the light wave/photon almost fully utilized in both classical and quantum photonic information systems, orbital angular momentum (OAM) carried by optical vortex modes is regarded as a new modal parameter dimension for further boosting the capacity and performance of the systems. To exploit the OAM mode space for such systems, stringent performance requirements on a pair of OAM mode multiplexer and demultiplexer (also known as mode sorters) must be met. In this work, we implement a newly discovered optical spiral transformation to achieve a low-cross-Talk, wide-opticalbandwidth, polarization-insensitive, compact, and robust OAM mode sorter that realizes the desired bidirectional conversion between seven co-Axial OAM modes carried by a ring-core fiber and seven linearly displaced Gaussian-like modes in parallel single-mode fiber channels. We further apply the device to successfully demonstrate high-spectralefficiency and high-capacity data transmission in a 50-km OAM fiber communication link for the first time, in which a multi-dimensional multiplexing scheme multiplexes eight orbital-spin vortex mode channels with each mode channel simultaneously carrying 10 wavelength-division multiplexing channels, demonstrating the promising potential of both the OAM mode sorter and the multi-dimensional multiplexed OAM fiber systems enabled by the device. Our results pave the way for futureOAM-based multi-dimensional communication systems

    Novel Insights into Orbital Angular Momentum Beams: From Fundamentals, Devices to Applications

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    It is well-known by now that the angular momentum carried by elementary particles can be categorized as spin angular momentum (SAM) and orbital angular momentum (OAM). In the early 1900s, Poynting recognized that a particle, such as a photon, can carry SAM, which has only two possible states, i.e., clockwise and anticlockwise circular polarization states. However, only fairly recently, in 1992, Allen et al. discovered that photons with helical phase fronts can carry OAM, which has infinite orthogonal states. In the past two decades, the OAM-carrying beam, due to its unique features, has gained increasing interest from many different research communities, including physics, chemistry, and engineering. Its twisted phase front and intensity distribution have enabled a variety of applications, such as micromanipulation, laser beam machining, nonlinear matter interactions, imaging, sensing, quantum cryptography and classical communications. This book aims to explore novel insights of OAM beams. It focuses on state-of-the-art advances in fundamental theories, devices and applications, as well as future perspectives of OAM beams

    Multidiameter optical ring and Hermite–Gaussian vortices for wavelength division multiplexing–mode division multiplexing

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    Optical vortices are high-capacity data carriers for mode division multiplexing (MDM) in multimode fiber (MMF). This paper reports on the MDM of a combination of helical-phased optical vortices comprising donut modes and Hermite–Gaussian (HG) modes for different radial offsets from the MMF axis. A data rate of 44 Gbps is achieved for wavelength division multiplexing–MDM of two pairs of helical-phased donut mode and HG mode at wavelengths 1550.12 and 1551.72 nm for a MMF length of 1500 m

    Mode division multiplexing based on ring core optical fibers

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    The unique modal characteristics of ring core fibers (RCFs) potentially enable the implementation of mode-division multiplexing (MDM) schemes that can increase optical data transmission capacity with either low-complexity modular multi-input multi-output (MIMO) equalization or no MIMO equalization. This paper attempts to present a comprehensive review of recent research on the key aspects of RCF-based MDM transmission. Starting from fundamental fiber modal structures, a theoretical comparison between RCFs and conventional step-index and graded-index multi-mode fibers in terms of their MDM capacity and the associated MIMO complexity is given first as the underlining rationale behind RCF-MDM. This is followed by a discussion of RCF design considerations for achieving high-mode channel count and low crosstalk performances in either MIMO-free or modular MIMO transmission schemes. The principles and implementations of RCF mode (de-)multiplexing devices are discussed in detail, followed by RCF-based optical amplifiers culminating in MIMO-free or modular-MIMO RCF-MDM data transmission schemes. A discussion on further research directions is also given

    Design and characterization of few-mode fibers for space division multiplexing on fiber eigenmodes

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    La croissance constante et exponentielle de la demande de trafic de données Internet conduit nos réseaux de télécommunications optiques, principalement composés de liaisons de fibre monomode, à une pénurie imminente de capacité. La limite non linéaire de la fibre monomode, prédite par la théorie de l'information, ne laisse aucune place à l'amélioration de la capacité de communication par fibre optique. Dans ce contexte, la prochaine technologie de rupture dans les transmissions optiques à haute capacité devrait être le multiplexage par répartition spatiale (SDM). La base du SDM consiste à utiliser différents canaux spatiaux d'une seule fibre optique pour transmettre des données indépendantes. Le SDM fournit ainsi une augmentation de la capacité de transport de données d'un facteur qui dépend du nombre de chemins spatiaux qui sont établis. Une façon de réaliser le SDM consiste à utiliser des fibres faiblement multimodes (FMF) spécialisées, conçues pour présenter un couplage faible entre les modes guidés. Un traitement MIMO réduit peut alors être utilisé pour annuler le couplage résiduel des modes. Dans cette thèse, nous donnons tout d'abord un aperçu des progrès récents du multiplexage par répartition de modes (MDM). Les modes à polarisation linéaire (LP), les modes de moment angulaire orbital (OAM) et les modes vectoriels représentent différentes bases de modes orthogonaux possibles dans la fibre. Nous comparons les travaux utilisant ces modes en termes de conception de fibre proposée, nombre de modes, complexité MIMO et résultats expérimentaux de transmission de données. Ensuite, nous introduisons la modélisation de la fibre optique réalisée avec les solveurs numériques de COMSOL Multiphysics, et nous discutons de quelques travaux utilisant cette modélisation de fibre. Nous proposons une nouvelle FMF, composée d'un noyau hautement elliptique et d'une tranchée adjacente ajoutée pour réduire la perte de courbure des modes d'ordre supérieur. La fibre est conçue et optimisée pour prendre en charge cinq modes spatiaux avec une dégénérescence de polarisation double, pour un total de dix canaux. La fibre proposée montre une différence d'indice effectif entre les modes spatiaux supérieure à 1 × 10-3sur la bande C. Ensuite, nous fabriquons la fibre avec un procédé standard de dépôt chimique en phase vapeur modifié (MCVD), et nous caractérisons la fibre en laboratoire. La caractérisation expérimentale a révélé que la fibre présente une propriété de maintien de polarisation. Ceci est obtenu grâce à la combinaison de la structure centrale asymétrique et de la contrainte thermique introduite lors de la fabrication. Nous mesurons la biréfringence avec une technique de réseau de Bragg inscrit dans la fibre (FBG). En incluant la contrainte thermique dans notre modélisation de fibre, un bon accord est obtenu entre la biréfringence simulée et mesurée. Nous avons réussi à effectuer la première transmission de données sur la fibre proposée, en transmettant deux signaux QPSK sur les deux polarisations de chaque mode spatial, sans utiliser de traitement MIMO. Enfin, nous présentons une amélioration d'une technique d'interférométrie hyperfréquence (MICT) précédemment proposée, afin de mesurer expérimentalement la perte en fonction du mode (MDL) des groupes de modes FMF. En conclusion, nous résumons les résultats et présentons les perspectives d'avenir de cette recherche. En résumé, de nouveaux FMF doivent être étudiés si nous voulons résoudre la pénurie imminente de capacité de nos technologies système. Les résultats de cette thèse indique que le FMF à maintien de polarisation proposée dans cette recherche représente une amélioration significative dans le domaine des systèmes de transmission MDM sans MIMO pour des liaisons de communication courtes ; c’est-à-dire distribuant des données sur une longueur inférieure à 10 km. Nous espérons que ce travail conduira au développement de nouveaux composants SD Mutilisant cette fibre, tels que de nouveaux amplificateurs à fibre, ou de nouveaux multiplexeurs/démultiplexeurs, comme par exemple des coupleurs en mode fibre fusionnée ou des dispositifs photoniques au silicium.The constant and exponential growth of Internet data traffic demand is driving our optical telecommunication networks, mainly composed of single-mode fiber links, to an imminent capacity shortage. The nonlinear limit of the single-mode fiber, predicted by the information theory, leave no room for optical fiber communication capacity improvements. In this direction, the next disruptive technology in high-capacity communication transmissions is expected to be Space Division Multiplexing (SDM). The basic of SDM consists of using different spatial channels of a single optical fiber to transmit information data. SDM thus provides an increase in the data-carrying capacity by a factor that depends on the number of spatial paths that are established. A way to realize SDM is through the use of specialty few-mode fibers (FMFs), designed to have a weak coupling between the guided modes. A reduced MIMO processing can be used to undo the residual mode coupling. In this thesis, we firstly give an overview of the recent progress in mode division multiplexing (MDM). Linearly polarized (LP) modes, orbital angular momentum (OAM) modes and vector modes represent the possible orthogonal modes guided into the fiber. We compare works, making use of those modes, in terms of proposed fiber design, number of modes, MIMO complexity and data transmission experiments. After that, we introduce the optical fiber modelling performed with the numerical solvers of COMSOL Multiphysics, and we discuss some works making use of this fiber modelling. Next, we propose a novel FMF, composed of a highly elliptical core and a surrounding trench added to reduce the bending loss of the higher order modes. The fiber is designed and optimized to support five spatial modes with twofold polarization degeneracy, for a total of ten channels. The proposed fiber shows an effective index difference between the spatial modes higher than 1×10-3 over the C-band. Afterwards, we fabricate the fiber with standard modified chemical vapor deposition (MCVD) process, and we characterize the fiber in the laboratory. The experimental characterization revealed the polarization maintaining properties of the fiber. This is obtained with the combination of the asymmetric core structure and the thermal stress introduced during the fabrication. We measure the birefringence with a fiber Bragg grating (FBG) technique, and we included the thermal stress in our fiber modelling. A good agreement was found between the simulated and measured birefringence. We successfully demonstrate the first data transmission over the proposed fiber, by transmitting two QPSK signals over the two polarizations of each spatial mode, without the use of any MIMO processing. Lastly, we present an improvement of a previously proposed microwave interferometric technique (MICT), in order to experimentally measure the mode dependent loss (MDL) of FMF mode groups. Finally, we present the conclusions and the future perspectives of this research. To conclude, novel FMFs need to be investigated if we want to solve the imminent capacity shortage of our system technologies. We truly believe that the polarization-maintaining FMF proposed in this research represents a significant improvement to the field of MIMO-free MDM transmission systems for short communication links, distributing data over length less than 10 km. We hope that this work will drive the development of new SDM components making use of this fiber, such as new fiber amplifiers, or new mux/demux, as for example fused fiber mode couplers or silicon photonic devices
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