220 research outputs found
Development of an integrated silicon photonic transceiver for access networks
Debido a la imparable aparición de dispositivos móviles multifunción junto con
aplicaciones que requieren cada vez más un mayor ancho de banda en cualquier momento
y en cualquier lugar, las futuras redes de acceso deberán ser capaces de proporcionar
servicios tanto inalámbricos como cableados. Es por ello que una solución a seguir es el
uso de sistemas de comunicaciones ópticas como medio de transporte de señales
inalámbricas en enlaces de radio sobre fibra. Con ello, se converge a un dominio óptico
reduciendo y aliviando el cuello de botella entre los estándares de acceso inalámbrico y
cableado.
En esta tesis, como parte de los objetivos establecidos en el proyecto europeo HELIOS
en el que está enmarcada, se han investigado y desarrollado los bloques funcionales
básicos necesarios para realizar un transceptor fotónico integrado trabajando en el rango
de longitudes de onda milimétricas, y haciendo uso de los formatos de modulación más
robustos y que mejor se adaptan al ámbito de aplicación considerado.
El trabajo que se presenta en esta tesis se puede dividir básicamente en tres partes. La
primera de ellas ofrece una descripción general de los beneficios del uso de la fotónica en
silicio para el desarrollo de enlaces inalámbricos a velocidades de Gbps, así como el
estado del arte de los transceptores desarrollados por los grupos de investigación más
activos y punteros para satisfacer las necesidades de mercado, cada vez más exigentes.
La segunda parte se centra en el estudio y desarrollo del transmisor integrado de onda
milimétrica. Primero realizamos una breve introducción teórica tanto del funcionamiento
de los dispositivos que forman parte del transmisor, como a los formatos de modulación
existentes, centrando la atención en la modulación por desplazamiento de fase (PSK) que
es la que se va a utilizar en el desarrollo de los dispositivos implicados, y más
concretamente en la modulación (diferencial) de fase en cuadratura ((D)QPSK). También
se presentan los bloques básicos que integran nuestro transmisor y se fijan las
especificaciones que deben cumplir dichos bloques para conseguir una transmisión libre
de errores. El transmisor está compuesto por un filtro/demultiplexor encargado de separar
dos portadoras ópticas separadas una frecuencia de 60 GHz. Una de estas portadoras es
modulada al pasar por un modulador DQPSK basado en una estructura de dos MachZehnders (MZs) anidados, para ser nuevamente combinada con la otra portadora óptica que se ha mantenido intacta. Una vez combinadas, éstas son fotodetectadas para ser
transmitidas inalámbricamente.
En la tercera parte de esta tesis, se investiga el uso de un esquema de diversidad en
polarización junto a un receptor DQPSK integrado para la demodulación de la señal
recibida. El esquema de diversidad en polarización está formado básicamente por dos
bloques: un separador de polarización con el objetivo de separar la luz a la entrada del
chip en sus dos componentes ortogonales; y un rotador de polarización.
En lo que se refiere al receptor DQPSK propiamente dicho, se ha investigado y
optimizado cada uno de los bloques funcionales que lo componen. Éstos son básicamente
un divisor de potencia termo-ópticamente sintonizable basado en un interferómetro MZ,
en serie con un interferómetro MZ que introduce un retardo de duración de un bit en uno
de sus brazos, para obtener una correcta demodulación diferencial. El siguiente bloque
que forma parte de nuestro receptor DQPSK es un 2x4 acoplador de interferencia
multimodal actuando como un híbrido de 90 grados, cuyas salidas van a parar a dos
fotodetectores balanceados de germanio.
Las contribuciones principales de esta tesis han sido:
¿ Demostración de un filtro/demultiplexor con tres grados de sintonización con una
relación de extinción superior a 25dB.
¿ Demostración de un rotador con una longitud de tan sólo 25µm y CMOS
compatible.
¿ Demostración de un modulador DPSK a una velocidad máxima de 20 Gbit/s.
¿ Demostración de un demodulador DQPSK a una velocidad máxima de 20 Gbit/s.Due to the relentless emergence of multifunction mobile devices with applications that
require increasingly greater bandwidth at anytime and anywhere, future access networks
must be capable of providing both wireless and wired services. The use of optical
communications systems as transport medium of wireless signals over fiber radio links is
a steady solution to be taken into account. This will make possible a convergence to an
optical domain reducing and alleviating the bottleneck between wireless access standards
and current wired access.
In this thesis, as part of the objectives of the European project HELIOS in which it is
framed, we have investigated and developed the basic functional blocks needed to achieve
an integrated photonic transceiver working in the range of millimetre wavelengths, and
using robust modulation formats that best fit the scope considered.
The work presented in this thesis can be basically divided into three parts. The first one
provides an overview of the benefits of using silicon photonics for the development of
wireless links at rates of Gbps, and the state of the art of the transceivers reported by the
most important research groups in order to meet the increasingly demanding needs¿
market.
The second part focuses on the study and development of millimetre-wave integrated
transmitter. First we provide a brief theoretical introduction of the operation principles of
the devices involved in the transmitter such as a modulation formats, focusing on the
phase shift keying (PSK) which is the one that will be used, particularly the (differential)
quadrature phase shift keying ((D) QPSK). We also present the building blocks involved
in our transmitter and we set the specifications that must be met by these devices in order
to achieve an error-free transmission. The transmitter includes a filter/demultiplexer
which must separate two optical carriers 60 GHz separated. One of these optical carriers
is modulated by passing through a DQPSK Mach-Zehnder-based modulator (MZM) by
arranging two MZMs in a nested configuration. Using a combiner, the modulated optical
signal and the un-modulated carrier are combined and photodetected to be transmitted
wirelessly.
In the third part of this thesis, we investigate the use of a polarization diversity scheme
with an integrated DQPSK receiver for demodulating of the wireless signal. The polarization diversity scheme basically consists of two blocks: a polarization splitter in
order to separate the random polarization state of the incoming light into its two
orthogonal components, and a polarization rotator.
Regarding the DQPSK receiver itself, all the functional blocks that comprise it have been
investigated and optimized. It basically includes a thermo-optically tunable MZ
interferometer power splitter, in series with a MZ interferometer that introduces, in one
of its arms, a delay of one bit length in order to obtain a correct differential demodulation.
The next building block of our DQPSK receiver is a 2x4 multimode interference coupler
acting as a 90 degree hybrid, whose outputs are connected to two balanced germanium
photodetectors.
The main contributions of this thesis are:
¿ Demonstration of a filter/demultiplexer with three degrees of tuning and an
extinction ratio greater than 25dB.
¿ Demonstration of a polarization rotator with a length of only 25¿m and CMOS
compatible.
¿ Demonstration of a DPSK modulator at a maximum rate of 20 Gbit/s.
¿ Demonstration of a DQPSK demodulator to a maximum rate of 20 Gbit/s.Aamer, M. (2013). Development of an integrated silicon photonic transceiver for access networks [Tesis doctoral no publicada]. Universitat Politècnica de València. https://doi.org/10.4995/Thesis/10251/31649TESI
Enhanced PON Infrastructure Enabled by Silicon Photonics
Les systèmes de courte portée et de détection directe sont le dernier/premier kilomètre de la fourniture des services Internet d'aujourd'hui. Deux cas d'application sont abordés dans cette thèse, l'un concerne l'amélioration des performances des services Internet par la Fibre-To-TheHome ou les réseaux optiques passifs (PONs). L'autre est le radio access network (RAN) pour le fronthaul. Notre objectif pour RAN est de superposer les signaux 5G sur une infrastructure PON. Nous démontrons expérimentalement la génération d'un signal de répartition multiplexée de fréquences orthogonales (OFDM) à bande latérale unique en utilisant un modulateur IQ sur puce basé sur les photoniques au silicium à micro-anneau. Il s'agit d'une solution à coût bas permettant aux PONs d'augmenter les débits de données grâce à l'utilisation d'OFDM. Nous avons généré un signal OFDM à large bande avec un ratio de suppression de bande latérale de plus de 18 dB. Afin de confirmer la robustesse de la dispersion chromatique (CD), nous transmettons le signal généré OFDM SSB dans plus de 20 km de fibre de monomode standard. Aucun fading induit par la CD n'a été observé et le taux d'erreur sur les bits était bon. Nous proposons une solution de photoniques au silicium pour un réseau optique passif afin de mitiger l'interférence de battement signal-signal (SSBI) dans la transmission OFDM, et de récupérer une partie des porteuses de la liaison descendante pour une utilisation dans la liaison montante. Le sous-système recrée les interférences à une entrée du détecteur équilibré ; le signal de données corrompu par SSBI est à la deuxième entrée. L'annulation se produit via la soustraction dans la détection équilibrée. Comme notre solution de photoniques au silicium (SiP) ne peut pas filtrer les signaux idéalement, nous examinons un facteur d'échelle introduit dans la détection équilibrée qui peut balancer les effets de filtrage non idéaux. Nous montrons expérimentalement l'annulation de l'interférence donne de bonnes performances même avec une porteuse faible, soit pour un ratio porteuse/signal ultra bas de 0 dB. Bien que notre solution soit sensible aux effets de la température, notre démonstration expérimentale montre que le réglage de la fréquence résonante peut dériver jusqu'à 12 GHz de la valeur ciblée et présenter toujours de bonnes performances. Nous effectuons des simulations extensives du schéma d'annulation SSBI proposé, et suggérons une diverse conception polarisée pour le sous-système SiP. Nous examinons via la simulation la vulnérabilité à la variation de température et introduisons une nouvelle métrique de performance : Q-facteur minimum garanti. Nous nous servons de cette métrique pour évaluer la robustesse d'annulation SSBI contre la dérive de fréquence induite par les changements de température. Nous maximisons l'efficacité spectrale sous différentes conditions du système en balayant les paramètres de conception contrôlables. Finalement, les résultats de la simulation du système fournissent des indications sur la conception du résonateur micro-anneau, ainsi que sur le choix de la bande de garde et du format de modulation pour obtenir la plus grande efficacité spectrale. Finalement, nous nous concentrons sur la superposition des signaux 5G sur une infrastructure PON pour RAN. Nous expérimentalement validons un sous-système photonique au silicium conçu pour les réseaux optiques passifs avec réutilisation de porteuses et compatibilité radiosur-fibre (RoF) analogique 5G. Le sous-système permet la détection simultanée des signaux RoF et du signal PON transmis dans une seule tranche assignée de longueur d'onde. Tout en maintenant une qualité suffisante de détection des signaux RoF et PON, il n'y a que la puissance minimale de la porteuse qui est extraite pour chaque détection, ce qui conserve ainsi la puissance de la porteuse pour la modulation de liaison montante. Nous réalisons une suppression efficace du signal de liaison descendante en laissant une porteuse propre et forte pour la remodulation. Nous démontrons expérimentalement le signal RoF de liaison montante via un modulateur à micro-anneau. Nous avons détecté avec succès un signal à large bande de 8 GHz et cinq signaux RoF de 125 MHz simultanément. Et deux signaux RoF de 125 MHz sont remodulés sur la même porteuse. Le signal RoF de liaison montante généré est de 13 dB de plus que les signaux de liaison descendante, ce qui indique leur robustesse contre la diaphonie des signaux résiduels de la liaison descendante.Short reach, direct detection systems are the last/first mile of today's internet service provision. Two use cases are addressed in this thesis, one is for enhancing performance of Internet services on fiber-to-the-home or passive optical networks (PON). The other is radio access networks (RAN) for fronthaul. Our focus for RAN is to overlay 5G signals on a PON infrastructure. We experimentally demonstrate the generation of a single-sideband orthogonal frequency division multiplexed (OFDM) signal using an on-chip silicon photonics microring-based IQ modulator. This is a low cost solution enabling PONs to increase data rates through the use of OFDM. We generated a wideband OFDM signal with over 18 dB sideband suppression ratio. To confirm chromatic dispersion (CD) robustness, we transmit the generated SSB OFDM signal over 20 km of standard single mode fiber. No CD-induced fading was observed and bit error rate was good. We propose a silicon photonics solution for a passive optical network to mitigate signal-signal beat interference (SSBI) in OFDM transmission, and to recuperate a part of the downlink carrier for use in the uplink. The subsystem recreates the interference at one balanced detector input; the data signal corrupted with SSBI is at the second input. Cancellation occurs via subtraction in the balanced detection. As our silicon photonics (SiP) solution cannot filter the signals ideally, we examine a scaling factor to be introduced to the balanced detection that can trade-off the non-ideal filtering effects. We show experimentally that the interference is cancelled, allowing good performance even with a weak carrier, that is, for ultra low carrier to signal ratio of 0 dB. Although our solution is sensitive to temperature effects, our experimental demonstration shows the tuning of the resonant frequency can drift by as much as 12 GHz from the targeted value and still provide good performance. We perform extensive simulations of the proposed SSBI cancellation scheme, and suggest a polarization diverse design for the SiP subsystem. We examine via simulation the vulnerability to temperature variation and introduce a new performance metric: minimum guaranteed Qfactor. We use this metric to evaluate the SSBI cancellation robustness against the frequency drift induced by temperature changes. We maximize the spectral efficiency under different system conditions by sweeping the controllable design parameters. Finally the system simulation results provide guidance on the microring resonator design, as well as choice of guard band and modulation format to achieve the highest spectral efficiency. Finally, we turn to focus on overlay 5G signals on a PON infrastructure for RAN. We experimentally validate a silicon photonic subsystem designed for passive optical networks with carrier reuse and 5G analog radio-over-fiber (RoF) compatibility. The subsystem enables the simultaneous detection of RoF signals and a PON signal transmitted in a single assigned wavelength slot. While maintaining sufficient quality of RoF and PON signal detection, only the minimum carrier power is leached off for each detection, thus conserving carrier power for uplink modulation. We realize effective downlink signal suppression to leave a clean and strong carrier for remodulation. We demonstrate experimentally the RoF uplink signal via a micro ring modulator. We successfully detected an 8 GHz broadband signal and five 125 MHz RoF signals simultaneously. And two 125 MHz radio over fiber signals are remodulated onto the same carrier. The generated uplink RoF signal is 13 dB over the downlink signals, indicating their robustness against the crosstalk from residual downlink signals
A survey on OFDM-based elastic core optical networking
Orthogonal frequency-division multiplexing (OFDM) is a modulation technology that has been widely adopted in many new and emerging broadband wireless and wireline communication systems. Due to its capability to transmit a high-speed data stream using multiple spectral-overlapped lower-speed subcarriers, OFDM technology offers superior advantages of high spectrum efficiency, robustness against inter-carrier and inter-symbol interference, adaptability to server channel conditions, etc. In recent years, there have been intensive studies on optical OFDM (O-OFDM) transmission technologies, and it is considered a promising technology for future ultra-high-speed optical transmission. Based on O-OFDM technology, a novel elastic optical network architecture with immense flexibility and scalability in spectrum allocation and data rate accommodation could be built to support diverse services and the rapid growth of Internet traffic in the future. In this paper, we present a comprehensive survey on OFDM-based elastic optical network technologies, including basic principles of OFDM, O-OFDM technologies, the architectures of OFDM-based elastic core optical networks, and related key enabling technologies. The main advantages and issues of OFDM-based elastic core optical networks that are under research are also discussed
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Silicon Photonics for All-Optical Processing and High-Bandwidth-Density Interconnects
Silicon photonics has emerged in recent years as one of the leading technologies poised to enable penetration of optical communications deeper and more intimately into computing systems than ever before. The integration potential of power efficient WDM links at the first level package or even deeper has been a strong driver for the rapid development this field has seen in recent years. The integration of photonic communication modules with very high bandwidth densities and virtually no bandwidth-distance limitations at the short reach regime of high performance computers and data centers has the potential to alleviate many of the bandwidth bottlenecks currently faced by board, rack, and facility levels. While networks on chip for chip multiprocessors (CMP) were initially deemed the target application of silicon photonic components, it has become evident in recent years that the initial lower hanging fruit is the CMP's I/O links to memory as well as other CMPs. The first chapter of the thesis provides more detailed motivation for the integration of silicon photonic modules into compute systems and surveys some of the recent developments in the field. The second chapter then proceeds to detail a technical case study of silicon photonic microring-based WDM links' scalability and power efficiency for these chip I/O applications which could be developed in the intermediate future. The analysis, initiated originally for a workshop on optical and electrical board and rack level interconnects, looks into a detailed model of the optical power budget for such a link capturing both single-channel aspects as well as WDM-operation-related considerations which are unique for a microring physical characteristics. The holistic analysis for the full link captures the wavelength-channel-spacing dependent characteristics, provides some methodologies for device design in the WDM-operation context, and provides performance predictions based on current best-of-class silicon photonic devices. The key results of the analysis are the determination of upper bounds on the aggregate achievable communication bandwidth per link, identifying design trade-offs for bandwidth versus power efficiency, and highlighting the need for continued technological improvements in both laser as well as photodetector technologies to allow acceptable power efficiency operation of such systems.The third chapter, while continuing on the theme silicon photonic high bandwidth density links, proceeds to detail the first experimental demonstration and characterization of an on-chip spatial division multiplexing (SDM) scheme based on microrings for the multiplexing and demultiplexing functionalities. In the context of more forward looking optical network-on-chip environments, SDM-enabled WDM photonic interconnects can potentially achieve superior bandwidth densities per waveguide compared to WDM-only photonic interconnects. The microring-based implementation allows dynamic tuning of the multiplexing and demultiplexing characteristic of the system which allows operation on WDM grid as well device tuning to combat intra-channel crosstalk. The characterization focuses on the first reported power penalty measurements for on-chip silicon photonic SDM link showing minimal penalties achievable with 3 spatial modes concurrently operating on a single waveguide with 10-Gb/s data carried by each mode. The chapter also details the first demonstration of WDM combined with SDM operation with six separate wavelength-and-spatial 10-Gb/s channels with error free operation and low power penalties. The fourth, fifth, and sixth chapters shift in topic from the application of silicon photonics to communication links to the evolving use of silicon waveguides for nonlinear all-optical processing. The unique tight mode confinement in sub-micron cross-sections combined with the high response of silicon have motivated the development of four-wave mixing (FWM)-based processing silicon devices. The key feature of the silicon platform for these nonlinear processing platforms is the ability to finely and uniformly control the dispersive properties of the optical structures in a way that enables completely offsetting the material dispersion and achieve dispersion profiles required for effective parametric interaction of waves in the optical structures. Chapter four primarily introduces and motivates nonlinear processing in communication applications and focuses on recent achievements in non-silicon and silicon FWM platforms. Chapter five describes some of the author's contributions on parametric processing of high speed data in silicon nonlinear devices, with first of a kind demonstrations of wavelength conversion of 160-Gb/s optically time division multiplexed (OTDM) data as well as the wavelength-multicasting of a 320-Gb/s OTDM stream. The chapter then details a methodical characterization and demonstration of several record wavelength conversion experiments of data in silicon with 40-Gb/s data wavelength-converted across more than 100 nm with only 1.4-dB of power penalties as well as the wavelength and format conversion of 10-Gb/s data across up to 168 nm with sensitivity gains stemming from the format conversion of about 2 dB and a residual conversion penalty of only 0.1 dB, achieved by implementing an improved experimental setup. Both experiments highlight the performance uniformity of the conversion process for a wide range of probe-idler detuning settings, showcasing the silicon platform's unique broadband phase matching properties. The sixth chapter presents a slight shift in motivation for parametric processing from traditional telecom-wavelength applications to functionalities developed targeting mid-IR operation. Parametric-processing in the silicon platform at long wavelengths holds large potential for performance improvements due to the elimination of two-photon absorption in silicon at long wavelengths as well as silicon's dispersion engineering capabilities which uniquely position the silicon platform for effective phase matching of significantly wavelength detuned waves. Four-wave mixing signal generation and reception at mid-IR wavelengths are attractive candidates for tunable flexible operation with modulation and detection speeds which are currently only available at telecom wavelengths. With this vision in mind, several contributions detailing extension of FWM functionalities in silicon to operate at wavelengths close to 2 μm with performance equivalent to much smaller detuning setting measurements. The contributions detail the experimental demonstration of the first silicon optical processing functionalities achieved at such long wavelengths including the wavelength conversion and unicast of 10-Gb/s signals with up to 700 nm of probe-idler detuning, the combined two-stage 10-Gb/s FWM-link in which both data generation and detection at 1900 nm is facilitated by parametric processing in silicon with only 2.1-dB overall penalty, the first ever 40-Gb/s receiver at 1900 nm based on a FWM stage for simultaneous temporal demultiplexing and wavelength conversion, and lastly, the demonstration of a 40-Gb/s FWM-link operation with only 3.6 dB of penalty. The chapter concludes with a short discussion on possible extensions to enable silicon parametric processing at even longer wavelengths targeting the mid-IR spectral transmission window of 3-5 μm
Silicon photonic modulators for PAM transmissions
High-speed optical interconnects are crucial for both data centers and high performance computing systems. High power consumption and limited device bandwidth have hindered the move to higher optical transmission speeds. Integrated optical transceivers in silicon photonics (SiP) using pulse-amplitude modulation (PAM) are a promising solution to increase data rates. In this paper, we review recent progress in SiP for PAM transmissions. We focus on materials and technologies available CMOS-compatible photonics processes. Performance metrics of SiP modulators and crucial considerations for high-speed PAM transmissions are discussed. Various driving strategies to achieve optical PAM signals are presented. Some of the state-of-the-art SiP PAM modulators and integrated transmitters are reviewed
Neuromorphic computing using wavelength-division multiplexing
Optical neural networks (ONNs), or optical neuromorphic hardware
accelerators, have the potential to dramatically enhance the computing power
and energy efficiency of mainstream electronic processors, due to their
ultralarge bandwidths of up to 10s of terahertz together with their analog
architecture that avoids the need for reading and writing data back and forth.
Different multiplexing techniques have been employed to demonstrate ONNs,
amongst which wavelength division multiplexing (WDM) techniques make sufficient
use of the unique advantages of optics in terms of broad bandwidths. Here, we
review recent advances in WDM based ONNs, focusing on methods that use
integrated microcombs to implement ONNs. We present results for human image
processing using an optical convolution accelerator operating at 11 Tera
operations per second. The open challenges and limitations of ONNs that need to
be addressed for future applications are also discussed.Comment: 13 pages, 8 figures, 160 reference
Beyond 5G Fronthaul based on FSO Using Spread Spectrum Codes and Graphene Modulators.
High data rate coverage, security, and energy efficiency will play a key role in the continued performance scaling of next-generation mobile systems. Dense, small mobile cells based on a novel network architecture are part of the answer. Motivated by the recent mounting interest in free-space optical (FSO) technologies, this paper addresses a novel mobile fronthaul network architecture based on FSO, spread spectrum codes, and graphene modulators for the creation of dense small cells. The network uses an energy-efficient graphene modulator to send data bits to be coded with spread codes for achieving higher security before their transmission to remote units via high-speed FSO transmitters. Analytical results show the new fronthaul mobile network can accommodate up to 32 remote antennas under error-free transmissions with forward error correction. Furthermore, the modulator is optimized to provide maximum efficiency in terms of energy consumption per bit. The optimization procedure is carried out by optimizing both the amount of graphene used on the ring resonator and the modulator’s design. The optimized graphene modulator is used in the new fronthaul network and requires as low as 4.6 fJ/bit while enabling high-speed performance up to 42.6 GHz and remarkably using one-quarter of graphene only
Heterogeneous Integrated Photonic Transceiver on Silicon
The demand for high-speed and low-cost short-distance data links, eventually for chip-level optical communication, has led to large efforts to develop high density photonics integrated circuits (PICs) to decrease the power consumption and unit price. Particularly, silicon based photonic integration promise future high-speed and cost-effective optical interconnects to enable exascale performance computers and datacenters. High-level integration of all photonics components on chip, including high speed modulators and photodetectors, and especially lasers, is required for scalable and energy efficient system topology designs. This is enabled by silicon-based heterogeneous integration approach, which transfers different material systems to the silicon substrate with a complementary metal–oxide–semiconductor (CMOS) compatible process. In this thesis, our work focuses on the development of silicon photonic integrated circuit in the applications of high speed chip level optical interconnects. A full library of functional devices is demonstrated on silicon, including low threshold distributed feedback (DFB) lasers as a low power laser source; high extinction ratio and high speed electroabsorption modulators (EAM) and ultra-linear Mach-Zehnder interferometer (MZI) modulators for signal modulation in the data transmitter; high speed photodetectors for the data receiver; and low loss silicon components, such as arrayed waveguide grating (AWG) routers and broadband MZI based switches. The design and characterization of those devices are discussed in this thesis. A highly integrated photonic circuit can be achieved with co-design and co-process of all types of functional photonic devices. Selective die bonding method is performed to integrate multiple III-V dies with different band-gap onto a single photonic die. A reconfigurable network-on-chip circuit was proposed and demonstrated, with state-of-the-art high-speed silicon transceiver chip. With over 400 active and passive components heterogeneously integrated on silicon, photonic circuit with multiple- wavelength-division multiplexing (WDM) transceiver nodes achieved a total capacity up to 8×8×40 Gbps. This high capacity and dense integrated heterogenous circuit shows its potential as a solution for future ultra-high speed inter- and intra-chip interconnects
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