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Featured researches published by Stefan Schwarz.


IEEE Photonics Technology Letters | 2013

Silicon Photonic Implementation of a Scalable O-OFDM Demultiplexer

Abdul Rahim; Stefan Schwarz; Jürgen Bruns; Karsten Voigt; Georg Winzer; Lars Zimmermann; Christian G. Schäffer; Klaus Petermann

An easily scalable eight channel photonic integrated circuit to demultiplex an optical orthogonal frequency-division multiplexing (OFDM) symbol is presented. It is designed and fabricated using a silicon photonic platform. The measured filter response is in close agreement with the modeled results for an ideal device. Emulation using the measured response of the fabricated filter shows that the filter is capable of demultiplexing optical OFDM symbols comprising eight sub-carriers, each operating at 13.5 GBd.


Journal of Lightwave Technology | 2012

Finite Impulse Response Filter Using 4-Port MMI Couplers for Residual Dispersion Compensation

Abdul Rahim; Stefan Schwarz; J. Bruns; Karsten Voigt; Dimitar Kroushkov; Mohammed Tareq Arnous; Christian G. Schäffer; Klaus Petermann

Many implementations of optical finite impulse response filter for signal processing applications have been realized in integrated photonics using 2×2 couplers. We have implemented a filter using 4× 4 couplers. Such a filter is useful for the compensation of residual dispersion in a fiber optic transmission system. Silicon photonics realization using 4-port multimode interference couplers in 4 μm silicon-on-insulator technology has been carried out for a free spectral range of 100 GHz. The transmission and group delay for the fabricated device have been measured and a good agreement between the simulation and experimental results has been achieved. The proposed filter can compensate up to ±176 ps/nm of fiber chromatic dispersion.


Signal Processing in Photonic Communications | 2013

Scalable Integrated DFT Demultiplexer for Terabit Optical OFDM Transmission

Stefan Schwarz; Abdul Rahim; J. Bruns; Klaus Petermann; Christian G. Schaeffer

We present a scalable optical filter structure for realization of a real-time capable DFT operation. The performance of a serial-parallel filter structure for demultiplexing eight channels in an optical OFDM system is analyzed.


international quantum electronics conference | 2013

Highly scalable integrated discrete fourier transformation filter in silicon-on-insulator for next generation WDM systems

Abdul Rahim; J. Bruns; Karsten Voigt; Klaus Petermann; Stefan Schwarz; Christian G. Schaeffer

Summary form only given. The network traffic is estimated to be quadrupled by the year 2016 and will enter the “zettabyte” era. This ever increasing traffic demands more bandwidth and capacity in future from the long haul optical fiber transmission systems. The deployment of single carrier coherently detected 100 Gbps Polarization Multiplexed Quadrature Phase Shift Keying Wavelength Division Multiplexed (PM-QPSK WDM) systems is expected in the near future. Beyond that, the next generation 400 Gbps WDM systems are gaining lot of attention recently to sustain the traffic growth for the next years [1]. To make such systems spectrally efficient with low price per bit, multiple carrier Coherent Optical Orthogonal Frequency Division Multiplexing (CO-OFDM) is considered as one of the most attractive options. It allows the packing of multiple PM-QPSK carriers in a super-channel delivering high data rates. An all-optical implementation of the CO-OFDM receiver for systems operating at 400Gbps and beyond leads to an energy efficient solution and overcomes the speed limits of electronics.The demultiplexing of spectrally overlapping OFDM sub-carriers requires the Discrete Fourier Transformation (DFT) operation. A generalized schematic for a simple DFT filter for OFDM receiver is schematically shown in figure 1(a). This architecture allows the order R of the DFT filter to be increased by either increasing the order of the couplers or the number of stages N. In comparison to other integrated DFT approaches [2,3], this approach brings flexibility in filter scaling. Each stage of the filter is an MZI and performs the serial to parallel conversion and DFT operation. Various material platforms exist for the implementation of integrated optical circuits. One of them is Siliconon-Insulator (SOI) and is best known for its CMOS compatibility for mass production, energy efficiency, compact and high quality passive components. To emphasize the feasibility of our DFT filter architecture, we fabricated and characterized an 8 DFT filter in 4 μm SOI platform using a cascade of 2 and 4 port MZIs by employing 2 and 4 port Multimode Interference (MMI) couplers. The first stage of the fabricated filter has a 2port MZI with its outputs connected to the two 4-port MZIs in the second stage. The filter with 300 GHz Free Spectral Range (FSR) is designed to demultiplex 8 OFDM sub-carriers, that are QPSK modulated at 37.5 Gbaud resulting in an overall bit rate of 600 Gbps for each polarization. Figures 1(c) and 1(d) shows the filter transmission for TM and TE polarization. The performance of the filter is evaluated by using the measured filter response for an emulation performed in VPITransmissionMaker 8.7 for a 600 Gbps OFDM super-channel. All the channels have a Q value of more than 10 dB [4] to deliver a BER of 10-3. Figure 1(b) shows the constellation diagram obtained by demultiplexing one of the channels using the measurement result from the fabricated filter.


international conference on numerical simulation of optoelectronic devices | 2012

All-optical discrete Fourier transform for OFDM demultiplexing and its sensitivity to phase errors

Stefan Schwarz; Christian G. Schaeffer; Abdul Rahim; J. Bruns; Klaus Petermann

We present the design of an optical OFDM-demultiplexer for the separation of 8 sub-channels. Using simulations, we investigate the tolerance towards phase errors in the structure which could be realized as a planar lightwave circuit (PLC).


Integrated Photonics Research, Silicon and Nanophotonics | 2011

Compact FIR Filter Architecture for Tunable Optical Dispersion Compensation in Silicon Photonics

Abdul Rahim; Stefan Schwarz; Jürgen Bruns; Christian G. Schäffer; Klaus Petermann

This paper presents the dispersion behavior of a 4-port asymmetric Mach-Zehnder-Interferometer, which can be used as a building block for a novel, compact and easy to control dispersion compensating filter.


optical fiber communication conference | 2013

Terabit optical OFDM demultiplexer in silicon photonics

Abdul Rahim; Stefan Schwarz; Jürgen Bruns; Christian G. Schäffer; Klaus Petermann


Optical and Quantum Electronics | 2013

Comparison of phase error sensitivities of all-optical discrete Fourier transforms for OFDM demultiplexing

Stefan Schwarz; Christian G. Schaeffer; Abdul Rahim; J. Bruns; Klaus Petermann


optical fiber communication conference | 2014

16-Channel O-OFDM Demultiplexer in Silicon Photonics

Abdul Rahim; Stefan Schwarz; Jürgen Bruns; Lars Zimmermann; Sheikh Jalil Ahmed; Christian G. Schäffer; Klaus Petermann


european conference on optical communication | 2013

Tunable Two-Stage 6th order FIR-Filter for Residual Dispersion Compensation

Stefan Schwarz; A. Rahim; J. Bruns; K. Petermann; Christian G. Schaeffer

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Klaus Petermann

Technical University of Berlin

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J. Bruns

Technical University of Berlin

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Jürgen Bruns

Technical University of Berlin

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Karsten Voigt

Technical University of Berlin

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Dimitar Kroushkov

Technical University of Berlin

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Mohammed Tareq Arnous

Technical University of Berlin

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