@misc{57091,
  author       = {{Scheytt, J. Christoph and Schwabe, Tobias}},
  title        = {{{Integriertes optisches Spektrometer}}},
  year         = {{2024}},
}

@misc{57092,
  author       = {{Kruse, Stephan and Scheytt, J. Christoph}},
  title        = {{{Optoelektronischer Oszillator}}},
  year         = {{2024}},
}

@inproceedings{57111,
  author       = {{Mihaylov, Martin Miroslavov and Kress, Christian and Scheytt, J. Christoph}},
  location     = {{Paderborn}},
  title        = {{{Simulation and Optimization of Low-Loss Photonic Coupling  Structures for TFLN Integrated Circuits for Quantum Applications}}},
  year         = {{2024}},
}

@misc{57096,
  author       = {{Kruse, Stephan and Scheytt, J. Christoph and Schwabe, Tobias and Heiko Gustav, Kurz and Marc-Michael, Meinecke}},
  title        = {{{Mehrband-Sensorsystem zur Umfelderfassung, sowie Verfahren und Kraftfahrzeug}}},
  year         = {{2024}},
}

@misc{57089,
  author       = {{Kruse, Stephan and Brecht, Benjamin and Silberhorn, Christine and Serino, Laura Maria}},
  title        = {{{Quantenoptisch-unterstütztes Sende-/Empfangssystem}}},
  year         = {{2024}},
}

@inproceedings{50287,
  author       = {{Kruse, Stephan and Schwabe, Tobias and Kneuper, Pascal and Kurz, Heiko G. and Meinecke, March-Michael and Scheytt, Christoph}},
  booktitle    = {{German Microwave Conference (GeMiC) }},
  title        = {{{Analysis and Simulation of a Photonic Multiband FMCW Radar Sensor System using Nyquist Pulses}}},
  doi          = {{10.23919/GeMiC59120.2024.10485320}},
  year         = {{2024}},
}

@inproceedings{54785,
  author       = {{Kruse, Stephan and Schwabe, Tobias and Kneuper, Pascal and Scheytt, J. Christoph}},
  booktitle    = {{INTERNATIONAL CONFERENCE RADAR 2024}},
  location     = {{RENNES}},
  title        = {{{A Photonic Multiband Radar Transmitter Architecture with Tailored Nonlinear Transmission Line}}},
  year         = {{2024}},
}

@inproceedings{53797,
  author       = {{Kruse, Stephan and Kneuper, Pascal and Schwabe, Tobias and Kurz, Heiko G. and Meinecke, Marc-Michael and Gonzalez-Huici, María A. and Scheytt, J. Christoph}},
  booktitle    = {{International Conference on Microwaves for Intelligent Mobility (ICMIM)}},
  title        = {{{Phase Noise Analysis of Photonic Radar Systems with Optical LO Distribution}}},
  year         = {{2024}},
}

@inproceedings{53800,
  author       = {{Kruse, Stephan and Brockmeier, Jan and Kneuper, Pascal and Schwabe, Tobias and Kurz, Heiko G. and Meinecke, Marc Michael and Scheytt, J. Christoph}},
  booktitle    = {{ International Radar Symposium (IRS)}},
  title        = {{{Doppler Analysis of a Lidar-Photonic Radar Combined Sensor System}}},
  year         = {{2024}},
}

@inproceedings{57108,
  author       = {{Kruse, Stephan and Brecht, Benjamin and Silberhorn, Christine}},
  title        = {{{A Quantum Pulse Gate Enhanced Photonic Radar Architecture }}},
  doi          = {{10.5281/zenodo.14934743}},
  year         = {{2024}},
}

@misc{59071,
  author       = {{Weizel, Maxim and Scheytt, J. Christoph}},
  publisher    = {{Zenodo}},
  title        = {{{Photonically Assisted Sampling Circuits}}},
  doi          = {{10.5281/ZENODO.14990093}},
  year         = {{2024}},
}

@inproceedings{45778,
  abstract     = {{RISC-V has received worldwide acceptance in the industry and by the academic community. As of today, multiple
RISC-V applications and variants are under investigation for embedded IoT systems, from resource-limited single-core
processors up to multi-core systems for High-Performance Computing (HPC). Recently, the Grid of Processing Cells
(GPC) platform has been proposed as a scalable parallel grid-oriented network of processor cores with local memories.
This paper describes a prototype design of the GPC platform for hardware implementation at Register-Transfer Level
(RTL) based on modified RISC-V Rocket processors with scratchpad memories. It introduces a scalable Chisel-based
implementation of the modified Rocket cores with RTL generation and a functional test using Verilator simulation. This
work also includes the adaptation of the Chipyard software toolchain to extend the compiler to multi-core grids with
different local address spaces.}},
  author       = {{Luchterhandt, Lars and Nellius, Tom and Beck, Robert and Dömer, Rainer and Kneuper, Pascal and Müller, Wolfgang and Sadiye, Babak}},
  booktitle    = {{MBMV 2024 - 27. Workshop Methoden und Beschreibungssprachen zur Modellierung und Verifikation von Schaltungen und Systemen“}},
  location     = {{Germany,  Freiburg}},
  publisher    = {{VDE Verlag}},
  title        = {{{Implementation of Different Communication Structures for a Rocket Chip Based RISC-V Grid of Processing Cells}}},
  year         = {{2024}},
}

@inproceedings{45776,
  author       = {{Ecker, Wolfgang and Krstic, Milos and Ulbricht, Markus and Mauderer, Andreas and Jentzsch, Eyck and Koch, Andreas and Koppelmann, Bastian and Müller, Wolfgang and Sadiye, Babak and Bruns, Niklas and Drechsler, Rolf and Müller-Gritschneder, Daniel and Schlamelcher, Jan and Grüttner, Kim and Bormann, Jörg and Kunz, Wolfgang and Heckmann, Reinhold and Angst, Gerhard and Wimmer, Ralf and Becker, Bernd and Faller, Tobias and Palomero Bernardo, Paul and Brinkmann, Oliver and Partzsch, Johannes and Mayr, Christian}},
  booktitle    = {{RISC-V Summit Europe 2023, Barcelona, Spain, June 2023.}},
  location     = {{ Barcelona, Spain,}},
  title        = {{{Scale4Edge – Scaling RISC-V for Edge Applications}}},
  year         = {{2023}},
}

@inproceedings{48530,
  author       = {{Müller, Wolfgang and Ulbricht, Markus and Li, Lu and Krstic, Milos}},
  booktitle    = {{5. ITG / GMM / GI -Workshop Testmethoden und Zuverlässigkeit von Schaltungen und Systemen }},
  location     = {{Erfurt. Germany}},
  title        = {{{Der TETRISC SoC - Ein resilientes Quad-Core System auf Pulpissimo-Basis}}},
  year         = {{2023}},
}

@inproceedings{48961,
  author       = {{Iftekhar, Mohammed and Gowda, Harshan and Kneuper, Pascal and Sadiye, Babak and Müller, Wolfgang and Scheytt, Christoph}},
  booktitle    = {{2023 IEEE BiCMOS and Compound Semiconductor Integrated Circuits and Technology Symposium (BCICTS)}},
  location     = {{Monterey, CA, USA}},
  title        = {{{A 28-Gb/s 27.2mW NRZ Full-Rate Bang-Bang Clock and Data Recovery in 22 nm FD-SOI CMOS Technology}}},
  doi          = {{10.1109/BCICTS54660.2023.10310954}},
  year         = {{2023}},
}

@article{50012,
  abstract     = {{Silicon photonics, in conjunction with complementary metal-oxide-semiconductor (CMOS) fabrication, has greatly enhanced the development of integrated optical phased arrays. This facilitates a dynamic control of light in a compact form factor that enables the synthesis of arbitrary complex wavefronts in the infrared spectrum. We numerically demonstrate a large-scale two-dimensional silicon-based optical phased array (OPA) composed of nanoantennas with circular gratings that are balanced in power and aligned in phase, required for producing elegant radiation patterns in the far-field. For a wavelength of 1.55 μm, we optimize two antennas for the OPA exhibiting an upward radiation efficiency as high as 90%, with almost 6.8% of optical power concentrated in the field of view. Additionally, we believe that the proposed OPAs can be easily fabricated and would have the ability to generate complex holographic images, rendering them an attractive candidate for a wide range of applications like LiDAR sensors, optical trapping, optogenetic stimulation, and augmented-reality displays.}},
  author       = {{Farheen, Henna and Strauch, Andreas and Scheytt, J. Christoph and Myroshnychenko, Viktor and Förstner, Jens}},
  issn         = {{1569-4410}},
  journal      = {{Photonics and Nanostructures - Fundamentals and Applications}},
  keywords     = {{tet_topic_opticalantenna}},
  pages        = {{101207}},
  publisher    = {{Elsevier BV}},
  title        = {{{Optimized, Highly Efficient Silicon Antennas for Optical Phased Arrays}}},
  doi          = {{10.1016/j.photonics.2023.101207}},
  volume       = {{58}},
  year         = {{2023}},
}

@article{45485,
  author       = {{Kruse, Stephan and Serino, Laura and Folge, Patrick Fabian and Echeverria Oviedo, Dana and Bhattacharjee, Abhinandan and Stefszky, Michael and Scheytt, J. Christoph and Brecht, Benjamin and Silberhorn, Christine}},
  issn         = {{1041-1135}},
  journal      = {{IEEE Photonics Technology Letters}},
  keywords     = {{Electrical and Electronic Engineering, Atomic and Molecular Physics, and Optics, Electronic, Optical and Magnetic Materials}},
  number       = {{14}},
  pages        = {{769--772}},
  publisher    = {{Institute of Electrical and Electronics Engineers (IEEE)}},
  title        = {{{A Pulsed Lidar System With Ultimate Quantum Range Accuracy}}},
  doi          = {{10.1109/lpt.2023.3277515}},
  volume       = {{35}},
  year         = {{2023}},
}

@inproceedings{45578,
  abstract     = {{A frequency-flexible Nyquist pulse synthesizer is presented with optical pulse bandwidths up to fopt=100 GHz and repetition rates equal to fopt/9, fabricated in an electronic-photonic co-integrated platform utilizing linear on-chip drivers.}},
  author       = {{Kress, Christian and Schwabe, Tobias and Silberhorn, Christine and Scheytt, J. Christoph}},
  booktitle    = {{ Conference on Lasers and Electro-Optics (CLEO) 2023}},
  location     = {{San Jose, CA, USA}},
  publisher    = {{Optica Publishing Group}},
  title        = {{{Generation of 100 GHz Periodic Nyquist Pulses using Cascaded Mach-Zehnder Modulators in a Silicon Electronic-Photonic Platform}}},
  doi          = {{https://doi.org/10.1364/CLEO_SI.2023.SF1P.6}},
  year         = {{2023}},
}

@misc{48622,
  abstract     = {{Die Erfindung betrifft ein Verfahren
zum Betreiben einer elektrooptischen Übertragungsvorrichtung, mit den Schritten:
- Erzeugen eines optischen Trägersignals mittels einer optischen Signalquelle einer Basiseinrichtung der Übertragungsvorrichtung;
- Erzeugen eines beliebigen Signals mittels der optischen Signalquelle;
- Aufmodulieren des beliebigen Signals auf das optische Trägersignal in der Basiseinrichtung zu einem Übertragungssignal;
- Übertragen des Übertragungssignals an eine Antenneneinrichtung der Übertragungsvorrichtung mittels eines optischen Übertragungsmediums; und
- Trennen des beliebiges Signals und des Trägersignals in der Antenneneinrichtung.
Ferner betrifft die Erfindung ein Computerprogrammprodukt
sowie eine Übertragungsvorrichtung.}},
  author       = {{Kruse, Stephan and Scheytt, J. Christoph and Meinecke, Marc-Michael and Heiko Gustav, Kurz}},
  title        = {{{Verfahren zum Betreiben einer elektrooptischen Übertragungsvorrichtung für beliebige Signale, Computerprogrammprodukt sowie Datenübertragungsvorrichtung}}},
  year         = {{2023}},
}

@misc{48625,
  abstract     = {{Die Erfindung betrifft einen elektrooptischen Balun, wobei der elektrooptische Balun einen Eingang für ein optisches Eingangssignal (Ein(t)) aufweist, wobei der elektrooptische Balun weiterhin ein 1x2 Multimodeninterferometer (1x2 MMI) und einen Phasenschieber (Δϕ) aufweist, wobei das 1x2 Multimodeninterferometer (1x2 MMI) mit dem Eingangssignal im Betrieb versorgbar ist, wobei der elektrooptische Balun weiterhin ein 2x4 Multimodeninterferometer (2x4 MMI) aufweist, wobei das 2x4 Multimodeninterferometer (2x4 MMI) mit den Ausgangsarmen des 1x2 Multimodeninterferometer (1x2 MMI) verbunden ist, wobei der Phasenschieber (Δϕ) in einem Ausgangsarm des 1x2 Multimodeninterferometer (1x2 MMI) angeordnet ist, wobei im Betrieb an zwei Ausgängen (Eout,1 (t), Eout,4(t)) des 2x4 Multimodeninterferometers (2x4 MMI) ein quasi differentielles optisches Signal anliegt, das mittels einer jeweiligen Photodiode (PD1, PD2) und einem differentiellen Schaltkreis in ein DC-freies elektrisches Signal (Vout) überführt werden kann.
Weiterhin betrifft die Erfindung ein System zur Generierung eines pseudeodifferentiellen Signals, aufweisend einen elektrooptischen Balun sowie einen optischen Strahlteiler (OS) sowie einen dual output carrier injection Mach Zehnder Modulator (MZM), wobei der optische Strahlteiler (OS) ein Eingangssignal (IIN) in einen ersten Teil (n) und einen zweiten Teil (1-n) aufteilt, wobei der zweite Teil (1-n) als Eingangssignal (Ein(t)) im Betrieb auf den Eingang des elektrooptischen Baluns geführt wird, wobei der erste Teil (n) im Betrieb als Eingangssignal dem dual output carrier injection Mach Zehnder Modulator (MZM) zugeführt wird, wobei das quasi differentielle elektrische Signal (I1, I2) der Photodioden (PD1, PD2) im Betrieb zur Ansteuerung des dual output carrier injection Mach Zehnder Modulator (MZM) in push pull Konfiguration verwendet wird.}},
  author       = {{Kruse, Stephan and Scheytt, J. Christoph}},
  title        = {{{Elektrooptischer Balun und System zur Generierung eines pseudodifferentiellen Signals aufweisend einen solchen elektrooptischen Balun}}},
  year         = {{2023}},
}

