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Showing 1–31 of 31 results for author: Norris, J

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  1. arXiv:2608.10993  [pdf, ps, other

    physics.optics

    Plasmonic Fourier Surfaces Revisited: Relating Bandgaps with Bound States in the Continuum

    Authors: Alexander A. Antonov, Connor Heimig, Hannah Niese, Yannik M. Glauser, Sander J. W. Vonk, David J. Norris, Maxim V. Gorkunov, Andreas Tittl

    Abstract: Periodically corrugated metal interfaces supporting surface plasmon polaritons (SPPs) belong to the earliest nanoplasmonic platforms. Even simplest reliefs described by a few harmonics - plasmonic Fourier surfaces - display markedly different far-field signatures depending on the corrugation depth and symmetry: shallow reliefs exhibit a plasmonic bandgap (PBG) between two hybridized SPP standing w… ▽ More

    Submitted 11 August, 2026; originally announced August 2026.

  2. arXiv:2607.09307  [pdf

    physics.optics

    Optical Fourier Surfaces for Free-Space Computer-Generated Holography

    Authors: Y. M. Glauser, C. -Y. Shen, D. B. Seda, Ç. Işil, P. Benito Eberhard, H. Niese, J. G. Crimmann, D. Petter, G. Nagamine, S. J. W. Vonk, N. Lassaline, A. Ozcan, D. J. Norris

    Abstract: Computer-generated holography can shape electromagnetic fields by encoding wavefront information in nanostructured surfaces. However, despite significant progress, hologram designs for visible and near-infrared wavelengths remain largely limited by fabrication constraints. Most implementations rely on lithographic methods that produce discretized surfaces that do not match the wave nature of light… ▽ More

    Submitted 10 July, 2026; originally announced July 2026.

    Comments: 26 pages, 5 figures

  3. arXiv:2602.18778  [pdf

    physics.optics

    Broadband, compact, and training-free optical processors for parallel image classification

    Authors: Sander J. W. Vonk, Boris de Jong, Yannik M. Glauser, David B. Seda, Matthieu F. Bidaut, Benjamin Savinson, Hannah Niese, David J. Norris

    Abstract: As artificial intelligence becomes increasingly prevalent, the demand for faster and more energy-efficient computing approaches grows. While optical computing offers intrinsic advantages in bandwidth and power consumption, existing implementations remain bulky, wavelength-specific, and dependent on complex training procedures, limiting scalability and parallel operation. In this work, we demonstra… ▽ More

    Submitted 21 February, 2026; originally announced February 2026.

  4. arXiv:2601.09022  [pdf

    physics.optics

    Fourier pixels for reciprocal light control

    Authors: Yannik M. Glauser, Sander J. W. Vonk, David B. Seda, Hannah Niese, Boris de Jong, Matthieu F. Bidaut, Daniel Petter, Gabriel Nagamine, Nolan Lassaline, David J. Norris

    Abstract: Digital cameras and displays utilise picture elements (pixels) that perform a single function: detecting or emitting light intensity. To exploit the full information content of electromagnetic waves, more advanced elements are required. This has driven the development of multifunctional components, which for example, simultaneously detect and emit intensity or extract intensity and spectral inform… ▽ More

    Submitted 13 January, 2026; originally announced January 2026.

  5. arXiv:2509.05420  [pdf, ps, other

    physics.optics cs.AI physics.class-ph physics.comp-ph

    Universality of physical neural networks with multivariate nonlinearity

    Authors: Benjamin Savinson, David J. Norris, Siddhartha Mishra, Samuel Lanthaler

    Abstract: The enormous energy demand of artificial intelligence is driving the development of alternative hardware for deep learning. Physical neural networks try to exploit physical systems to perform machine learning more efficiently. In particular, optical systems can calculate with light using negligible energy. While their computational capabilities were long limited by the linearity of optical materia… ▽ More

    Submitted 6 September, 2025; originally announced September 2025.

  6. arXiv:2501.10340  [pdf

    physics.optics cond-mat.mes-hall cond-mat.mtrl-sci

    Diffraction of Light from Optical Fourier Surfaces

    Authors: Yannik M. Glauser, J. J. Erik Maris, Raphael Brechbühler, Juri G. Crimmann, Valentina G. De Rosa, Daniel Petter, Gabriel Nagamine, Nolan Lassaline, David J. Norris

    Abstract: Diffractive surfaces shape optical wavefronts for applications in spectroscopy, high-speed communication, and imaging. The performance of these structures is primarily determined by how precisely they can be patterned. Fabrication constraints commonly lead to square-shaped, "binary" profiles that contain unwanted spatial frequencies that contaminate the diffraction. Recently, "wavy" surfaces (know… ▽ More

    Submitted 17 January, 2025; originally announced January 2025.

  7. arXiv:2407.09114  [pdf

    cond-mat.mes-hall cond-mat.mtrl-sci physics.optics quant-ph

    Spectroscopy of Single CdSe Magic-Sized Nanocrystals

    Authors: Gabriel Nagamine, Julian Santen, Juri G. Crimmann, Aniket S. Mule, Andrew B. Pun, David J. Norris

    Abstract: Chemical syntheses that provide nanocrystals (NCs) with narrow distributions in size and shape are critical for NC research. This has led to the investigation of magic-sized NCs (MSNCs), a class of semiconductor crystallites that grow in discrete steps, potentially offering a single size and shape (i.e., monodispersity). However, the photoluminescence (PL) spectra of CdSe MSNCs measured at room te… ▽ More

    Submitted 12 July, 2024; originally announced July 2024.

  8. arXiv:2307.00046  [pdf, other

    quant-ph physics.app-ph

    Improved Parameter Targeting in 3D-Integrated Superconducting Circuits through a Polymer Spacer Process

    Authors: Graham J. Norris, Laurent Michaud, David Pahl, Michael Kerschbaum, Christopher Eichler, Jean-Claude Besse, Andreas Wallraff

    Abstract: Three-dimensional device integration facilitates the construction of superconducting quantum information processors with more than several tens of qubits by distributing elements such as control wires, qubits, and resonators between multiple layers. The frequencies of resonators and qubits in flip-chip-bonded multi-chip modules depend on the details of their electromagnetic environment defined by… ▽ More

    Submitted 30 June, 2023; originally announced July 2023.

    Comments: 7 pages + 7 pages appendices

    Journal ref: EPJ Quantum Technol. 11, 5 (2024)

  9. arXiv:2105.12987  [pdf

    physics.optics cond-mat.mes-hall cond-mat.mtrl-sci

    Freeform nanostructuring of hexagonal boron nitride

    Authors: Nolan Lassaline, Deepankur Thureja, Thibault Chervy, Daniel Petter, Puneet A. Murthy, Armin W. Knoll, David J. Norris

    Abstract: Hexagonal boron nitride (hBN)-long-known as a thermally stable ceramic-is now available as atomically smooth, single-crystalline flakes, revolutionizing its use in optoelectronics. For nanophotonics, these flakes offer strong nonlinearities, hyperbolic dispersion, and single-photon emission, providing unique properties for optical and quantum-optical applications. For nanoelectronics, their pristi… ▽ More

    Submitted 27 May, 2021; originally announced May 2021.

  10. arXiv:2101.05881  [pdf

    physics.optics

    Reconsidering the design of planar plasmonic lasers: gain, gap layers, and mode competition

    Authors: Marianne Aellen, Aurelio A. Rossinelli, Robert C. Keitel, Raphael Brechbühler, Felipe V. Antolinez, Jian Cui, David J. Norris

    Abstract: Because surface plasmons can be confined below the diffraction limit, metallic lasers that support plasmonic modes can provide miniaturized sources of electromagnetic waves. Such devices often exploit a multilayer design, in which a semiconductor gain layer is placed near a metallic interface with a gap layer in between. However, despite many experimental demonstrations, key considerations for the… ▽ More

    Submitted 14 January, 2021; originally announced January 2021.

    Comments: 51 pages, 14 figures (main text and supporting information merged)

  11. arXiv:2007.07938  [pdf

    physics.app-ph cond-mat.mtrl-sci

    The Potential of Combining Thermal Scanning Probes and Phase-Change Materials for Tunable Metasurfaces

    Authors: Ann-Katrin U. Michel, Sebastian Meyer, Nicolas Essing, Nolan Lassaline, Carin R. Lightner, Samuel Bisig, David J. Norris, Dmitry N. Chigrin

    Abstract: Metasurfaces allow for the spatiotemporal variation of amplitude, phase, and polarization of optical wavefronts. Implementation of active tunability of metasurfaces promises compact flat optics capable of reconfigurable wavefront shaping. Phase-change materials (PCMs), such as germanium telluride or germanium antimony telluride, are a prominent material class enabling reconfigurable metasurfaces d… ▽ More

    Submitted 15 July, 2020; originally announced July 2020.

    Comments: 7 pages, 4 figures

  12. arXiv:2002.01236  [pdf

    cond-mat.mtrl-sci physics.optics

    Spectrally-resolved dielectric function of amorphous and crystalline GeTe nanoparticle thin films

    Authors: Ann-Katrin U. Michel, Marilyne Sousa, Maksym Yarema, Olesya Yarema, Vladimir Ovuka, Nolan Lassaline, Vanessa Wood, David J. Norris

    Abstract: Phase-change materials (PCMs), which are well-established in optical and random-access memories, are increasingly studied for emerging topics such as brain-inspired computing and active photonics. These applications take advantage of the pronounced reflectivity and resistivity changes that accompany the structural transition in PCMs from their amorphous to crystalline state. However, PCMs are typi… ▽ More

    Submitted 4 February, 2020; originally announced February 2020.

    Comments: Optical Materials Engineering Laboratory, ETH Zurich, 8092 Zurich, Switzerland. IBM Research-Zurich, Rüschlikon, Switzerland. Materials and Device Engineering Group, Department of Information Technology and Electrical Engineering, ETH Zurich, 8092 Zurich, Switzerland

  13. arXiv:2001.07594  [pdf

    physics.app-ph physics.optics

    Dual-Wavelength Lasing in Quantum-Dot Plasmonic Lattice Lasers

    Authors: Jan M. Winkler, Max J. Ruckriegel, Henar Rojo, Robert C. Keitel, Eva De Leo, Freddy T. Rabouw, David J. Norris

    Abstract: Arrays of metallic particles patterned on a substrate have emerged as a promising design for on-chip plasmonic lasers. In past examples of such devices, the periodic particles provided feedback at a single resonance wavelength, and organic dye molecules were used as the gain material. Here, we introduce a flexible template-based fabrication method that allows a broader design space for Ag particle… ▽ More

    Submitted 21 January, 2020; originally announced January 2020.

  14. arXiv:1912.09442  [pdf

    physics.optics cond-mat.mes-hall cond-mat.mtrl-sci

    Optical Fourier surfaces

    Authors: Nolan Lassaline, Raphael Brechbühler, Sander J. W. Vonk, Korneel Ridderbeek, Martin Spieser, Samuel Bisig, Boris le Feber, Freddy T. Rabouw, David J. Norris

    Abstract: Gratings and holograms are patterned surfaces that tailor optical signals by diffraction. Despite their long history, variants with remarkable functionalities continue to be discovered. Further advances could exploit Fourier optics, which specifies the surface pattern that generates a desired diffracted output through its Fourier transform. To shape the optical wavefront, the ideal surface profile… ▽ More

    Submitted 19 December, 2019; originally announced December 2019.

  15. arXiv:1909.08728  [pdf, other

    physics.ins-det physics.atom-ph

    FPGA-Controlled Versatile Microwave Source for Cold Atom Experiments

    Authors: Isaiah Morgenstern, Shan Zhong, Qimin Zhang, Logan Baker, Jeremy Norris, Bao Tran, Arne Schwettmann

    Abstract: We present a microwave source that is controlled by a commercially available field programmable gate array (FPGA). Using an FPGA allows for precise control of the time dependent microwave-dressing applied to a sample of trapped cold atoms. We test our microwave source by exciting Rabi oscillations in a Na spinor Bose-Einstein Condensate. We include, as supplements, the complete source code, parts… ▽ More

    Submitted 18 September, 2019; originally announced September 2019.

    Journal ref: Rev. Sci. Instrum. 91, 023202 (2020)

  16. arXiv:1807.10340  [pdf, other

    physics.ins-det hep-ex

    The DUNE Far Detector Interim Design Report, Volume 3: Dual-Phase Module

    Authors: DUNE Collaboration, B. Abi, R. Acciarri, M. A. Acero, M. Adamowski, C. Adams, D. Adams, P. Adamson, M. Adinolfi, Z. Ahmad, C. H. Albright, L. Aliaga Soplin, T. Alion, S. Alonso Monsalve, M. Alrashed, C. Alt, J. Anderson, K. Anderson, C. Andreopoulos, M. P. Andrews, R. A. Andrews, A. Ankowski, J. Anthony, M. Antonello, M. Antonova , et al. (1076 additional authors not shown)

    Abstract: The DUNE IDR describes the proposed physics program and technical designs of the DUNE far detector modules in preparation for the full TDR to be published in 2019. It is intended as an intermediate milestone on the path to a full TDR, justifying the technical choices that flow down from the high-level physics goals through requirements at all levels of the Project. These design choices will enable… ▽ More

    Submitted 26 July, 2018; originally announced July 2018.

    Comments: 280 pages, 109 figures. arXiv admin note: text overlap with arXiv:1807.10327

    Report number: Fermilab-Design-2018-04

  17. arXiv:1807.10334  [pdf, other

    physics.ins-det hep-ex

    The DUNE Far Detector Interim Design Report Volume 1: Physics, Technology and Strategies

    Authors: DUNE Collaboration, B. Abi, R. Acciarri, M. A. Acero, M. Adamowski, C. Adams, D. Adams, P. Adamson, M. Adinolfi, Z. Ahmad, C. H. Albright, L. Aliaga Soplin, T. Alion, S. Alonso Monsalve, M. Alrashed, C. Alt, J. Anderson, K. Anderson, C. Andreopoulos, M. P. Andrews, R. A. Andrews, A. Ankowski, J. Anthony, M. Antonello, M. Antonova , et al. (1076 additional authors not shown)

    Abstract: The DUNE IDR describes the proposed physics program and technical designs of the DUNE Far Detector modules in preparation for the full TDR to be published in 2019. It is intended as an intermediate milestone on the path to a full TDR, justifying the technical choices that flow down from the high-level physics goals through requirements at all levels of the Project. These design choices will enable… ▽ More

    Submitted 26 July, 2018; originally announced July 2018.

    Comments: 83 pages, 11 figures

    Report number: Fermilab-Design-2018-02

  18. arXiv:1807.10327  [pdf, other

    physics.ins-det hep-ex

    The DUNE Far Detector Interim Design Report, Volume 2: Single-Phase Module

    Authors: DUNE Collaboration, B. Abi, R. Acciarri, M. A. Acero, M. Adamowski, C. Adams, D. Adams, P. Adamson, M. Adinolfi, Z. Ahmad, C. H. Albright, L. Aliaga Soplin, T. Alion, S. Alonso Monsalve, M. Alrashed, C. Alt, J. Anderson, K. Anderson, C. Andreopoulos, M. P. Andrews, R. A. Andrews, A. Ankowski, J. Anthony, M. Antonello, M. Antonova , et al. (1076 additional authors not shown)

    Abstract: The DUNE IDR describes the proposed physics program and technical designs of the DUNE far detector modules in preparation for the full TDR to be published in 2019. It is intended as an intermediate milestone on the path to a full TDR, justifying the technical choices that flow down from the high-level physics goals through requirements at all levels of the Project. These design choices will enable… ▽ More

    Submitted 26 July, 2018; originally announced July 2018.

    Comments: 324 pages, 130 figures. arXiv admin note: text overlap with arXiv:1807.10340

    Report number: Fermilab-Design-2018-03

  19. arXiv:1805.10686  [pdf, other

    physics.optics cond-mat.mtrl-sci

    Three-dimensional enantiomeric recognition of optically trapped single chiral nanoparticles

    Authors: Gabriel Schnoering, Lisa V. Poulikakos, Yoseline Rosales-Cabara, Antoine Canaguier-Durand, David J. Norris, Cyriaque Genet

    Abstract: We optically trap freestanding single metallic chiral nanoparticles using a standing-wave optical tweezer. We also incorporate within the trap a polarimetric setup that allows to perform in situ chiral recognition of single enantiomers. This is done by measuring the S_3 component of the Stokes vector of a light beam scattered off the trapped nanoparticle in the forward direction. This unique combi… ▽ More

    Submitted 27 May, 2018; originally announced May 2018.

    Comments: 8 pages, including Supplemental Material, 7 figures

    Journal ref: Phys. Rev. Lett. 121, 023902 (2018)

  20. arXiv:1611.09792  [pdf

    physics.optics cond-mat.mes-hall cond-mat.mtrl-sci physics.chem-ph

    Colloidal-quantum-dot spasers and plasmonic amplifiers

    Authors: Stephan J. P. Kress, Jian Cui, Patrik Rohner, David K. Kim, Felipe V. Antolinez, Karl-Augustin Zaininger, Sriharsha V. Jayanti, Patrizia Richner, Kevin M. McPeak, Dimos Poulikakos, David J. Norris

    Abstract: Colloidal quantum dots are robust, efficient, and tunable emitters now used in lighting, displays, and lasers. Consequently, when the spaser, a laser-like source of surface plasmons, was first proposed, quantum dots were specified as the ideal plasmonic gain medium. Subsequent spaser designs, however, have required a single material to simultaneously provide gain and define the plasmonic cavity, a… ▽ More

    Submitted 29 November, 2016; originally announced November 2016.

  21. arXiv:1609.08153  [pdf

    physics.optics cond-mat.mtrl-sci

    Full-Spectrum Flexible Color Printing at the Diffraction Limit

    Authors: Patrizia Richner, Patrick Galliker, Tobias Lendenmann, Stephan J. P. Kress, David K. Kim, David J. Norris, Dimos Poulikakos

    Abstract: Color printing at the diffraction limit has been recently explored by fabricating nanoscale plasmonic structures with electron beam lithography. However, only a limited color range and constant intensity throughout the structure have been demonstrated. Here we show an alternative, facile approach relying on the direct, open-atmosphere electrohydrodynamic rapid nanodrip printing of controlled amoun… ▽ More

    Submitted 25 September, 2016; originally announced September 2016.

  22. arXiv:1609.07807  [pdf

    cond-mat.soft cond-mat.mes-hall physics.optics

    Charge Effects and Nanoparticle Pattern Formation in Electrohydrodynamic NanoDrip Printing of Colloids

    Authors: Patrizia Richner, Stephan J. P. Kress, David J. Norris, Dimos Poulikakos

    Abstract: Advancing open atmosphere printing technologies to produce features in the nanoscale range has important and broad applications ranging from electronics, to photonics, plasmonics and biology. Recently an electrohydrodynamic printing regime has been demonstrated in a rapid dripping mode (termed NanoDrip), where the ejected colloidal droplets from nozzles of diameters of O(1 μm) can controllably rea… ▽ More

    Submitted 25 September, 2016; originally announced September 2016.

  23. arXiv:1609.07328  [pdf

    physics.optics

    Printable Nanoscopic Metamaterial Absorbers and Images with Diffraction-Limited Resolution

    Authors: Patrizia Richner, Hadi Eghlidi, Stephan J. P. Kress, Martin Schmid, David J. Norris, Dimos Poulikakos

    Abstract: The fabrication of functional metamaterials with extreme feature resolution finds a host of applications such as the broad area of surface/light interaction. Non-planar features of such structures can significantly enhance their performance and tunability, but their facile generation remains a challenge. Here, we show that carefully designed out-of-plane nanopillars made of metal-dielectric compos… ▽ More

    Submitted 23 September, 2016; originally announced September 2016.

    Journal ref: ACS applied materials & interfaces 8 (2016) 11690-11697

  24. arXiv:1603.02132  [pdf

    cond-mat.mtrl-sci physics.optics

    Plasmonic Films Can Easily Be Better: Rules and Recipes

    Authors: Kevin M. McPeak, Sriharsha V. Jayanti, Stephan J. P. Kress, Stefan Meyer, Stelio Iotti, Aurelio Rossinelli, David J. Norris

    Abstract: High-quality materials are critical for advances in plasmonics, especially as researchers now investigate quantum effects at the limit of single surface plasmons or exploit ultraviolet- or CMOS-compatible metals such as aluminum or copper. Unfortunately, due to inexperience with deposition methods, many plasmonics researchers deposit metals under the wrong conditions, severely limiting performance… ▽ More

    Submitted 7 March, 2016; originally announced March 2016.

    Comments: Optical Materials Engineering Laboratory, ETH Zurich, 8092 Zurich, Switzerland

    Journal ref: ACS Photonics, 2015, 2 (3), pp 326-333

  25. The Optical Chirality Flux as a Useful Far-Field Probe of Chiral Near Fields

    Authors: Lisa V. Poulikakos, Philipp Gutsche, Kevin M. McPeak, Sven Burger, Jens Niegemann, Christian Hafner, David J. Norris

    Abstract: To optimize the interaction between chiral matter and highly twisted light, quantities that can help characterize chiral electromagnetic fields near nanostructures are needed. Here, by analogy with Poynting's theorem, we formulate the time-averaged conservation law of optical chirality in lossy dispersive media and identify the optical chirality flux as an ideal far-field observable for characteri… ▽ More

    Submitted 25 January, 2016; originally announced January 2016.

    Comments: 10 pages, 7 figures

    Journal ref: ACS Photonics 3, 1619 (2016)

  26. arXiv:1503.01703  [pdf, other

    physics.geo-ph cond-mat.other

    A damage model for fracking

    Authors: J. Quinn Norris, Donald L. Turcotte, John B. Rundle

    Abstract: Injections of large volumes of water into tight shale reservoirs allows the extraction of oil and gas not previously accessible. This large volume "super" fracking induces damage that allows the oil and/or gas to flow to an extraction well. The purpose of this paper is to provide a model for understanding super fracking. We assume that water is injected from a small spherical cavity into a homogen… ▽ More

    Submitted 5 March, 2015; originally announced March 2015.

    Comments: 17 pages, 4 figures in International Journal of Damage Mechanics

  27. arXiv:1409.7427  [pdf, other

    physics.geo-ph physics.comp-ph

    Anisotropy in Fracking: A Percolation Model for Observed Microseismicity

    Authors: J. Quinn Norris, Donald L. Turcotte, John B. Rundle

    Abstract: Hydraulic fracturing (fracking) using high pressures and a low viscosity fluid allow the extraction of large quantiles of oil and gas from very low permeability shale formations. The initial production of oil and gas at depth leads to high pressures and an extensive distribution of natural fractures which reduce the pressures. With time these fractures heal, sealing the remaining oil and gas in pl… ▽ More

    Submitted 25 September, 2014; originally announced September 2014.

    Comments: 14 pages, 10 figures

  28. arXiv:1405.2287  [pdf, other

    physics.geo-ph nlin.AO

    Loopless non-trapping invasion percolation model for fracking

    Authors: J. Quinn Norris, Donald L. Turcotte, John B. Rundle

    Abstract: Recent developments in hydraulic fracturing (fracking) have enabled the recovery of large quantities of natural gas and oil from old, low permeability shales. These developments include a change from low-volume, high-viscosity fluid injection to high-volume, low-viscosity injection. The injected fluid introduces distributed damage that provides fracture permeability for the extraction of the gas a… ▽ More

    Submitted 9 May, 2014; originally announced May 2014.

    Comments: 19 pages, 11 figures, http://journals.aps.org/pre/abstract/10.1103/PhysRevE.89.022119

    Journal ref: Phys. Rev. E 02/2014; 89(2):022119

  29. arXiv:1404.4542  [pdf, other

    physics.ins-det cond-mat.mtrl-sci

    Optimising a Muon Spectrometer for Measurements at the ISIS Pulsed Muon Source

    Authors: S. R. Giblin, S. P. Cottrell, P. J. C. King, S. Tomlinson, S. J. S. Jago, L. J. Randall, M. J. Roberts, J. Norris, S. Howarth, Q. B. Mutamba, N. J. Rhodes, F. Akeroyd

    Abstract: This work describes the development of a state-of-the-art muon spectrometer for the ISIS pulsed muon source. Conceived as a major upgrade of the highly successful EMU instrument, emphasis has been placed on making effective use of the enhanced flux now available at the ISIS source. This has been achieved both through the development of a highly segmented detector array and enhanced data acquisitio… ▽ More

    Submitted 17 April, 2014; originally announced April 2014.

    Journal ref: Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, Volume 751, 1 July 2014, Pages 70-78

  30. arXiv:0705.4250  [pdf, ps, other

    physics.optics

    Ultrafast optical switching of three-dimensional Si inverse opal photonic band gap crystals

    Authors: Tijmen G. Euser, Hong Wei, Jeroen Kalkman, Yoonho Jun, Albert Polman, David J. Norris, Willem L. Vos

    Abstract: We present ultrafast optical switching experiments on 3D photonic band gap crystals. Switching the Si inverse opal is achieved by optically exciting free carriers by a two-photon process. We probe reflectivity in the frequency range of second order Bragg diffraction where the photonic band gap is predicted. We find good experimental switching conditions for free-carrier plasma frequencies betwee… ▽ More

    Submitted 19 September, 2007; v1 submitted 29 May, 2007; originally announced May 2007.

    Journal ref: J. Appl. Phys. 102, 053111 (2007) (6 pages)

  31. arXiv:physics/9905002  [pdf, ps, other

    physics.ins-det physics.space-ph

    Beam Test of Gamma-ray Large Area Space Telescope Components

    Authors: W. B. Atwood, S. Ritz, P. Anthony, E. D. Bloom, P. E. Bosted, J. Bourotte, C. Chaput, X. Chen, D. L. Chenette, D. Engovatov, R. Erickson, T. Fieguth, P. Fleury, R. Gearhart, G. Godfrey, J. E. Grove, J. A. Hernando, M. Hirayama, S. Jaggar, R. P. Johnson, W. N. Johnson, B. B. Jones, W. Kroeger, Y. C. Lin, C. Meetre , et al. (13 additional authors not shown)

    Abstract: A beam test of GLAST (Gamma-ray Large Area Space Telescope) components was performed at the Stanford Linear Accelerator Center in October, 1997. These beam test components were simple versions of the planned flight hardware. Results on the performance of the tracker, calorimeter, and anti-coincidence charged particle veto are presented.

    Submitted 1 May, 1999; originally announced May 1999.

    Comments: 39 pages, 21 figures

    Journal ref: Nucl.Instrum.Meth.A446:444-460,2000