Patents by Inventor Philip J. Kuekes

Philip J. Kuekes has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20120243075
    Abstract: A gain-clamped semiconductor optical amplifier comprises: at least one first surface; at least one second surface, each second surface facing and electrically isolated from a respective first surface; a plurality of nanowires connecting each opposing pair of the first and second surfaces in a bridging configuration; and a signal waveguide overlapping the nanowires such that an optical signal traveling along the signal waveguide is amplified by energy provided by electrical excitation of the nanowires.
    Type: Application
    Filed: June 1, 2012
    Publication date: September 27, 2012
    Inventors: Shih-Yuan WANG, M. Saif ISLAM, Philip J. KUEKES, Nobuhiko KOBAYASHI
  • Patent number: 8270200
    Abstract: A nanoscale three-terminal switching device has a bottom electrode, a top electrode, and a side electrode, each of which may be a nanowire. The top electrode extends at an angle with respect to the bottom electrode and has an end section going over and overlapping the bottom electrode. An active region is disposed between the top electrode and bottom electrode and contains a switching material. The side electrode is disposed opposite from the top electrode and in electrical contact with the active region. A self-aligned fabrication process may be used to automatically align the formation of the top and side electrodes with respect to the bottom electrode.
    Type: Grant
    Filed: July 30, 2009
    Date of Patent: September 18, 2012
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Wei Wu, Qiangfei Xia, Philip J. Kuekes, R. Stanley Williams
  • Patent number: 8258801
    Abstract: In one embodiment of the present invention, a microscale or sub-microscale signal line, interconnected with one set of parallel nanowires of a nanowire crossbar, serves as a multiplexer. The multiplexer is used to detect the conductivity state of a nanowire junction within the nanowire crossbar. In one method embodiment of the present invention, a first signal is output to the two nanowires interconnected by the nanowire junction, while a second signal is output to the remaining nanowires of the nanowire crossbar. Then, the second signal is output to the two nanowires interconnected by the nanowire junction, while the first signal is output to the remaining nanowires of the nanowire crossbar. The resulting signal detected on the multiplexer is reflective of the conductivity state of the nanowire junction.
    Type: Grant
    Filed: March 5, 2009
    Date of Patent: September 4, 2012
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventor: Philip J. Kuekes
  • Patent number: 8212621
    Abstract: A frequency source and a method of frequency generation employ a memristive negative differential resistance (M-NDR) voltage controlled oscillator (VCO). The frequency source includes a first M-NDR VCO of a plurality of memristive VCOs to provide a first signal having a first signal frequency. The frequency source further includes a second M-NDR VCO of the plurality to provide a second signal having a second signal frequency. The first and second M-NDR VCOs are interconnected with the plurality of memristive VCOs. The first and second M-NDR VCOs have independent programmable states and are connected to a common output of the frequency source. The method includes providing an M-NDR VCOs, where each M-NDR VCO includes an M-NDR device connected in parallel with a capacitance, and applying a bias voltage to activate a selected M-NDR VCO of the plurality to produce a frequency output.
    Type: Grant
    Filed: October 29, 2010
    Date of Patent: July 3, 2012
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: John Paul Strachan, Philip J Kuekes, Matthew D. Pickett
  • Patent number: 8212235
    Abstract: Nanowire-based opto-electronic devices including nanowire lasers, photodetectors and semiconductor optical amplifiers are disclosed. The devices include nanowires grown from single crystal and/or non-single surfaces. The semiconductor optical amplifiers include nanowire arrays that act as ballast lasers to amplify a signal carried by a signal waveguide. Embodiments of the nanowire lasers and photodetectors include horizontal and vertical nanowires that can provide different polarizations.
    Type: Grant
    Filed: April 25, 2007
    Date of Patent: July 3, 2012
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Shih-Yuan Wang, M. Saif Islam, Philip J. Kuekes, Nobuhiko Kobayashi
  • Patent number: 8214786
    Abstract: Embodiments of the present invention include dense, but accessible and well-interconnected component arrangements within multi-component systems, such as high-end multi-processor computer systems, and methods for constructing such arrangements. In a described embodiment, integrated-circuit-containing processing components, referred to as a “flat components,” are arranged into local blocks of intercommunicating flat components. The local flat-component blocks are arranged into interconnected, primitive multi-local-block repeating units, and the primitive local-block repeating units are layered together in a three-dimensional, regularly repeating structure that can be assembled to approximately fill any specified three-dimensional volume. The arrangement provides for relatively short, direct pathways from the surface of the specified volume to any particular local block and flat component within the three-dimensional arrangement.
    Type: Grant
    Filed: September 8, 2004
    Date of Patent: July 3, 2012
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Philip J. Kuekes, R. Stanley Williams, Raymond G. Beausoleil, Jr.
  • Patent number: 8188897
    Abstract: An analog to digital converter includes a dielectric substrate, an analog input wire, and digital output wires, with a metal insulator extending over the digital output wires. The analog input wire can be in proximity to the dielectric substrate and can generate heat when an electric current flows through the analog input wire. The digital output wires can also be in proximity to the dielectric substrate. The metal insulator can have a phase transition temperature above which the metal insulator is electrically conductive to short circuit at least one of the digital output wires in contact with a metal insulator portion above the phase transition temperature. The digital output wires can be arranged at predetermined distances from the analog input wire such that output wires have varying short circuit thresholds.
    Type: Grant
    Filed: October 29, 2010
    Date of Patent: May 29, 2012
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: John Paul Strachan, Philip J. Kuekes
  • Publication number: 20120112167
    Abstract: One example of the present invention is a nanoscale electronic device comprising a first conductive electrode, a second conductive electrode, and an anisotropic dielectric material layered between the first and second electrodes having a permittivity in a direction approximately that of the shortest distance between the first and second electrodes less than the permittivity in other directions within the anisotropic dielectric material. Additional examples of the present invention include integrated circuits that contain multiple nanoscale electronic devices that each includes an anisotropic dielectric material layered between first and second electrodes having a permittivity in a direction approximately that of the shortest distance between the first and second electrodes less than the permittivity in other directions within the anisotropic dielectric material.
    Type: Application
    Filed: November 9, 2010
    Publication date: May 10, 2012
    Inventors: Gilberto Medairos Ribeiro, Philip J. Kuekes, Alexandre M. Bratkovski, Janice H. Nickel
  • Publication number: 20120105159
    Abstract: A frequency source and a method of frequency generation employ a memristive negative differential resistance (M-NDR) voltage controlled oscillator (VCO). The frequency source includes a first M-NDR VCO of a plurality of memristive VCOs to provide a first signal having a first signal frequency. The frequency source further includes a second M-NDR VCO of the plurality to provide a second signal having a second signal frequency. The first and second M-NDR VCOs are interconnected with the plurality of memristive VCOs. The first and second M-NDR VCOs have independent programmable states and are connected to a common output of the frequency source. The method includes providing an M-NDR VCOs, where each M-NDR VCO includes an M-NDR device connected in parallel with a capacitance, and applying a bias voltage to activate a selected M-NDR VCO of the plurality to produce a frequency output.
    Type: Application
    Filed: October 29, 2010
    Publication date: May 3, 2012
    Inventors: John Paul Strachan, Philip J. Kuekes, Matthew D. Pickett
  • Publication number: 20120105263
    Abstract: An analog to digital converter includes a dielectric substrate, an analog input wire, and digital output wires, with a metal insulator extending over the digital output wires. The analog input wire can be in proximity to the dielectric substrate and can generate heat when an electric current flows through the analog input wire. The digital output wires can also be in proximity to the dielectric substrate. The metal insulator can have a phase transition temperature above which the metal insulator is electrically conductive to short circuit at least one of the digital output wires in contact with a metal insulator portion above the phase transition temperature. The digital output wires can be arranged at predetermined distances from the analog input wire such that output wires have varying short circuit thresholds.
    Type: Application
    Filed: October 29, 2010
    Publication date: May 3, 2012
    Inventors: John Paul Strachan, Philip J. Kuekes
  • Publication number: 20120105143
    Abstract: A programmable analog filter includes a crossbar array with a number of junction elements and a filter circuit being implemented within the crossbar array. At least a portion of the junction elements form reprogrammable components within the filter circuit. A method for using a programmable analog filter is also provided.
    Type: Application
    Filed: October 27, 2010
    Publication date: May 3, 2012
    Inventors: John Paul Strachan, Philip J. Kuekes, Gilberto Medeiros Ribeiro
  • Patent number: 8149485
    Abstract: Dynamically reconfigurable holograms with electronically erasable programmable intermediate layers are disclosed. An example apparatus includes first nanowires, each of the first nanowires having protuberances along a length thereof. The example apparatus also includes second nanowires arranged approximately perpendicular to the first nanowires, the protuberances of the first nanowires being approximately parallel to corresponding ones of the second nanowires. In addition, a layer is disposed between the first and second nanowires. The layer is to control refractive indices at nanowire intersections at intersecting ones of the first and second nanowires.
    Type: Grant
    Filed: December 29, 2008
    Date of Patent: April 3, 2012
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Jingjing Li, Philip J. Kuekes, Shih-Yuan Wang
  • Patent number: 8121807
    Abstract: Embodiments of the present invention are directed to cost-effective defect amelioration in manufactured electronic devices that include nanoscale components. Certain embodiments of the present invention are directed to amelioration of defects in electronic devices that contain nanoscale demultiplexers. In certain embodiments of the present invention, the nanoscale-demultiplexer-containing devices include reconfigurable encoders. In one embodiment of the present invention, the table of codes within a reconfigurable encoder is permuted, and a device is configured in accordance with the permuted codes, in order to produce a permuted table of codes that, when input to an appropriately configured nanoscale demultiplexer, produces correct outputs despite defects in the nanoscale demultiplexer.
    Type: Grant
    Filed: October 15, 2008
    Date of Patent: February 21, 2012
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Joseph Warren Robinett, Philip J. Kuekes, R. Stanley Williams
  • Publication number: 20120036919
    Abstract: A nanowire sensor includes a first electrode, a second electrode, and a sensing element connecting the first electrode and the second electrode. The sensing element includes at least one nanowire connecting the first electrode and the second electrode and an electrically conductive film covering the at least one nanowire and extending between and contacting the first electrode and the second electrode, wherein conductance of the electrically conductive film is configured to change in the presence of at least one species to enable detection of the at least one species.
    Type: Application
    Filed: April 15, 2009
    Publication date: February 16, 2012
    Inventors: Theodore I. Kamins, Philip J. Kuekes
  • Patent number: 8112700
    Abstract: One embodiment of the present invention provides a demultiplexer implemented as a nanowire crossbar or a hybrid nanowire/microscale-signal-line crossbar with resistor-like nanowire junctions. The demultiplexer of one embodiment provides demultiplexing of signals input on k microscale address lines to 2k or fewer nanowires, employing supplemental, internal address lines to map 2k nanowire addresses to a larger, internal, n-bit address space, where n>k. A second demultiplexer embodiment of the present invention provides demultiplexing of signals input on n microscale address lines to 2k nanowires, with n>k, using 2k, well-distributed, n-bit external addresses to access the 2k nanowires.
    Type: Grant
    Filed: January 23, 2008
    Date of Patent: February 7, 2012
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Philip J. Kuekes, J. Warren Robinett, Gadiel Seroussl, R. Stanley Williams
  • Publication number: 20120025343
    Abstract: A thermoelectric device having a variable cross-section connecting structure includes a first electrode, a second electrode, and a connecting structure connecting the first electrode and the second electrode. The connecting structure has a first section and a second section. The width of the second section is greater than the width of the first section, and the width of the first section is less than a width that is approximately equivalent to a phonon mean free path through the first section.
    Type: Application
    Filed: April 15, 2009
    Publication date: February 2, 2012
    Inventors: Philip J. Kuekes, Alexandre M. Bratkovski, Hans S. Cho, Nathaniel J. Quitoriano, Theodore I. Kamins, R. Stanley Williams
  • Publication number: 20120001653
    Abstract: One embodiment of the present invention is directed to hybrid-nanoscale/microscale device comprising a microscale layer that includes microscale and/or submicroscale circuit components and that provides an array of microscale or submicroscale pins across an interface surface; and at least two nanoscale-layer sub-layers within a nanoscale layer that interfaces to the microscale layer, each nanoscale-layer sub-layer containing regularly spaced, parallel nanowires, each nanowire of the at least two nanoscale-layer sub-layers in electrical contact with at most one pin provided by the microscale layer, the parallel nanowires of successive nanoscale-layer sub-layers having different directions, with the nanowires of successive nanoscale-layer sub-layers intersecting to form programmable crosspoints.
    Type: Application
    Filed: April 30, 2009
    Publication date: January 5, 2012
    Inventors: Dmitri Borisovich Strukov, Philip J. Kuekes
  • Patent number: 8086706
    Abstract: The invention is a system and method for reconfigurable computers. The invention involves a plurality of reconfigurable component clusters (RCCs), each of which can change their respective configuration upon receiving a configuration command. The invention uses a reconfiguration network for distributing the configuration command to the RCCs, wherein the reconfiguration network comprises a plurality of cells, wherein each RCC is connected to a cell.
    Type: Grant
    Filed: March 22, 2011
    Date of Patent: December 27, 2011
    Assignee: Samsung Electronics Co., Ltd.
    Inventors: Michael S. Schlansker, Boon Seong Ang, Philip J. Kuekes
  • Publication number: 20110273755
    Abstract: Various embodiments of the present invention relate to systems that can be used as holograms and can be electronically controlled and dynamically reconfigured to generate three-dimensional motion picture images. In one embodiment, a dynamically reconfigurable hologram (1200) comprises a phase-control layer (1202) including a two-dimensional array of phase-modulation pixels (1212). The hologram also comprises an intensity-control layer (1204) including a two-dimensional array of intensity-control pixels (1214). One or more three-dimensional motion pictures can be produced by electronically addressing the individual phase-modulation pixels and intensity-control pixels in order to phase and control the intensity of light emanating from pixels of the hologram.
    Type: Application
    Filed: December 29, 2008
    Publication date: November 10, 2011
    Inventors: Shih-Yuan Wang, Alexandre M. Bratkovski, R. Stanley Williams, Jingjing Li, Wei Wu, Philip J. Kuekes
  • Publication number: 20110266510
    Abstract: Various embodiments of the present invention are direct to nanoscale, reconfigurable memristor devices. In one aspect, a memristor device (500,600) comprises an active region (508,610) sandwiched between a first electrode (301) and a second electrode (302).
    Type: Application
    Filed: January 26, 2009
    Publication date: November 3, 2011
    Inventors: Nathaniel J. Quitoriano, Philip J. Kuekes, Jianhua Yang