Patents by Inventor Theodore I. Kamins

Theodore I. Kamins 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: 20090028487
    Abstract: A micro-ring configured to selectively detect or modulate optical energy includes at least one annular optical cavity; at least two electrodes disposed about the optical cavity configured to generate an electrical field in the at least one optical cavity; and an optically active layer optically coupled to the at least one optical cavity. A method of manipulating optical energy within a waveguide includes optically coupling at least one annular optical cavity with the waveguide; and selectively controlling an electrical field in the at least one annular optical cavity to modulate optical energy from the waveguide.
    Type: Application
    Filed: July 27, 2007
    Publication date: January 29, 2009
    Applicant: Hewlett-Packard Development
    Inventors: David A. Fattal, Charles M. Santori, Raymond G. Beausoleil, Marco Fiorentino, Theodore I. Kamins
  • Publication number: 20090027778
    Abstract: A deformable optical element includes an elastically deformable lens. Electrical contacts are directly attached to the elastically deformable lens and configured to receive an applied voltage. The electrical contacts have opposing surfaces configured to develop electrostatic forces in response to the applied voltage. The electrostatic forces deform the elastically deformable lens to create a predetermined optical effect.
    Type: Application
    Filed: July 25, 2007
    Publication date: January 29, 2009
    Inventors: Wei Wu, Shih-Yuan Wang, Alexandre M. Bratkovski, Theodore I. Kamins
  • Publication number: 20090028493
    Abstract: Various embodiments of the present invention are directed to surface-plasmon-enhanced electromagnetic-radiation-emitting devices and to methods of fabricating these devices. In one embodiment of the present invention, an electromagnetic-radiation-emitting device comprises a multilayer core, a metallic device layer, and a substrate. The multilayer core has an inner layer and an outer layer, wherein the outer layer is configured to surround at least a portion of the inner layer. The metallic device layer is configured to surround at least a portion of the outer layer. The substrate has a bottom conducting layer in electrical communication with the inner layer and a top conducting layer in electrical communication with the metallic device layer such that the exposed portion emits surface-plasmon-enhanced electromagnetic radiation when an appropriate voltage is applied between the bottom conducting layer and the top conducting layer.
    Type: Application
    Filed: July 26, 2007
    Publication date: January 29, 2009
    Inventors: David A. Fattal, Nathaniel J. Quitoriano, Hans S. Cho, Marco Fiorentino, Theodore I. Kamins
  • Patent number: 7474811
    Abstract: A photonic apparatus and system employ a plurality of nanowires distributed in a low-index optical waveguide. The plurality of nanowires collectively one or more of produces, enhances, modulates and detects an optical field. The low-index optical waveguide confines the optical field in a vicinity of the plurality of nanowires. The photonic system includes a circuit to one or more of electrically bias the plurality of nanowires and collect electrons produced in the plurality of nanowires.
    Type: Grant
    Filed: September 14, 2007
    Date of Patent: January 6, 2009
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Nathaniel J. Quitoriano, Marco Fiorentino, Theodore I. Kamins, David A. Fattal, Hans S. Cho
  • Publication number: 20090000539
    Abstract: An apparatus for growing a nanowire includes a crystalline surface, and a feature formed on at least a portion of the crystalline surface. The feature has a region with high surface curvature. A catalyst material is established on the region.
    Type: Application
    Filed: June 29, 2007
    Publication date: January 1, 2009
    Inventor: Theodore I. Kamins
  • Patent number: 7465954
    Abstract: A radiation-emitting device includes a nanowire that is structurally and electrically coupled to a first electrode and a second electrode. The nanowire includes a double-heterostructure semiconductor device configured to emit electromagnetic radiation when a voltage is applied between the electrodes. A device includes a nanowire having an active longitudinal segment selectively disposed at a predetermined location within a resonant cavity that is configured to resonate at least one wavelength of electromagnetic radiation emitted by the segment within a range extending from about 300 nanometers to about 2,000 nanometers. Active nanoparticles are precisely positioned in resonant cavities by growing segments of nanowires at known growth rates for selected amounts of time.
    Type: Grant
    Filed: April 28, 2006
    Date of Patent: December 16, 2008
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Theodore I Kamins, Philip J Kuekes, Stanley Williams
  • Publication number: 20080303049
    Abstract: Various embodiments of the present invention are directed to methods for coupling semiconductor-based photonic devices to diamond. In one embodiment of the present invention, a photonic device is optically coupled with a diamond structure. The photonic device comprises a semiconductor material and is optically coupled with the diamond structure with an adhesive substance that adheres the photonic device to the diamond structure. A method for coupling the photonic device with the diamond structure is also provided. The method comprises: depositing a semiconductor material on the diamond structure; forming the photonic device in the semiconductor material so that the photonic device couples with the diamond structure; and adhering the photonic device to the diamond structure.
    Type: Application
    Filed: August 8, 2008
    Publication date: December 11, 2008
    Inventors: Charles Santori, Sean Spillane, Marco Fiorentino, David Fattal, Raymond G. Beausoleil, Wei Wu, Theodore I. Kamins
  • Publication number: 20080296785
    Abstract: Methods for forming a predetermined pattern of catalytic regions having nanoscale dimensions are provided for use in the growth of nanowires. The methods include one or more nanoimprinting steps to produce arrays of catalytic nanoislands or nanoscale regions of catalytic material circumscribed by noncatalytic material.
    Type: Application
    Filed: April 23, 2008
    Publication date: December 4, 2008
    Inventors: Theodore I. Kamins, Philip J. Kuekes, Yong Chen
  • Patent number: 7446024
    Abstract: The growth of nanowires with a narrow diameter distribution is provided. The growth comprises: providing a substrate; providing a plurality of nanoparticles having a distribution of particle sizes on the substrate; initiating growth of nanowires by a vapor-liquid-solid technique; and terminating growth of the nanowires.
    Type: Grant
    Filed: June 21, 2005
    Date of Patent: November 4, 2008
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventor: Theodore I Kamins
  • Publication number: 20080266572
    Abstract: An optical device includes a primary nanowire having a predetermined characteristic that affects an optical property of the primary nanowire. At least one secondary nanowire abuts the primary nanowire at a non-zero angle. The secondary nanowire(s) have another predetermined characteristic that affects an optical property of the secondary nanowire(s). A junction is formed between the primary and secondary nanowires. The device is configured to cause a portion of a light beam of a predetermined wavelength or range of wavelengths traveling through one of the primary nanowire or the secondary nanowire(s) to enter another of the secondary nanowire(s) or the primary nanowire.
    Type: Application
    Filed: April 24, 2007
    Publication date: October 30, 2008
    Inventor: Theodore I. Kamins
  • Publication number: 20080266556
    Abstract: Various aspects of the present invention are directed to a nanowire configured to couple electromagnetic radiation to a selected guided wave and devices incorporating such nanowires. In one aspect of the present invention, a nanowire structure includes a substrate and at least one nanowire attached to the substrate. A diameter, composition, or both may vary generally periodically along a length of the at least one nanowire. A coating may cover at least part of a circumferential surface of the at least one nanowire. The nanowire structure may be incorporated in a device including at least one optical-to-electrical converter operable to convert a guided wave propagating along the length of the at least one nanowire, at least in part responsive to irradiation, to an electrical signal. Other aspects of the present invention are directed to methods of fabricating nanowires structured to support guided waves.
    Type: Application
    Filed: April 25, 2007
    Publication date: October 30, 2008
    Inventors: Theodore I. Kamins, Alexandre M. Bratkovski
  • Publication number: 20080246123
    Abstract: A method for controlling catalyst nanoparticle positioning includes establishing a mask layer on a post such that a portion of a vertical surface of the post remains exposed. The method further includes establishing a catalyst nanoparticle material on the mask layer and directly adjacent at least a portion of the exposed portion of the vertical surface.
    Type: Application
    Filed: April 9, 2007
    Publication date: October 9, 2008
    Inventor: Theodore I. Kamins
  • Patent number: 7427525
    Abstract: Various embodiments of the present invention are directed to methods for coupling semiconductor-based photonic devices to diamond. In one embodiment of the present invention, a method for coupling a photonic device with a diamond structure comprises embedding the diamond structure in a first substrate, where the first substrate comprises a first transparent material. The photonic device is formed in a semiconductor material, which is supported by a second substrate. An intermediate structure is formed by depositing a second transparent material over the photonic device. The second transparent material may have substantially the same refractive index as the first transparent material. The intermediate structure is then separated from the second substrate, and the intermediated structure is adhered to the first substrate so that the photonic device optically couples with the diamond structure.
    Type: Grant
    Filed: October 13, 2006
    Date of Patent: September 23, 2008
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Charles Santori, Sean Spillane, Marco Fiorentino, David Fattal, Raymond G. Beausoleil, Wei Wu, Theodore I. Kamins
  • Publication number: 20080219311
    Abstract: Various aspects of the present invention are directed to optical structures including selectively positioned color centers, methods of fabricating such optical structures, and photonic chips that utilize such optical structures. In one aspect of the present invention, an optical structure includes an optical medium having a number of strain-localization regions. A number of color centers are distributed within the optical medium in a generally selected pattern, with at least a portion of the strain-localization regions including one or more of the color centers. In another aspect of the present invention, a method of positioning color centers in an optical medium is disclosed. In the method, a number of strain-localization regions are generated in the optical medium. The optical medium is annealed to promote diffusion of at least a portion of the color centers to the strain-localization regions.
    Type: Application
    Filed: March 8, 2007
    Publication date: September 11, 2008
    Inventors: Alexandre M. Bratkovski, Theodore I. Kamins
  • Publication number: 20080218740
    Abstract: Embodiments of the present invention are related to nanowire-based devices that can be configured and operated as modulators, chemical sensors, and light-detection devices. In one aspect, a nanowire-based device includes a reflective member, a resonant cavity surrounded by at least a portion of the reflective member, and at least one nanowire disposed within the resonant cavity. The nanowire includes at least one active segment selectively disposed along the length of the nanowire to substantially coincide with at least one antinode of light resonating within the cavity. The active segment can be configured to interact with the light resonating within the cavity.
    Type: Application
    Filed: February 29, 2008
    Publication date: September 11, 2008
    Inventors: R. Stanley Williams, Shih-Yuan Wang, Philip J. Kuekes, Theodore I. Kamins, Duncan Stewart, Alexandre M. Bratkovski, Jason Blackstock, Zhiyong Li
  • Publication number: 20080211520
    Abstract: Nanowire fluid sensors are provided. The fluid sensors comprise a first electrode, a second electrode, and at least one nanowire between the first electrode and the second electrode. Each nanowire is connected at a first end to the first electrode and at a second end to the second electrode. Methods of fabricating and operating the fluid sensor are also provided.
    Type: Application
    Filed: May 18, 2007
    Publication date: September 4, 2008
    Inventor: Theodore I. Kamins
  • Publication number: 20080203055
    Abstract: A technique is provided for forming a molecule or an array of molecules having a defined orientation relative to the substrate or for forming a mold for deposition of a material therein. The array of molecules is formed by dispersing them in an array of small, aligned holes (nanopores), or mold, in a substrate. Typically, the material in which the nanopores are formed is insulating. The underlying substrate may be either conducting or insulating. For electronic device applications, the substrate is, in general, electrically conducting and may be exposed at the bottom of the pores so that one end of the molecule in the nanopore makes electrical contact to the substrate. A substrate such as a single-crystal silicon wafer is especially convenient because many of the process steps to form the molecular array can use techniques well developed for semiconductor device and integrated-circuit fabrication.
    Type: Application
    Filed: October 3, 2007
    Publication date: August 28, 2008
    Inventors: Theodore I. Kamins, Yong Chen, Patricia A. Beck
  • Publication number: 20080182424
    Abstract: A method for selectively controlling lengths of nanowires in a substantially non-uniform array of nanowires includes establishing at least two different catalyzing nanoparticles on a substrate. A nanowire from each of the at least two different catalyzing nanoparticles is substantially simultaneously grown. At least one of the nanowires has a length different from that of at least another of the nanowires.
    Type: Application
    Filed: December 9, 2005
    Publication date: July 31, 2008
    Inventors: Philip J. Kuekes, Theodore I. Kamins
  • Publication number: 20080179756
    Abstract: Semiconductor structures are disclosed including a substrate comprising a semiconductor material and having opposed first and second surfaces, and at least one conductive via extending from the first surface to the second surface. The conductive vias can extend at angles relative to the first surface, such as acute angles or 90°. The conductive vias can include segments that extend at different angles. Methods of forming conductive vias in semiconductor structures are provided. In the methods, a thermal gradient is applied in combination with an electric field to form conductive vias.
    Type: Application
    Filed: January 31, 2007
    Publication date: July 31, 2008
    Inventors: Theodore I. Kamins, Philip J. Kuekes
  • Publication number: 20080179586
    Abstract: An electronic device includes a primary nanowire of a first conductivity type, and a secondary nanowire of a second conductivity type extending outwardly from the primary nanowire. A doped region of the second conductivity type extends from the secondary nanowire into at least a portion of the primary nanowire.
    Type: Application
    Filed: January 29, 2007
    Publication date: July 31, 2008
    Inventor: Theodore I. Kamins