Patents by Inventor Tiziana C. Bond

Tiziana C. Bond 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: 20150369744
    Abstract: A nanoscale structure fabricated on a planar end facet of an optic fiber is described, to enable detection of molecules by surface-enhanced Raman scattering. The nanoscale structure may comprise an array of nanopillars. The nanoscale structure may also comprise a non periodic, or random, surface-relief structure. The nanoscale structure may be coated in a metal, comprising, for example, silver, gold, aluminum, iridium, platinum, palladium, copper, or a combination of the same. The nanoscale structure may be fabricated on a planar end facet of an optical fiber by interference lithography.
    Type: Application
    Filed: May 23, 2013
    Publication date: December 24, 2015
    Inventors: Xuan YANG, Tiziana C. BOND, Jerald BRITTEN, Thomas C. CARLSON, Nazar ILERI, Cindy LARSON, Claire GU
  • Publication number: 20150316412
    Abstract: A method directs a gas of interest into a minicell and uses an emitting laser to produce laser emission light that is directed into the minicell and onto the gas of interest. The laser emission light is reflected within the cell to make multipasses through the gas of interest. After the multipasses through the gas of interest the laser light is analyzed to produces gas spectroscopy data. The minicell receives the gas of interest and a transmitting optic connected to the minicell that directs a beam into the minicell and onto the gas of interest. A receiving optic connected to the minicell receives the beam from the gas of interest and directs the beam to an analyzer that produces gas spectroscopy data.
    Type: Application
    Filed: June 23, 2014
    Publication date: November 5, 2015
    Inventors: Tiziana C. Bond, Mihail Bora, Michael A. Engel, James F. McCarrick, Bryan D. Moran
  • Patent number: 9176065
    Abstract: Methods for fabricating nanoscale array structures suitable for surface enhanced Raman scattering, structures thus obtained, and methods to characterize the nanoscale array structures suitable for surface enhanced Raman scattering. Nanoscale array structures may comprise nanotrees, nanorecesses and tapered nanopillars.
    Type: Grant
    Filed: June 26, 2014
    Date of Patent: November 3, 2015
    Assignees: Lawrence Livermore National Security, LLC, The Board of Trustees of the University of Illinois
    Inventors: Tiziana C. Bond, Robin Miles, James C. Davidson, Gang Logan Liu
  • Publication number: 20150253434
    Abstract: In one embodiment, a system includes a scintillator material; a detector coupled to the scintillator material; and an omnidirectional waveguide coupled to the scintillator material, the omnidirectional waveguide comprising: a plurality of first layers comprising one or more materials having a refractive index in a first range; and a plurality of second layers comprising one or more materials having a refractive index in a second range, the second range being lower than the first range, a plurality of interfaces being defined between alternating ones of the first and second layers. In another embodiment, a method includes depositing alternating layers of a material having a relatively high refractive index and a material having a relatively low refractive index on a substrate to form an omnidirectional waveguide; and coupling the omnidirectional waveguide to at least one surface of a scintillator material.
    Type: Application
    Filed: May 20, 2013
    Publication date: September 10, 2015
    Applicant: Lawrence Livermore National Security, LLC
    Inventors: Mihail Bora, Tiziana C. Bond
  • Patent number: 9080981
    Abstract: Methods for fabricating nanoscale array structures suitable for surface enhanced Raman scattering, structures thus obtained, and methods to characterize the nanoscale array structures suitable for surface enhanced Raman scattering. Nanoscale array structures may comprise nanotrees, nanorecesses and tapered nanopillars.
    Type: Grant
    Filed: June 11, 2014
    Date of Patent: July 14, 2015
    Assignees: Lawrence Livermore National Security, LLC, The Board of Trustees of the University of Illinois
    Inventors: Tiziana C. Bond, Robin Miles, James C. Davidson, Gang Logan Liu
  • Publication number: 20150036132
    Abstract: A sensor with a substrate includes nanowires extending vertically from the substrate, a hafnia coating on the nanowires that provides hafnia coated nanowires, and a noble metal coating on the hafnia coated nanowires. The top of the hafnia and noble metal coated nanowires bent onto one another to create a canopy forest structure. There are numerous randomly arranged holes that let through scattered light. The many points of contact, hot spots, amplify signals. The methods include the steps of providing a Raman spectroscopy substrate, introducing nano crystals to the Raman spectroscopy substrate, growing a forest of nanowires from the nano crystals on the Raman spectroscopy substrate, coating the nanowires with hafnia providing hafnia coated nanowires, and coating the hafnia coated nanowires with a noble metal or other metal.
    Type: Application
    Filed: August 4, 2014
    Publication date: February 5, 2015
    Inventors: Tiziana C. Bond, Ali Altun, Hyung Gyu Park
  • Publication number: 20140333926
    Abstract: Methods for fabricating nanoscale array structures suitable for surface enhanced Raman scattering, structures thus obtained, and methods to characterize the nanoscale array structures suitable for surface enhanced Raman scattering. Nanoscale array structures may comprise nanotrees, nanorecesses and tapered nanopillars.
    Type: Application
    Filed: June 26, 2014
    Publication date: November 13, 2014
    Inventors: Tiziana C. BOND, Robin MILES, James C. DAVIDSON, Gang Logan LIU
  • Publication number: 20140335269
    Abstract: Methods for fabricating nanoscale array structures suitable for surface enhanced Raman scattering, structures thus obtained, and methods to characterize the nanoscale array structures suitable for surface enhanced Raman scattering. Nanoscale array structures may comprise nanotrees, nanorecesses and tapered nanopillars.
    Type: Application
    Filed: June 11, 2014
    Publication date: November 13, 2014
    Inventors: Tiziana C. BOND, Robin MILES, James C. DAVIDSON, Gang Logan LIU
  • Publication number: 20140269806
    Abstract: A plasmonic laser device has resonant nanocavities filled with a gain medium containing an organic dye. The resonant plasmon frequencies of the nanocavities are tuned to align with both the absorption and emission spectra of the dye.
    Type: Application
    Filed: February 21, 2014
    Publication date: September 18, 2014
    Inventors: Mihail BORA, Tiziana C. BOND
  • Patent number: 8830450
    Abstract: Cross-interrogating photonic detection systems and methods are shown. A flow through photonic crystal membrane with a surface enhanced Raman scattering (SERS) substrate is provided with pores which are distributed along multiple regions. The pores of one region have walls to which a first type of target specific anchor can be attached, while pores of another region have walls to which a second type of target specific anchor can be attached. An optical arrangement out-of-plane to the SERS substrate is also provided for enhanced sensitivity and identification of target organisms.
    Type: Grant
    Filed: December 1, 2010
    Date of Patent: September 9, 2014
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Tiziana C. Bond, Sonia E. Letant
  • Patent number: 8786852
    Abstract: Methods for fabricating nanoscale array structures suitable for surface enhanced Raman scattering, structures thus obtained, and methods to characterize the nanoscale array structures suitable for surface enhanced Raman scattering. Nanoscale array structures may comprise nanotrees, nanorecesses and tapered nanopillars.
    Type: Grant
    Filed: December 1, 2010
    Date of Patent: July 22, 2014
    Assignees: Lawrence Livermore National Security, LLC, The Board of Trustees of the University of Illinois
    Inventors: Tiziana C. Bond, Robin Miles, James C. Davidson, Gang Logan Liu
  • Patent number: 8780439
    Abstract: Tunable plasmon resonant cavity arrays in paired parallel nanowire waveguides are presented. Resonances can be observed when the waveguide length is an odd multiple of quarter plasmon wavelengths, consistent with boundary conditions of node and antinode at the ends. Two nanowire waveguides can satisfy the dispersion relation of a planar metal-dielectric-metal waveguide of equivalent width equal to the square field average weighted gap. Confinement factors of over 103 are possible due to plasmon focusing in the inter-wire space.
    Type: Grant
    Filed: March 1, 2012
    Date of Patent: July 15, 2014
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Mihail Bora, Tiziana C. Bond, Benjamin J. Fasenfest, Elaine M. Behymer
  • Publication number: 20120224255
    Abstract: Tunable plasmon resonant cavity arrays in paired parallel nanowire waveguides are presented. Resonances can be observed when the waveguide length is an odd multiple of quarter plasmon wavelengths, consistent with boundary conditions of node and antinode at the ends. Two nanowire waveguides can satisfy the dispersion relation of a planar metal-dielectric-metal waveguide of equivalent width equal to the square field average weighted gap. Confinement factors of over 103 are possible due to plasmon focusing in the inter-wire space.
    Type: Application
    Filed: March 1, 2012
    Publication date: September 6, 2012
    Inventors: Mihail BORA, Tiziana C. BOND, Benjamin J. FASENFEST, Elaine M. BEHYMER
  • Patent number: 8059924
    Abstract: Photonic detection systems and methods are shown. A flow through photonic membrane is provided with pores which are distributed along multiple regions. The pores of one region have walls to which a first type of target specific anchor can be attached, while pores of another region have walls to which a second type of target specific anchor can be attached. An additional region of pores without anchors can be provided, so that optical detection occurs differentially. A stack of photonic membranes is also provided. The diameter of the pores of one photonic membrane is larger than the diameter of the pores of another photonic membrane, thus allowing also determination of the size of a target organism flown through the stack of membranes.
    Type: Grant
    Filed: September 8, 2008
    Date of Patent: November 15, 2011
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Sonia E. Letant, Tiziana C. Bond
  • Publication number: 20110128537
    Abstract: Cross-interrogating photonic detection systems and methods are shown. A flow through photonic crystal membrane with a surface enhanced Raman scattering (SERS) substrate is provided with pores which are distributed along multiple regions. The pores of one region have walls to which a first type of target specific anchor can be attached, while pores of another region have walls to which a second type of target specific anchor can be attached. An optical arrangement out-of-plane to the SERS substrate is also provided for enhanced sensitivity and identification of target organisms.
    Type: Application
    Filed: December 1, 2010
    Publication date: June 2, 2011
    Inventors: Tiziana C. BOND, Sonia E. Létant
  • Publication number: 20110128536
    Abstract: Methods for fabricating nanoscale array structures suitable for surface enhanced Raman scattering, structures thus obtained, and methods to characterize the nanoscale array structures suitable for surface enhanced Raman scattering. Nanoscale array structures may comprise nanotrees, nanorecesses and tapered nanopillars.
    Type: Application
    Filed: December 1, 2010
    Publication date: June 2, 2011
    Inventors: Tiziana C. BOND, Robin Miles, James C. Davidson, Gang Logan Liu
  • Patent number: 7791781
    Abstract: A new reconfigurable cascadable all-optical on-chip device is presented. The gate operates by combining the Vernier effect with a novel effect, the gain-index lever, to help shift the dominant lasing mode from a mode where the laser light is output at one facet to a mode where it is output at the other facet. Since the laser remains above threshold, the speed of the gate for logic operations as well as for reprogramming the function of the gate is primarily limited to the small signal optical modulation speed of the laser, which can be on the order of up to about tens of GHz. The gate can be rapidly and repeatedly reprogrammed to perform any of the basic digital logic operations by using an appropriate analog optical or electrical signal at the gate selection port. Other all-optical functionality includes wavelength conversion, signal duplication, threshold switching, analog to digital conversion, digital to analog conversion, signal routing, and environment sensing.
    Type: Grant
    Filed: May 21, 2007
    Date of Patent: September 7, 2010
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Lynford L. Goddard, Tiziana C. Bond, Jeffrey S. Kallman
  • Publication number: 20090244532
    Abstract: Photonic detection systems and methods are shown. A flow through photonic membrane is provided with pores which are distributed along multiple regions. The pores of one region have walls to which a first type of target specific anchor can be attached, while pores of another region have walls to which a second type of target specific anchor can be attached. An additional region of pores without anchors can be provided, so that optical detection occurs differentially. A stack of photonic membranes is also provided. The diameter of the pores of one photonic membrane is larger than the diameter of the pores of another photonic membrane, thus allowing also determination of the size of a target organism flown through the stack of membranes.
    Type: Application
    Filed: September 8, 2008
    Publication date: October 1, 2009
    Inventors: Sonia E. LETANT, Tiziana C. Bond
  • Publication number: 20080130084
    Abstract: A new reconfigurable cascadable all-optical on-chip device is presented. The gate operates by combining the Vernier effect with a novel effect, the gain-index lever, to help shift the dominant lasing mode from a mode where the laser light is output at one facet to a mode where it is output at the other facet. Since the laser remains above threshold, the speed of the gate for logic operations as well as for reprogramming the function of the gate is primarily limited to the small signal optical modulation speed of the laser, which can be on the order of up to about tens of GHz. The gate can be rapidly and repeatedly reprogrammed to perform any of the basic digital logic operations by using an appropriate analog optical or electrical signal at the gate selection port. Other all-optical functionality includes wavelength conversion, signal duplication, threshold switching, analog to digital conversion, digital to analog conversion, signal routing, and environment sensing.
    Type: Application
    Filed: May 21, 2007
    Publication date: June 5, 2008
    Inventors: Lynford L. Goddard, Tiziana C. Bond, Jeffrey S. Kallman
  • Patent number: 6925216
    Abstract: An optical waveguide structure is formed by embedding a core material within a medium of lower refractive index, i.e. the cladding. The optical index of refraction of amorphous silicon (a-Si) and polycrystalline silicon (p-Si), in the wavelength range between about 1.2 and about 1.6 micrometers, differ by up to about 20%, with the amorphous phase having the larger index. Spatially selective laser crystallization of amorphous silicon provides a mechanism for controlling the spatial variation of the refractive index and for surrounding the amorphous regions with crystalline material. In cases where an amorphous silicon film is interposed between layers of low refractive index, for example, a structure comprised of a SiO2 substrate, a Si film and an SiO2 film, the formation of guided wave structures is particularly simple.
    Type: Grant
    Filed: September 30, 2003
    Date of Patent: August 2, 2005
    Assignee: The Regents of the University of California
    Inventors: Steve Vernon, Tiziana C. Bond, Steven W. Bond, Michael D. Pocha, Stefan Hau-Riege