Patents by Inventor Alexandra Boltasseva

Alexandra Boltasseva 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: 20160334758
    Abstract: A device for producing a subwavelength hologram. The device comprises a metasurface layer attached to a substrate. The metasurface layer includes an array of plasmonic antennas that simultaneously encode both wavelength and phase information of light directed through the array to produce a hologram. The wavelength is determined by the size of the antennas, and the phase is determined by the orientation of the antennas.
    Type: Application
    Filed: May 11, 2016
    Publication date: November 17, 2016
    Inventors: Amr Shaltout, Sajid Choudhury, Alexander V. Kildishev, Alexandra Boltasseva, Vladimir M. Shalaev
  • Patent number: 9443632
    Abstract: The present disclosure relates generally to plasmonic substrates and specifically to high-throughput trapping of particles on a plasmonic substrate.
    Type: Grant
    Filed: June 6, 2015
    Date of Patent: September 13, 2016
    Assignee: PURDUE RESEARCH FOUNDATION
    Inventors: Steven Wereley, Agbai A Nnanna, Alexandra Boltasseva, Justus C Ndukaife, Avanish Mishra
  • Patent number: 9343088
    Abstract: An apparatus and method for heat-assisted magnetic recording (HAMR) employing a near-field transducer (NFT) made of plasmonic ceramic materials or intermetallics are disclosed. The NFT is made of a plasmonic material as well as a protective outer layer, which provides for longer usefulness and improved performance of the NFT and recording device. The plasmonic materials used include but are not limited to TiNx, ZrNx, HfNx, TaNx, VNx, TiSi2?x, TiAlxNy, TiZrxNy, ZnO, SnO2, In2O3, RuO2, Lu2O3, WO2, and MgB2. Such materials, in combination with a protective layer, provide higher resistances and greater performance at temperatures required for HAMR, ranging from 300 up to 500 degrees Celsius.
    Type: Grant
    Filed: May 19, 2014
    Date of Patent: May 17, 2016
    Assignee: PURDUE RESEARCH FOUNDATION
    Inventors: Urcan Guler, Alexander Kildishev, Vladimir M. Shalaev, Alexandra Boltasseva, Donald Stocks, Gururaj Naik
  • Publication number: 20160120978
    Abstract: Disclosed herein are nanoparticle-based plasmonic solutions to therapeutic applications employing titanium nitride (TiN) and other non-stoichiometric compounds as the plasmonic material. Current solutions are suboptimal because they require complex shapes, large particle sizes, and a narrow range of sizes, in order to achieve plasmonic resonances in the biological window. The nanoparticles discloses herein provide plasmonic resonances occurring in the biological window even with small sizes, simple shapes, and better size dispersion restrictions. Local heating efficiencies of such nanoparticles outperform currently used Au and transition metal nanoparticles. The use of smaller particles with simpler shapes and better heating efficiencies allows better diffusion properties into tumor regions, larger penetration depth of light into the biological tissue, and the ability to use excitation light of less power.
    Type: Application
    Filed: May 23, 2014
    Publication date: May 5, 2016
    Inventors: Urcan GULER, Alexander KILDISHEV, Gururaj NAIK, Alexandra BOLTASSEVA, Vladimir M. SHALAEV
  • Publication number: 20150380120
    Abstract: The present disclosure relates generally to plasmonic substrates and specifically to high-throughput trapping of particles on a plasmonic substrate.
    Type: Application
    Filed: June 6, 2015
    Publication date: December 31, 2015
    Inventors: Steven Wereley, Agbai A. Nnanna, Alexandra Boltasseva, Justus C. Ndukaife
  • Publication number: 20150288318
    Abstract: The present invention provides a new system and new devices comprising highly efficient metamaterial-based absorbers and emitters which may be employed in various energy harvesting applications Compelling conditions such as high temperatures. The employment of ceramic materials in such applications enables devices with longer lifetimes and improved performance. Specific geometric and structural designs, e.g., by arrangement of plasmonic and dielectric structures, of the metamaterials provide for efficient absorption of light within a broad spectral range and emission of that energy in a particular range via selective emitters which may, in turn, be coupled to other devices.
    Type: Application
    Filed: June 6, 2014
    Publication date: October 8, 2015
    Inventors: Urcan Guler, Alexander Kildishev, Vladimir M. Shalaev, Alexandra Boltasseva, Gururaj Naik
  • Publication number: 20150287425
    Abstract: An apparatus and method for heat-assisted magnetic recording (HAMR) employing a near-field transducer (NFT) made of plasmonic ceramic materials or intermetallics are disclosed. The NFT is made of a piasmonic material as well as a protective outer layer, which provides for longer usefulness and improved performance of the NFT and recording device. The plasmonic materials used include but are not limited to TiNx, ZrNx, HfNx, TaNx, VNx, TiSi2?x, TiAlxNy, TiZrxNy, ZnO, SnO2, In2O3, RuO2, Lu2O3, WO2, and MgB2. Such materials, in combination with a protective layer, provide higher resistances and greater performance at temperatures required for HAMR, ranging from 300 up to 500 degrees Celsius.
    Type: Application
    Filed: May 19, 2014
    Publication date: October 8, 2015
    Inventors: Urcan Guler, Alexander Kildishev, Vladimir M. Shalaev, Alexandra Boltasseva, Donald Stocks, Gururaj Naik
  • Publication number: 20150285953
    Abstract: A titanium nitride-based metamaterial, and method for producing the same, is disclosed, consisting of ultrathin, smooth, and alternating layers of a plasmonic titanium nitride (TiN) material and a dielectric material, grown on a substrate to form a superlattice. The dielectric material is made of A1-xScxN, where ‘x’ ranges in value from 0.2 to 0.4. The layers of alternating material have sharp interfaces, and each layer can range from 1-20 nanometers in thickness. Metamaterials based on titanium TiN, a novel plasmonic building block, have many applications including, but not ‘limited to emission enhancers, computer security, etc. The use of nitrogen vacancy centers in diamond, and light emitting diode (LED) efficiency enhancement is of particular interest.
    Type: Application
    Filed: October 9, 2013
    Publication date: October 8, 2015
    Applicant: Purdue Research Foundation
    Inventors: Gururaj Viveka Naik, Bivas Saha, Timothy D. Sands, Vladimir Shalaev, Alexandra Boltasseva
  • Publication number: 20150040978
    Abstract: A solar-energy module is disclosed. The module includes a first electrode configured to receive incident visible light with a different refractive index than the medium through which light travels prior to becoming incident on the first electrode, the first electrode having a first metasurface arrangement formed through the first electrode, and configured to selectively i) match the optical impedances of the first electrode and the medium, and ii) cause light to be refracted substantially away from normal refraction angle, a photon-absorbing material coupled to the first electrode on a first surface of the photon-absorbing material and configured to receive refracted light through the first electrode and adapted to produce an electrical current in response to the refracted light, length of the photon absorbing material substantially larger than thickness of the photon-absorbing material, and a second electrode coupled to the photon-absorbing material on a second surface of the photon-absorbing material.
    Type: Application
    Filed: August 7, 2014
    Publication date: February 12, 2015
    Applicant: Purdue Research Foundation
    Inventors: Vladimir M. Shalaev, Alexandra Boltasseva, Mark Brongersma, Alexander V. Kildishev, Nathaniel Kinsey