Patents by Inventor Steven R. J. Brueck

Steven R. J. Brueck 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).

  • Patent number: 12287571
    Abstract: In accordance with some aspects of the present disclosure, a maskless interferometric lithography system for fabricating a three-dimensional (3D) photonic crystal using a multiple two-beam-exposures is disclosed. The system can comprise an illumination system comprising an optical arrangement operable to receive radiation from a radiation source and provide three or more tilted two-beam interference pattern exposures to be combined into a three-dimensional pattern; and a substrate operable to be supported by a substrate table, wherein the substrate comprises a photoresist formed on a top surface of the substrate and operable to receive the three-dimensional pattern and wherein means are provided to adjust the position of the substrate in all six mechanical degrees of freedom.
    Type: Grant
    Filed: August 3, 2021
    Date of Patent: April 29, 2025
    Inventors: Steven R. J. Brueck, Alexander K. Raub
  • Patent number: 12204249
    Abstract: A system for oblique incidence nanopatterning a sample using a grating beam-splitter is disclosed. The system also includes a grating beam-splitter on a tip-tilt adjustable mount. The system also includes a photoresist coated sample mounted on a tip-tilt-z adjustable mount. The system also includes an alignment system to allow adjustment of the tip-tilt adjustable mounts so that a surface of the grating beam-splitter and a surface of the photoresist coated sample are substantially parallel. The system also includes a laser operating at a wavelength suitable for exposure of the photoresist. The system also includes an optical system to deliver a laser beam at oblique incidence to the grating beam-splitter to expose the photoresist coated sample. The system also includes means to control an exposure dose of the laser beam. A system using two grating beam-splitters to provide increased alignment tolerance is also disclosed.
    Type: Grant
    Filed: June 29, 2022
    Date of Patent: January 21, 2025
    Inventors: Steven R. J. Brueck, Alexander Neumann, Vineeth Sasidharan
  • Patent number: 12203921
    Abstract: Methods and apparatus for long read, label-free, optical nanopore long chain molecule sequencing. In general, the present disclosure describes a novel sequencing technology based on the integration of nanochannels to deliver single long-chain molecules with widely spaced (>wavelength), ˜1-nm aperture “tortuous” nanopores that slow translocation sufficiently to provide massively parallel, single base resolution using optical techniques. A novel, directed self-assembly nanofabrication scheme using simple colloidal nanoparticles is used to form the nanopore arrays atop nanochannels that unfold the long chain molecules. At the surface of the nanoparticle array, strongly localized electromagnetic fields in engineered plasmonic/polaritonic structures allow for single base resolution using optical techniques.
    Type: Grant
    Filed: December 5, 2023
    Date of Patent: January 21, 2025
    Inventors: Steven R. J. Brueck, Jeremy Scott Edwards, Alexander Neumann, Yuliya Kuznetsova, Edgar A. Mendoza
  • Patent number: 12183852
    Abstract: A method of forming a semiconductor structure includes providing a substrate comprising a first material portion and a single crystal silicon layer on the first material portion. The substrate further comprises a major front surface, a major backside surface opposing the major front surface, and a plurality of grooves positioned in the major front surface. A buffer layer is deposited in one or more of the plurality of grooves. A semiconductor material is epitaxially grown over the buffer layer and in the one or more plurality of grooves, the epitaxially grown semiconductor material comprising a hexagonal crystalline phase layer and a cubic crystalline phase structure disposed over the hexagonal crystalline phase.
    Type: Grant
    Filed: March 22, 2021
    Date of Patent: December 31, 2024
    Inventors: Steven R. J. Brueck, Seung-Chang Lee, Christian Wetzel, Mark Durniak
  • Publication number: 20240402216
    Abstract: Provided is a composite metal-wide-bandgap semiconductor tip for scanning tunneling microscopy and/or scanning tunneling lithography, a method of forming, and a method for using the composite metal-wide-bandgap semiconductor tip.
    Type: Application
    Filed: August 15, 2024
    Publication date: December 5, 2024
    Inventors: Steven R.J. BRUECK, Daniel FEEZELL, John RANDALL, Tito BUSANI, Joshua B. BALLARD, Mahmoud BEHZADIRAD, Ashwin Krishnan RISHINARAMANGALAM
  • Publication number: 20240377246
    Abstract: An occupancy sensor covering a wide field in an integrated chip is disclosed. The occupancy sensor includes an array of grating coupled waveguide sensors wherein continuous wave (cw) signals monitor an ambient light field for dynamic changes on times scales of seconds, and high frequency signals map in three-dimensions of the space using time-of-flight (TOF) measurements, pixel level electronics that perform signal processing; array level electronics that perform additional signal processing; and communications and site level electronics that interface with actuators to respond to occupancy sensing.
    Type: Application
    Filed: January 26, 2022
    Publication date: November 14, 2024
    Applicant: UNM RAINFOREST INNOVATIONS
    Inventors: Steven R. J. BRUECK, Alexander NEUMANN, Payman ZARKESH-HA
  • Patent number: 12092959
    Abstract: According to examples of the present disclosure, a method for large-area, full-wafer nanopatterning is disclosed. The method includes providing a laser light source; providing beam conditioning and translation optics to expand the beam to illuminate a full wafer area; providing a grating beam-splitter; providing recombination optics to direct at least two beams from the grating beam splitter to a full wafer photoresist-coated target; and exposing the full wafer photoresist-coated target.
    Type: Grant
    Filed: February 4, 2022
    Date of Patent: September 17, 2024
    Assignee: UNM RAINFOREST INNOVATIONS
    Inventors: Steven R. J. Brueck, Alexander Neumann, Vineeth Sasidharan
  • Patent number: 12078654
    Abstract: Provided is a composite metal-wide-bandgap semiconductor tip for scanning tunneling microscopy and/or scanning tunneling lithography, a method of forming, and a method for using the composite metal-wide-bandgap semiconductor tip.
    Type: Grant
    Filed: April 22, 2021
    Date of Patent: September 3, 2024
    Inventors: Steven R. J. Brueck, Daniel Feezell, John Randall, Tito Busani, Joshua B. Ballard, Mahmoud Behzadirad, Ashwin Krishnan Rishinaramangalam
  • Publication number: 20240159669
    Abstract: A method and system for high-speed 2? multi-point scatterometry is disclosed. The method includes directing a laser beam from a laser light source to a collimation optical system that collimates the laser beam to a collimated laser beam; adjusting a polarization of the collimated laser beam using a polarization control optics; directing the collimated laser beam that is polarized by a first optical system to illuminate a focal area on a sample surface; receiving reflected light from the focus of the laser light source at the sample surface by a second optical system; detecting the reflected light by a detector system to produce detection signals; and processing the detection signals to measure parameters of the sample surface.
    Type: Application
    Filed: October 30, 2020
    Publication date: May 16, 2024
    Inventors: Steven R.J. BRUECK, Alexander NEUMANN, Juan Jose FARIA BRICENO
  • Publication number: 20240118260
    Abstract: Methods and apparatus for long read, label-free, optical nanopore long chain molecule sequencing. In general, the present disclosure describes a novel sequencing technology based on the integration of nanochannels to deliver single long-chain molecules with widely spaced (>wavelength), ˜1-nm aperture “tortuous” nanopores that slow translocation sufficiently to provide massively parallel, single base resolution using optical techniques. A novel, directed self-assembly nanofabrication scheme using simple colloidal nanoparticles is used to form the nanopore arrays atop nanochannels that unfold the long chain molecules. At the surface of the nanoparticle array, strongly localized electromagnetic fields in engineered plasmonic/polaritonic structures allow for single base resolution using optical techniques.
    Type: Application
    Filed: December 5, 2023
    Publication date: April 11, 2024
    Applicant: UNM RAINFOREST INNOVATIONS
    Inventors: Steven R.J. BRUECK, Jeremy Scott EDWARDS, Alexander NEUMANN, Yuliya KUZNETSOVA, Edgar A. MENDOZA
  • Publication number: 20230003711
    Abstract: Methods and apparatus for long read, label-free, optical nanopore long chain molecule sequencing. In general, the present disclosure describes a novel sequencing technology based on the integration of nanochannels to deliver single long-chain molecules with widely spaced (>wavelength), ˜1-nm aperture “tortuous” nanopores that slow translocation sufficiently to provide massively parallel, single base resolution using optical techniques. A novel, directed self-assembly nanofabrication scheme using simple colloidal nanoparticles is used to form the nanopore arrays atop nanochannels that unfold the long chain molecules. At the surface of the nanoparticle array, strongly localized electromagnetic fields in engineered plasmonic/polaritonic structures allow for single base resolution using optical techniques.
    Type: Application
    Filed: September 9, 2022
    Publication date: January 5, 2023
    Applicant: UNM RAINFOREST INNOVATIONS
    Inventors: Steven R.J. BRUECK, Jeremy Scott EDWARDS, Alexander NEUMANN, Yuliya KUZNETSOVA, Edgar A. MENDOZA
  • Publication number: 20220412800
    Abstract: A spectral sensor and a method for forming the spectral sensor is disclosed. The spectral sensor includes a planar waveguide on a substrate; a restriction mechanism that restricts a range of angles of incidence of light impinging onto the chirped input coupling grating; the chirped input grating formed to couple incident light into the planar waveguide, wherein the chirped input coupling grating comprises a first transverse chirp to provide a spectrally selective coupling of incident light Into the planar waveguide; a propagation region to filter out light that is not coupled into the planar waveguide; a detector array arranged on the opposite side of the propagation region from the chirped input coupling S grating to receive light coupled out of the planar waveguide and produce output signals representative of the light; and an electrical circuit to readout output signals from the detector array.
    Type: Application
    Filed: November 19, 2020
    Publication date: December 29, 2022
    Inventors: Steven R.J. BRUECK, Payman ZARKESH-HA, Alexander NEUMANN
  • Patent number: 11480463
    Abstract: An occupancy sensor covering a wide field in an integrated chip is disclosed. The occupancy sensor includes an array of grating coupled waveguide sensors wherein continuous wave (cw) signals monitor an ambient light field for dynamic changes on times scales of seconds, and high frequency signals map in three-dimensions of the space using time-of-flight (TOF) measurements, pixel level electronics that perform signal processing; array level electronics that perform additional signal processing; and communications and site level electronics that interface with actuators to respond to occupancy sensing.
    Type: Grant
    Filed: April 23, 2021
    Date of Patent: October 25, 2022
    Inventors: Steven R. J. Brueck, Alexander Neumann, Payman Zarkesh-Ha
  • Patent number: 11474094
    Abstract: Methods and apparatus for long read, label-free, optical nanopore long chain molecule sequencing. In general, the present disclosure describes a novel sequencing technology based on the integration of nanochannels to deliver single long-chain molecules with widely spaced (>wavelength), ˜1-nm aperture “tortuous” nanopores that slow translocation sufficiently to provide massively parallel, single base resolution using optical techniques. A novel, directed self-assembly nanofabrication scheme using simple colloidal nanoparticles is used to form the nanopore arrays atop nanochannels that unfold the long chain molecules. At the surface of the nanoparticle array, strongly localized electromagnetic fields in engineered plasmonic/polaritonic structures allow for single base resolution using optical techniques.
    Type: Grant
    Filed: December 10, 2018
    Date of Patent: October 18, 2022
    Inventors: Steven R. J. Brueck, Jeremy Scott Edwards, Alexander Neumann, Yuliya Kuznetsova, Edgar A. Mendoza
  • Patent number: 11469104
    Abstract: Provided is a method for growing a nanowire, including: providing a substrate with a base portion having a first surface and at least one support structure extending above or below the first surface; forming a dielectric coating on the at least one support structure; forming a photoresist coating over the substrate; forming a metal coating over at least a portion of the dielectric coating; removing a portion of the dielectric coating to expose a surface of the at least one support structure; removing a portion of the at least one support structure to form a nanowire growth surface; growing at least one nanowire on the nanowire growth surface of a corresponding one of the at least one support structure, wherein the nanowire comprises a root end attached to the growth surface and an opposing, free end extending from the root end; and elastically bending the at least one nanowire.
    Type: Grant
    Filed: October 24, 2019
    Date of Patent: October 11, 2022
    Inventors: Seung-Chang Lee, Steven R. J. Brueck
  • Publication number: 20220317057
    Abstract: A system for measuring a periodic array of structures on a sample is provided. The system includes an optical source configured to produce an optical beam; an optical system configured to control the polarization of the optical beam and to focus the optical beam with a first NA1 on a sample surface and to sweep the angle of incidence across a range of angles with an approximately fixed focal position on a sample surface with a second NA2 wherein NA2>NA1; additional optical components configured to receive the optical beam reflected from the sample surface and to focus the reflected beam onto a detector; and a recording system to record the reflectivity of the sample surface as a function of the angle of incidence. In an embodiment, the optical system provides a spot on the sample such that both the angle of incidence and the position on the sample are varied during a sweep.
    Type: Application
    Filed: April 21, 2022
    Publication date: October 6, 2022
    Inventors: Juan Jose FARIA BRICENO, Steven R.J. BRUECK
  • Patent number: 11456370
    Abstract: A method for making a heteroepitaxial layer. The method comprises providing a semiconductor substrate. A seed area delineated with a selective growth mask is formed on the semiconductor substrate. The seed area comprises a first material and has a linear surface dimension of less than 100 nm. A heteroepitaxial layer is grown on the seed area, the heteroepitaxial layer comprising a second material that is different from the first material. Devices made by the method are also disclosed.
    Type: Grant
    Filed: January 21, 2020
    Date of Patent: September 27, 2022
    Assignee: UNM RAINFOREST INNOVATIONS
    Inventors: Steven R. J. Brueck, Stephen D. Hersee, Seung-Chang Lee, Daniel Feezell
  • Publication number: 20220293768
    Abstract: A method for making a heteroepitaxial layer. The method comprises providing a semiconductor substrate. A seed area delineated with a selective growth mask is formed on the semiconductor substrate. The seed area comprises a first material and has a linear surface dimension of less than 100 nm. A heteroepitaxial layer is grown on the seed area, the heteroepitaxial layer comprising a second material that is different from the first material. Devices made by the method are also disclosed.
    Type: Application
    Filed: May 31, 2022
    Publication date: September 15, 2022
    Inventors: Steven R.J. Brueck, Stephen D. Hersee, Seung-Chang Lee, Daniel Feezell
  • Publication number: 20220285526
    Abstract: A method for making a heteroepitaxial layer. The method comprises providing a semiconductor substrate. A seed area delineated with a selective growth mask is formed on the semiconductor substrate. The seed area comprises a first material and has a linear surface dimension of less than 100 nm. A heteroepitaxial layer is grown on the seed area, the heteroepitaxial layer comprising a second material that is different from the first material. Devices made by the method are also disclosed.
    Type: Application
    Filed: May 24, 2022
    Publication date: September 8, 2022
    Inventors: Steven R.J. Brueck, Stephen D. Hersee, Seung-Chang Lee, Daniel Feezell
  • Patent number: 11374106
    Abstract: A method for making a heteroepitaxial layer. The method comprises providing a semiconductor substrate. A seed area delineated with a selective growth mask is formed on the semiconductor substrate. The seed area comprises a first material and has a linear surface dimension of less than 100 nm. A heteroepitaxial layer is grown on the seed area, the heteroepitaxial layer comprising a second material that is different from the first material. Devices made by the method are also disclosed.
    Type: Grant
    Filed: January 21, 2020
    Date of Patent: June 28, 2022
    Inventors: Steven R. J. Brueck, Stephen D. Hersee, Seung-Chang Lee, Daniel Feezell