Patents by Inventor Leonard GERARD

Leonard GERARD 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: 11827558
    Abstract: According to one embodiment, a method for producing a coated glass article may include applying an anti-reflective coating onto a glass substrate. The glass substrate may include a first major surface, and a second major surface opposite the first major surface. The anti-reflective coating may be applied to the first major surface of the glass substrate. A substrate thickness may be measured between the first major surface and the second major surface. The glass substrate may have an aspect ratio of at least about 100:1. The coated glass article may have a reflectance of less than 2% for all wavelengths from 450 nanometers to 700 nanometers. The anti-reflective coating may include one or more layers. The cumulative layer stress of the anti-reflective coating may have an absolute value less than or equal to about 167,000 MPa nm.
    Type: Grant
    Filed: September 29, 2021
    Date of Patent: November 28, 2023
    Assignee: CORNING INCORPORATED
    Inventors: John Tyler Keech, Jean-Francois Oudard, Robert Sabia, Leena Kumari Sahoo, Leonard Gerard Wamboldt
  • Publication number: 20220412799
    Abstract: An optical element includes an optical block constructed of a first material having a % transmission of at least 50% throughout a spectral range of 300 nm to 2700 nm through at least a thickness of the optical block. The optical block comprises a surface. A grating layer constructed of a second material is disposed on the surface of the optical block, the grating layer comprising a first surface that is directly in contact with the surface of the optical block and a second surface comprising a plurality of diffraction features forming a diffraction grating.
    Type: Application
    Filed: June 16, 2022
    Publication date: December 29, 2022
    Inventors: Robert Gerald Benson, George Paul Lindberg, James Thomas McCann, Jeffry John Santman, Leonard Gerard Wamboldt, Joseph Francis Washer
  • Publication number: 20220324802
    Abstract: A method of purifying 5-methoxy-N,N-dimethyltryptamine (5-MeO-DMT) is provided which comprises dissolving crude 5-MeO-DMT in a solvent at a temperature above room temperature, cooling the obtained solution to a temperature below room temperature to precipitate solid 5-MeO-DMT, separating the solid 5-MeO-DMT from the remaining solution and removing solvent from the crystalline 5-MeO-DMT. In the method, the solvent comprises one or more ethers and less than 5 wt % anti-solvent.
    Type: Application
    Filed: June 19, 2020
    Publication date: October 13, 2022
    Applicant: GH RESEARCH IRELAND LIMITED
    Inventors: Leonard Gerard Francis PATRICK, Shaun Neil ROBINSON, Theis TERWEY
  • Publication number: 20220236455
    Abstract: An optical element can include a substrate comprising a Group VIA or fluoride-based non-oxide material and an adhesion layer disposed directly on the substrate. An anti-reflective coating stack is disposed directly on the adhesion layer. Methods for forming an optical element are also provided. The density and stress of the adhesion layer and layers of the anti-reflective coating stack are controlled to provide corrosion-resistant coatings on Group VIA or fluoride-based non-oxide substrates. Preferred substrate materials are materials that exhibit high transparency in the infrared.
    Type: Application
    Filed: January 21, 2022
    Publication date: July 28, 2022
    Inventors: Leonard Gerard Wamboldt, Yongli Xu
  • Publication number: 20220017408
    Abstract: According to one embodiment, a method for producing a coated glass article may include applying an anti-reflective coating onto a glass substrate. The glass substrate may include a first major surface, and a second major surface opposite the first major surface. The anti-reflective coating may be applied to the first major surface of the glass substrate. A substrate thickness may be measured between the first major surface and the second major surface. The glass substrate may have an aspect ratio of at least about 100:1. The coated glass article may have a reflectance of less than 2% for all wavelengths from 450 nanometers to 700 nanometers. The anti-reflective coating may include one or more layers. The cumulative layer stress of the anti-reflective coating may have an absolute value less than or equal to about 167,000 MPa nm.
    Type: Application
    Filed: September 29, 2021
    Publication date: January 20, 2022
    Inventors: John Tyler Keech, Jean-Francois Oudard, Robert Sabia, Leena Kumari Sahoo, Leonard Gerard Wamboldt
  • Patent number: 11226438
    Abstract: A support for optical elements is described. The support includes a base substrate with high specific stiffness and a finishing layer. The base substrate is a non-oxide ceramic material, preferably a carbide, such as boron carbide or silicon carbide. The finishing layer is preferably Ge or an alloy of Al and Si. The finishing layer is or is capable of being processed to provide a surface with low finish. Low finish is achieved by diamond turning or polishing the finishing material. The finishing layer has a coefficient of thermal expansion similar to the coefficient of thermal expansion of the base substrate. The optical element optionally includes a reflective stack on the finishing layer.
    Type: Grant
    Filed: September 20, 2019
    Date of Patent: January 18, 2022
    Assignee: Corning Incorporated
    Inventors: Bruce Hildreth Myrick, Leonard Gerard Wamboldt, Kenneth Smith Woodard
  • Patent number: 11161778
    Abstract: According to one embodiment, a method for producing a coated glass article may include applying an anti-reflective coating onto a glass substrate. The glass substrate may include a first major surface, and a second major surface opposite the first major surface. The anti-reflective coating may be applied to the first major surface of the glass substrate. A substrate thickness may be measured between the first major surface and the second major surface. The glass substrate may have an aspect ratio of at least about 100:1. The coated glass article may have a reflectance of less than 2% for all wavelengths from 450 nanometers to 700 nanometers. The anti-reflective coating may include one or more layers. The cumulative layer stress of the anti-reflective coating may have an absolute value less than or equal to about 167,000 MPa nm.
    Type: Grant
    Filed: November 9, 2017
    Date of Patent: November 2, 2021
    Assignee: Corning Incorporated
    Inventors: John Tyler Keech, Robert Sabia, Jean-Francois Oudard, Leena Kumari Sahoo, Leonard Gerard Wamboldt
  • Patent number: 11143800
    Abstract: A highly reflective mirror for use in the wavelength range of 0.300 ?m to 15 ?m includes a substrate, a first interface layer, a reflective layer, a second interface layer, a plurality of tuning layers including a combination of a low index material and a high index material wherein the high index material is HfO2, and a protective layer. The highly reflective mirror has a reflectivity of at least 90% over the wavelength range of 335 nm to 1000 nm at an angle of incidence (AOI) of 45°.
    Type: Grant
    Filed: June 6, 2018
    Date of Patent: October 12, 2021
    Assignee: Corning Incorporated
    Inventors: Jason Scott Ballou, Gary Allen Hart, Leonard Gerard Wamboldt
  • Patent number: 10955594
    Abstract: The disclosure is directed to a highly reflective multiband mirror that is reflective in the VIS-NIR-SWIR-MWIR-LWIR bands, the mirror being a complete thin film stack that consists of a plurality of layers on a selected substrate. In order from substrate to the final layer, the mirror consists of (a) substrate, (b) barrier layer, (c) first interface layer, (d) a reflective layer, (e) a second interface layer, (f) tuning layer(s) and (g) a protective layer. In some embodiments the tuning layer and the protective layer are combined into a single layer using a single coating material. The multiband mirror is more durable than existing mirrors on light weight metal substrates, for example 6061-Al, designed for similar applications. In each of the five layer types methods and materials are used to process each layer so as to achieve the desired layer characteristics, which aid to enhancing the durability performance of the stack.
    Type: Grant
    Filed: March 9, 2018
    Date of Patent: March 23, 2021
    Assignee: Corning Incorporated
    Inventors: Jason S Ballou, Frederick J Gagliardi, Gary Allen Hart, Timothy R Soucy, Robin Merchant Walton, Leonard Gerard Wamboldt, Jue Wang
  • Patent number: 10899016
    Abstract: An example system includes a vehicle, a robot, and a controller. The vehicle may include an accelerator operator and a steering operator. The robot may include as accelerator actuator configured to operate the accelerator operator, and a steering actuator configured to operate-the steering operator. The controller is configured to: in response to an accelerator command, send a first signal to the accelerator actuator to operate the accelerator operator of the vehicle, and in response to a steering command, send a second, signal to the steering actuator to steer the vehicle.
    Type: Grant
    Filed: October 21, 2016
    Date of Patent: January 26, 2021
    Assignees: SRI INTERNATIONAL, YAMAHA HATSUDOKI KABUSHIKI KAISHA
    Inventors: Thomas Low, Thomas De Candia, Seungkook Yun, Thomas Egan, Bryan Chavez, Alexander Kernbaum, Riley Shear, Leonard Gerard, Stephen Morfey, Richard Mahoney, Regis Vincent, Paul Birkmeyer, Hiroyuki Morita, Hirokatsu Muramatsu, Keiji Nishimura, Hiroshi Saijou, Akira Satou, Toshifumi Uchiyama, Hitoshi Watanabe, Shirou Watanabe
  • Patent number: 10816702
    Abstract: A high stiffness substrate for optical elements is described. The substrate includes a graphite finishing layer and a non-oxide ceramic base substrate. The non-oxide ceramic base substrate is preferably a carbide, such as boron carbide or silicon carbide. The graphite finishing layer may include a surface with low finish. Low finish may be achieved by diamond turning the graphite surface. The graphite finishing layer may be joined to the non-oxide base ceramic with a solder. A supplemental finishing layer may be formed on the graphite finishing layer. A reflective stack may be formed on the graphite or supplemental finishing layer. Methods for making the substrate are also described.
    Type: Grant
    Filed: March 10, 2017
    Date of Patent: October 27, 2020
    Assignee: Corning Incorporated
    Inventors: James Scott Sutherland, Leonard Gerard Wamboldt, Kenneth Smith Woodard
  • Patent number: 10761247
    Abstract: The disclosure is directed to a highly reflective multiband mirror that is reflective in the VIS-NIR-SWIR-MWIR-LWIR bands, the mirror being a complete thin film stack that consists of a plurality of layers on a selected substrate. In order from substrate to the final layer, the mirror consists of (a) substrate, (b) barrier layer, (c) first interface layer, (d) a reflective layer, (e) a second interface layer, (f) tuning layer(s) and (g) a protective layer. In some embodiments the tuning layer and the protective layer are combined into a single layer using a single coating material. The multiband mirror is more durable than existing mirrors on light weight metal substrates, for example 6061-Al, designed for similar applications. In each of the five layer types methods and materials are used to process each layer so as to achieve the desired layer characteristics, which aid to enhancing the durability performance of the stack.
    Type: Grant
    Filed: March 9, 2018
    Date of Patent: September 1, 2020
    Assignee: Corning Incorporated
    Inventors: Jason S Ballou, Frederick J Gagliardi, Gary Allen Hart, Timothy R Soucy, Robin Merchant Walton, Leonard Gerard Wamboldt, Jue Wang
  • Publication number: 20200132894
    Abstract: A support for optical elements is described. The support includes a base substrate with high specific stiffness and a finishing layer. The base substrate is Al, an alloy of Al, Mg, or an alloy of Mg. The finishing layer is preferably an alloy of Al and Si. The finishing layer is or is capable of being processed to provide a surface with low finish. Low finish is achieved by diamond turning or polishing the finishing material. The finishing layer has a coefficient of thermal expansion similar to the coefficient of thermal expansion of the base substrate. The optical element optionally includes a reflective stack on the finishing layer.
    Type: Application
    Filed: October 11, 2019
    Publication date: April 30, 2020
    Inventors: Shane Matthew Stephens, John Pung Tsan, Leonard Gerard Wamboldt, Kenneth Smith Woodard
  • Publication number: 20200110203
    Abstract: A support for optical elements is described. The support includes a base substrate with high specific stiffness and a finishing layer. The base substrate is a non-oxide ceramic material, preferably a carbide, such as boron carbide or silicon carbide. The finishing layer is preferably Ge or an alloy of Al and Si. The finishing layer is or is capable of being processed to provide a surface with low finish. Low finish is achieved by diamond turning or polishing the finishing material. The finishing layer has a coefficient of thermal expansion similar to the coefficient of thermal expansion of the base substrate. The optical element optionally includes a reflective stack on the finishing layer.
    Type: Application
    Filed: September 20, 2019
    Publication date: April 9, 2020
    Inventors: Bruce Hildreth Myrick, Leonard Gerard Wamboldt, Kenneth Smith Woodard
  • Patent number: 10605966
    Abstract: A method for coating substrates is provided. The method includes diamond turning a substrate to a surface roughness of between about 60 ? and about 100 ? RMS, wherein the substrate is one of a metal and a metal alloy. The method further includes polishing the diamond turned surface of the substrate to a surface roughness of between about 10 ? and about 25 ? to form a polished substrate, heating the polished substrate, and ion bombarding the substrate with an inert gas. The method includes depositing a coating including at least one metallic layer on the ion bombarded surface of the substrate using low pressure magnetron sputtering, and polishing the coating to form a finished surface having a surface roughness of less than about 25 ? RMS using a glycol based colloidal solution.
    Type: Grant
    Filed: February 22, 2018
    Date of Patent: March 31, 2020
    Assignee: Corning Incorporated
    Inventors: Joseph Charles Crifasi, Gary Allen Hart, Robin Merchant Walton, Leonard Gerard Wamboldt, Jue Wang
  • Publication number: 20190004217
    Abstract: Disclosed herein are lenses comprising a first surface, a second convex surface, and a central region disposed therebetween, wherein the central region comprises at least one negative axicon. Also disclosed herein are optical assemblies comprising at least one lens optically coupled to at least one light emitting device.
    Type: Application
    Filed: September 22, 2016
    Publication date: January 3, 2019
    Applicant: Corning Incorporated
    Inventors: James Gregory COUILLARD, David Francis DAWSON-ELI, Paul Francis MICHALOSKI, Leonard Gerard WAMBOLDT, William Allen WOOD
  • Publication number: 20180364402
    Abstract: A highly reflective mirror for use in the wavelength range of 0.300 ?m to 15 ?m includes a substrate, a first interface layer, a reflective layer, a second interface layer, a plurality of tuning layers including a combination of a low index material and a high index material wherein the high index material is HfO2, and a protective layer. The highly reflective mirror has a reflectivity of at least 90% over the wavelength range of 335 nm to 1000 nm at an angle of incidence (AOI) of 45°.
    Type: Application
    Filed: June 6, 2018
    Publication date: December 20, 2018
    Inventors: Jason Scott Ballou, Gary Allen Hart, Leonard Gerard Wamboldt
  • Publication number: 20180297209
    Abstract: An example system includes a vehicle, a robot, and a controller. The vehicle may include an accelerator operator and a steering operator. The robot may include as accelerator actuator configured to operate the accelerator operator, and a steering actuator configured to operate-the steering operator. The controller is configured to: in response to an accelerator command, send a first signal to the accelerator actuator to operate the accelerator operator of the vehicle, and in response to a steering command, send a second, signal to the steering actuator to steer the vehicle.
    Type: Application
    Filed: October 21, 2016
    Publication date: October 18, 2018
    Inventors: Thomas LOW, Thomas DE CANDIA, Seungkook YUN, Thomas EGAN, Bryan CHAVEZ, Alexander KERNBAUM, Riley SHEAR, Leonard GERARD, Stephen MORFEY, Richard MAHONEY, Regis VINCENT, Paul BIRKMEYER, Hiroyuki MORITA, Hirokatsu MURAMATSU, Keiji NISHIMURA, Hiroshi SAIJOU, Akira SATOU, Toshifumi UCHIYAMA, Hitoshi WATANABE, Shirou WATANABE
  • Publication number: 20180299587
    Abstract: An optical element that features high transmission and low reflectivity at infrared wavelengths is described. The optical element includes a substrate, an adhesion layer on the substrate, and an anti-reflection coating. Substrates include chalcogenide glasses, InAs, and GaAs. Adhesion layers include Se, ZnSe, Ga2Se3, Bi2Se3, In2Se3, ZnS, Ga2S3 and In2S3. Anti-reflection coatings include one or more layers of DLC (diamond-like carbon), ZnS, ZnSe, Ge, Si, HfO2, Bi2O3, GdF3, YbF3, In2Se3, and YF3. The optical elements show high durability and good adhesion when subjected to thermal shocks, temperature cycling, abrasion, and humidity.
    Type: Application
    Filed: March 28, 2018
    Publication date: October 18, 2018
    Inventors: Bruce Gardiner Aitken, Jason Scott Ballou, Steven George Benson, Leonard Gerard Wamboldt
  • Publication number: 20180259688
    Abstract: The disclosure is directed to a highly reflective multiband mirror that is reflective in the VIS-NIR-SWIR-MWIR-LWIR bands, the mirror being a complete thin film stack that consists of a plurality of layers on a selected substrate. In order from substrate to the final layer, the mirror consists of (a) substrate, (b) barrier layer, (c) first interface layer, (d) a reflective layer, (e) a second interface layer, (f) tuning layer(s) and (g) a protective layer. In some embodiments the tuning layer and the protective layer are combined into a single layer using a single coating material. The multiband mirror is more durable than existing mirrors on light weight metal substrates, for example 6061-Al, designed for similar applications. In each of the five layer types methods and materials are used to process each layer so as to achieve the desired layer characteristics, which aid to enhancing the durability performance of the stack.
    Type: Application
    Filed: March 9, 2018
    Publication date: September 13, 2018
    Inventors: Jason Scott Ballou, Frederick J. Gagliardi, Gary Allen Hart, Timothy R. Soucy, Robin Merchant Walton, Leonard Gerard Wamboldt, Jue Wang