Patents by Inventor David Vernooy

David Vernooy 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: 11551796
    Abstract: Systems and methods for management of a distributed ledger including prescription information are disclosed. An example apparatus includes a processor and a logical data structure to configure a device according to an electronic prescription defining an action for a patient, the electronic prescription organized as record(s) in a distributed ledger and processible by the device to apply the action to the patient. The electronic prescription is to cause the device to at least: configure the device to apply the action to the patient; validate the action for the patient using the distributed ledger; and propagate a record of the action to the distributed ledger.
    Type: Grant
    Filed: June 28, 2019
    Date of Patent: January 10, 2023
    Assignee: General Electric Company
    Inventors: Christopher Puleo, Benjamin Beckmann, Victor Abate, John Freer, David Vernooy, Jeffrey Ashe
  • Publication number: 20200411151
    Abstract: Systems and methods for management of a distributed ledger including prescription information are disclosed. An example apparatus includes a processor and a logical data structure to configure a device according to an electronic prescription defining an action for a patient, the electronic prescription organized as record(s) in a distributed ledger and processible by the device to apply the action to the patient. The electronic prescription is to cause the device to at least: configure the device to apply the action to the patient; validate the action for the patient using the distributed ledger; and propagate a record of the action to the distributed ledger.
    Type: Application
    Filed: June 28, 2019
    Publication date: December 31, 2020
    Inventors: Christopher Puleo, Benjamin Beckmann, Victor Abate, John Freer, David Vernooy, Jeffrey Ashe
  • Publication number: 20080031572
    Abstract: An optical apparatus is made by mounting segments of a GRIN optical medium on a substrate in at least one groove thereon. The GRIN segments are longitudinally spaced apart from one another on the substrate, and are arranged so that a free-space optical beam received through the distal end face of the first GRIN segment is transmitted through the proximal end face of the first GRIN segment, propagates to the proximal end face of the second GRIN segment, is received through the proximal end face of the second GRIN segment, and is transmitted as a free-space optical beam through the distal end face of the second GRIN segment.
    Type: Application
    Filed: May 27, 2007
    Publication date: February 7, 2008
    Applicant: XPONENT PHOTONICS INC
    Inventors: Henry Blauvelt, David Vernooy, Joel Paslaski
  • Publication number: 20070242917
    Abstract: An optical apparatus comprises: a semiconductor substrate; a semiconductor optical device integrally formed on the substrate and having a device end face; and a low-index planar optical waveguide integrally formed on the semiconductor substrate at the device end face. The waveguide is end-coupled at its proximal end to the optical device through the device end face and is arranged so as to comprise a waveguide mode converter. The waveguide is arranged at its distal end to transmit or receive an optical signal through its distal end to or from another low-index optical waveguide end-coupled with the integrally-formed waveguide and assembled with the integrally-formed waveguide, optical device, or substrate. The optical apparatus can further comprise a discrete low-index optical waveguide assembled with the integrally-formed waveguide, optical device, or substrate so as to be end-coupled with the integrally-formed waveguide at its distal end.
    Type: Application
    Filed: June 19, 2007
    Publication date: October 18, 2007
    Inventors: Henry Blauvelt, David Vernooy, Joel Paslaski, Charles Grosjean, Hao Lee, Franklin Monzon, Katrina Nguyen
  • Publication number: 20070237456
    Abstract: An optical apparatus comprises segments of a GRIN optical medium mounted on a substrate in at least one groove thereon. The GRIN segments are longitudinally spaced apart from one another on the substrate, and are arranged so that a free-space optical beam received through the distal end face of the first GRIN segment is transmitted through the proximal end face of the first GRIN segment, propagates to the proximal end face of the second GRIN segment, is received through the proximal end face of the second GRIN segment, and is transmitted as a free-space optical beam through the distal end face of the second GRIN segment. The GRIN segments can be derived from a single GRIN optical medium mounted on the substrate.
    Type: Application
    Filed: May 27, 2007
    Publication date: October 11, 2007
    Applicant: XPONENT PHOTONICS INC
    Inventors: Henry Blauvelt, David Vernooy, Joel Paslaski
  • Publication number: 20070237450
    Abstract: An optical component may comprise a horizontal member with two side walls and a substantially transparent end wall protruding from the horizontal member. The end wall, side walls and horizontal member may partially enclose an interior volume, and optical functionality is imparted in any suitable manner on at least a portion of the end wall. An optical assembly may comprise such an optical component mounted on a waveguide substrate along with a planar waveguide and a second waveguide, which are end-coupled by either reflection from the optical component end wall or transmission through the optical component end wall. An end portion of a planar waveguide may be received within the interior volume of the mounted component. Proper positioning of the optical component relative to the waveguides may be facilitated by alignment surfaces and/or alignment marks on the component and/or waveguide substrate.
    Type: Application
    Filed: November 28, 2006
    Publication date: October 11, 2007
    Applicant: XPONENT PHOTONICS INC
    Inventors: Henry Blauvelt, Joel Paslaski, David Vernooy
  • Publication number: 20070211989
    Abstract: Discrete first and second optical transmission subunits are formed each having a corresponding transmission optical waveguide with a corresponding optical junction region. The first transmission optical waveguide is a planar optical waveguide formed on a substrate. The first transmission optical waveguide or the second transmission optical waveguide is adapted for enabling substantially adiabatic transverse-transfer of optical power between the optical waveguides at the respective optical junction regions. The first and second optical transmission subunits are assembled together to form an optical apparatus.
    Type: Application
    Filed: December 29, 2006
    Publication date: September 13, 2007
    Inventors: Henry Blauvelt, Kerry Vahala, David Vernooy, Joel Paslaski
  • Publication number: 20070133934
    Abstract: A multiple-core planar optical waveguide comprises: a substantially planar waveguide substrate; a lower waveguide core; an upper waveguide core; lower cladding between the substrate and the lower waveguide core; middle cladding between the waveguide cores; and upper cladding above the upper waveguide core. Overlapping portions of the waveguide cores are positioned one above the other and substantially parallel. The lower, middle, and upper claddings have refractive indices less than refractive indices of the lower and upper waveguide cores. The widths of the waveguide cores are substantially larger their thicknesses along their overlapping portions. The overlapping portions of the waveguide cores jointly support a propagating optical mode.
    Type: Application
    Filed: February 22, 2007
    Publication date: June 14, 2007
    Applicant: XPONENT PHOTONICS INC
    Inventors: Henry Blauvelt, David Vernooy, Joel Paslaski
  • Publication number: 20070116419
    Abstract: A multiple-core optical waveguide comprises: a substrate; lower and upper waveguide core layers; a waveguide core between the upper and lower waveguide core layers; upper and lower cladding; and middle cladding between the upper and lower waveguide core layers substantially surrounding the waveguide core. Each of the lower, middle, and upper claddings has a refractive index less than refractive indices of the lower waveguide core layer, the upper waveguide core layer, and the waveguide core. Along at least a given portion of the optical waveguide, the upper and lower waveguide core layers extend bilaterally substantially beyond the lateral extent of a propagating optical mode supported by the optical waveguide, the lateral extent of the supported optical mode being determined at least in part by the width of the waveguide core along the given portion of the optical waveguide.
    Type: Application
    Filed: January 16, 2007
    Publication date: May 24, 2007
    Applicant: XPONENT PHOTONICS INC
    Inventors: Henry Blauvelt, David Vernooy
  • Publication number: 20070110369
    Abstract: An optical apparatus comprises an optical device fabricated on a substrate, an external-transfer optical waveguide fabricated on the substrate and/or on the optical device, and a transmission optical waveguide. The optical device and/or the external-transfer waveguide are adapted for and positioned for transfer of optical power therebetween (end-transfer or transverse-transfer). The external-transfer waveguide and/or the transmission waveguide are adapted for transverse-transfer of optical power therebetween (mode-interference-coupled or adiabatic). The transmission waveguide is initially provided as a component mechanically separate from the substrate, device, and external-transfer waveguide. Assembly of the transmission waveguide with the substrate, device, and/or external-transfer waveguide results in relative positioning of the external-transfer waveguide and the transmission waveguide for enabling transverse-transfer of optical power therebetween.
    Type: Application
    Filed: January 16, 2007
    Publication date: May 17, 2007
    Applicant: XPONENT PHOTONICS INC
    Inventors: Henry Blauvelt, Kerry Vahala, David Vernooy, Joel Paslaski
  • Publication number: 20070081781
    Abstract: A substantially flat upper cladding surface over a waveguide core facilitates transverse-coupling between assembled waveguides, and/or provides mechanical alignment and/or support. An embedding medium may be employed for securing optical assemblies and protecting optical surfaces thereof. Structural elements fabricated with a low-profile core may be employed for providing mechanical alignment and/or support, aiding in the encapsulation process, and so forth.
    Type: Application
    Filed: November 14, 2006
    Publication date: April 12, 2007
    Applicant: XPONENT PHOTONICS INC
    Inventors: Henry Blauvelt, David Vernooy, Joel Paslaski, Guido Hunziker
  • Publication number: 20060251849
    Abstract: An optical apparatus comprises: a substrate; an optical device, an optical waveguide, or an optical element on the first substrate surface; a reflection-suppressing layer on a second substrate surface opposite the first substrate surface; and an absorbing layer on the reflection-suppressing layer, so that over at least a portion of the second substrate surface the reflection-suppressing layer is between the second substrate surface and the absorbing layer. The absorbing layer absorbs light over at least a portion of an operative wavelength range of the optical apparatus, while the reflection-suppressing layer suppresses reflection from the second substrate surface of light over at least a portion of the operative wavelength range of the optical apparatus to a reflectivity value below that of the second substrate surface with only the absorbing layer present.
    Type: Application
    Filed: May 5, 2006
    Publication date: November 9, 2006
    Inventors: Henry Blauvelt, David Vernooy
  • Publication number: 20060182402
    Abstract: A multiple-core optical waveguide comprises: a substrate; lower and upper waveguide core layers; a waveguide core between the upper and lower waveguide core layers; upper and lower cladding; and middle cladding between the upper and lower waveguide core layers substantially surrounding the waveguide core. Each of the lower, middle, and upper claddings has a refractive index less than refractive indices of the lower waveguide core layer, the upper waveguide core layer, and the waveguide core. Along at least a given portion of the optical waveguide, the upper and lower waveguide core layers extend bilaterally substantially beyond the lateral extent of a propagating optical mode supported by the optical waveguide, the lateral extent of the supported optical mode being determined at least in part by the width of the waveguide core along the given portion of the optical waveguide.
    Type: Application
    Filed: February 15, 2005
    Publication date: August 17, 2006
    Inventors: Henry Blauvelt, David Vernooy
  • Publication number: 20060165373
    Abstract: An optical component may comprise a horizontal member with two side walls and a substantially transparent end wall protruding from the horizontal member. The end wall, side walls and horizontal member may partially enclose an interior volume, and optical functionality is imparted in any suitable manner on at least a portion of the end wall. An optical assembly may comprise such an optical component mounted on a waveguide substrate along with a planar waveguide and a second waveguide, which are end-coupled by either reflection from the optical component end wall or transmission through the optical component end wall. An end portion of a planar waveguide may be received within the interior volume of the mounted component. Proper positioning of the optical component relative to the waveguides may be facilitated by alignment surfaces and/or alignment marks on the component and/or waveguide substrate.
    Type: Application
    Filed: April 11, 2006
    Publication date: July 27, 2006
    Applicant: Xponent Photonics Inc
    Inventors: Henry Blauvelt, Joel Paslaski, David Vernooy
  • Publication number: 20060131482
    Abstract: A photodetector comprises a semiconductor substrate with entrance and reflecting faces formed at the substrate upper surface. The reflecting face forms an acute angle with the substrate surface and is positioned so that an optical beam transmitted through the entrance face into the substrate is internally reflected from the reflecting face toward the substrate upper surface. A photodetector active region is formed on the substrate upper surface and is positioned so that the reflected optical beam impinges on the active region. The photodetector may be mounted on a second substrate for receiving an optical beam from a planar waveguide formed on the second substrate or an optical fiber mounted in a groove on the second substrate.
    Type: Application
    Filed: January 31, 2006
    Publication date: June 22, 2006
    Inventors: Henry Blauvelt, David Vernooy, Hao Lee
  • Publication number: 20060127011
    Abstract: An optical apparatus comprises an optical device fabricated on a substrate, an external-transfer optical waveguide fabricated on the substrate and/or on the optical device, and a transmission optical waveguide. The optical device and/or the external-transfer waveguide are adapted for and positioned for transfer of optical power therebetween (end-transfer or transverse-transfer). The external-transfer waveguide and/or the transmission waveguide are adapted for transverse-transfer of optical power therebetween (mode-interference-coupled or adiabatic). The transmission waveguide is initially provided as a component mechanically separate from the substrate, device, and external-transfer waveguide. Assembly of the transmission waveguide with the substrate, device, and/or external-transfer waveguide results in relative positioning of the external-transfer waveguide and the transmission waveguide for enabling transverse-transfer of optical power therebetween.
    Type: Application
    Filed: January 17, 2006
    Publication date: June 15, 2006
    Inventors: Henry Blauvelt, Kerry Vahala, David Vernooy, Joel Paslaski
  • Publication number: 20060120669
    Abstract: An optical apparatus comprises an optical device fabricated on a substrate, an external-transfer optical waveguide fabricated on the substrate and/or on the optical device, and a transmission optical waveguide. The optical device and/or the external-transfer waveguide are adapted for and positioned for transfer of optical power therebetween (end-transfer or transverse-transfer). The external-transfer waveguide and/or the transmission waveguide are adapted for transverse-transfer of optical power therebetween (mode-interference-coupled or adiabatic). The transmission waveguide is initially provided as a component mechanically separate from the substrate, device, and external-transfer waveguide. Assembly of the transmission waveguide with the substrate, device, and/or external-transfer waveguide results in relative positioning of the external-transfer waveguide and the transmission waveguide for enabling transverse-transfer of optical power therebetween.
    Type: Application
    Filed: January 9, 2006
    Publication date: June 8, 2006
    Inventors: Henry Blauvelt, Kerry Vahala, David Vernooy, Joel Paslaski
  • Publication number: 20060110100
    Abstract: An optical apparatus comprises a semiconductor optical device waveguide formed on a semiconductor substrate, and an integrated end-coupled waveguide formed on the semiconductor substrate. The integrated waveguide may comprise materials differing from those of the device waveguide and the substrate. Spatially selective material processing may be employed for first forming the optical device waveguide on the substrate, and for subsequently depositing and forming the integrated end-coupled waveguide on the substrate. Spatially selective material processing enables accurate spatial mode matching and transverse alignment of the waveguides, and multiple device waveguides and corresponding integrated end-coupled waveguides may be fabricated concurrently on a common substrate on a wafer scale.
    Type: Application
    Filed: January 9, 2006
    Publication date: May 25, 2006
    Inventors: Henry Blauvelt, David Vernooy, Joel Paslaski, Charles Grosjean, Hao Lee, Franklin Monzon, Katrina Nguyen
  • Publication number: 20060088266
    Abstract: Formation of a substantially flat upper cladding surface over a waveguide core facilitates transverse-coupling between assembled waveguides, and/or provides mechanical alignment and/or support. An embedding medium may be employed for securing optical assemblies and protecting optical surfaces thereof. Structural elements fabricated with a low-profile core may be employed for providing mechanical alignment and/or support, aiding in the encapsulation process, and so forth.
    Type: Application
    Filed: December 9, 2005
    Publication date: April 27, 2006
    Inventors: Henry Blauvelt, David Vernooy, Joel Paslaski, Guido Hunziker
  • Publication number: 20060039653
    Abstract: A multi-layer laterally-confined dispersion-engineered optical waveguide may include one multi-layer reflector stack for guiding an optical mode along a surface thereof, or may include two multi-layer reflector stacks with a core therebetween for guiding an optical mode along the core. Dispersive properties of such multi-layer waveguides enable modal-index-matching between low-index optical fibers and/or waveguides and high-index integrated optical components and efficient transfer of optical signal power therebetween. Integrated optical devices incorporating such multi-layer waveguides may therefore exhibit low (<3 dB) insertion losses. Incorporation of an active layer (electro-optic, electro-absorptive, non-linear-optical) into such waveguides enables active control of optical loss and/or modal index with relatively low-voltage/low-intensity control signals. Integrated optical devices incorporating such waveguides may therefore exhibit relatively low drive signal requirements.
    Type: Application
    Filed: November 16, 2004
    Publication date: February 23, 2006
    Inventors: Oskar Painter, David Vernooy, Kerry Vahala