Patents by Inventor Shawn C. Dodds

Shawn C. Dodds 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: 20180160548
    Abstract: A composite article includes a conductive layer on at least a portion of a flexible substrate, wherein the conductive layer has a conductive surface. A patterned layer of a low surface energy material is on a first region of the conductive surface. An overcoat layer free of conductive particulates is on a first portion of a second region of the conductive surface unoccupied by the patterned layer. A via is in a second portion of the second region of the conductive surface between an edge of the patterned layer of the low surface energy material and the overcoat layer. A conductive material is in the via to provide an electrical connection to the conductive surface.
    Type: Application
    Filed: June 23, 2016
    Publication date: June 7, 2018
    Inventors: Matthew S. Stay, Shawn C. Dodds, Ann M. Gilman, Mikhail L. Pekurovsky, Daniel J. Theis, Matthew R. D. Smith
  • Patent number: 9980394
    Abstract: A method for making an electronic assembly includes applying a conductive adhesive to a resist layer overlying a patterned conductive nanowire layer on a substrate and engaging an electrical contact of an electronic component with the conductive adhesive to provide an electrical connection between the electronic component and the conductive nanowire layer.
    Type: Grant
    Filed: July 18, 2014
    Date of Patent: May 22, 2018
    Assignee: 3M INNOVATIVE PROPERTIES COMPANY
    Inventors: Matthew S. Stay, Mikhail L. Pekurovsky, Shawn C. Dodds, Ann M. Gilman, Daniel J. Theis
  • Publication number: 20180133742
    Abstract: Methods and apparatuses for applying liquid coatings are provided. A first roll (14), a second roll (16), and a nip (146) formed between the first and second rolls are provided. A coating liquid (22) is supplied to the nip. The coating liquid is smoothed, via the nip, into a substantially uniform layer (22a) of liquid coating which is transferred to a substrate (12). The second roll (16) includes a thin metal shell (40) and a resilient layer (30), the thin metal shell encases the resilient layer therebeneath, and the thin metal shell is capable of deflecting in unison with the resilient layer such that the thin metal shell is elastically deformable at the nip when in contact with the first roll (14).
    Type: Application
    Filed: June 8, 2016
    Publication date: May 17, 2018
    Inventors: Shawn C. Dodds, Mikhail L. Pekurovsky, James N. Dobbs, Graham M. Clarke, Michele A. Craton, Adam W. Kiefer, Matthew R.D. Smith, Brian E. Schreiber
  • Publication number: 20180139855
    Abstract: A composite article includes a conductive layer with nanowires on at least a portion of a flexible substrate, wherein the conductive layer has a conductive surface. A patterned layer of a low surface energy material is on a first region of the conductive surface. An overcoat layer free of conductive particulates is on a first portion of a second region of the conductive surface unoccupied by the patterned layer. A via is in a second portion of the second region of the conductive surface between an edge of the patterned layer of the low surface energy material and the overcoat layer. A conductive material is in the via to provide an electrical connection to the conductive surface.
    Type: Application
    Filed: June 22, 2016
    Publication date: May 17, 2018
    Inventors: Matthew S. Stay, Shawn C. Dodds, Ann M. Gilman, Mikhail L. Pekurovsky, Daniel J. Theis, Matthew R. D. Smith
  • Patent number: 9807871
    Abstract: An electronic assembly includes a substrate having in a first zone a low contrast first conductive pattern; a high contrast fiducial mark in a second zone of the substrate different from the first zone, wherein the fiducial mark and the first conductive pattern are in registration; and a second conductive pattern aligned with the first conductive pattern.
    Type: Grant
    Filed: August 11, 2014
    Date of Patent: October 31, 2017
    Assignee: 3M INNOVATIVE PROPERTIES COMPANY
    Inventors: Daniel J. Theis, Ann M. Gilman, Kim B. Saulsbury, Matthew S. Stay, Shawn C. Dodds, Mikhail L. Pekurovsky
  • Patent number: 9782955
    Abstract: Touch sensor layer constructions and methods of making such constructions are described. More particularly, touch sensor constructions that utilize patterned conductive layers that may be applied by a sacrificial release liner, eliminating one or more glass and/or film substrate from touch sensor stacks, and methods of making such constructions are described.
    Type: Grant
    Filed: August 13, 2014
    Date of Patent: October 10, 2017
    Assignee: 3M INNOVATIVE PROPERTIES COMPANY
    Inventors: Michael W. Dolezal, Robert R. Kieschke, Ta-Hua Yu, Mark A. Roehrig, Pradnya V. Nagarkar, Matthew S. Stay, Shawn C. Dodds, Bernard O. Geaghan
  • Publication number: 20170198168
    Abstract: A conformable, removable film-based article having a patterned, discontinuous upper protective layer. The upper layer may be configured to facilitate enhanced removability of the film from a substrate, such as an automobile's exterior surface, to which it has been applied.
    Type: Application
    Filed: June 3, 2015
    Publication date: July 13, 2017
    Inventors: John P. Baetzold, Robert R. Condon, Shawn C. Dodds, Thomas B. Galush, Thomas Herdtle, Mikhail L. Pekurovsky, John J. Stradinger
  • Publication number: 20160310940
    Abstract: Systems and methods for concentrating a sample and detecting an analyte of interest. The system can include a sample detection container that can include a microcavity. The microcavity can include a top opening, a base, and a longitudinal axis. The container can further include a wall that extends to the microcavity, wherein at least a portion of the wall located adjacent the top opening of the microcavity has a slope that is oriented at an effective angle ? with respect to the longitudinal axis of the microcavity. The effective angle ? can be greater than 45 degrees and less than 90 degrees, and at least the portion of the wall located adjacent the top opening of the microcavity that is oriented at the effective angle ? can have a length of at least 5 times a transverse dimension of the microcavity.
    Type: Application
    Filed: December 16, 2014
    Publication date: October 27, 2016
    Inventors: Raj Rajagopal, Kurt J. Halverson, Shawn C. Dodds, Ramasubramani Kuduva Raman Thanumoorthy
  • Publication number: 20160263929
    Abstract: A method of plasma treating a flexographic printing plate and a method of using a plasma-treated flexographic printing plate to transfer a liquid to a printable substrate are disclosed. A method of flexographic printing comprises: transferring the liquid from an anilox roll to a printing surface of the plasma-treated flexographic printing plate and transferring the liquid from the printing surface of the plasma-treated flexographic printing plate to a surface of the substrate. A method of plasma treating the flexographic printing plate comprises exposing at least the printing surface of the flexographic printing plate to a plasma.
    Type: Application
    Filed: October 3, 2014
    Publication date: September 15, 2016
    Inventors: Shawn C. Dodds, John P. Baetzold, Moses M. David, Mikhail L. Pekurovsky, Kim B. Saulsbury, Matthew S. Stay
  • Publication number: 20160249461
    Abstract: A method for making an electronic assembly includes applying a protective layer including an organosulfur compound to at least a portion of a patterned conductive interconnect circuit, wherein the conductive interconnect circuit overlies at least a portion of a conductive layer on a substrate, and wherein the conductive layer includes nanowires; and engaging an electrical contact of an electronic component with the protective layer to electrically connect the electronic component and the patterned conductive layer.
    Type: Application
    Filed: September 22, 2014
    Publication date: August 25, 2016
    Inventors: Ann M. Gilman, Mikhail L. Pekurovsky, Matthew S. Stay, Shawn C. Dodds, Daniel J. Theis
  • Publication number: 20160205772
    Abstract: An electronic assembly includes a substrate having in a first zone a low contrast first conductive pattern; a high contrast fiducial mark in a second zone of the substrate different from the first zone, wherein the fiducial mark and the first conductive pattern are in registration; and a second conductive pattern aligned with the first conductive pattern.
    Type: Application
    Filed: August 11, 2014
    Publication date: July 14, 2016
    Inventors: Daniel J. Theis, Ann M. Gilman, Kim B. Saulsbury, Matthew S. Stay, Shawn C. Dodds, Mikhail L. Pekurovsky
  • Publication number: 20160200086
    Abstract: Touch sensor layer constructions and methods of making such constructions are described. More particularly, touch sensor constructions that utilize patterned conductive layers that may be applied by a sacrificial release liner, eliminating one or more glass and/or film substrate from touch sensor stacks, and methods of making such constructions are described.
    Type: Application
    Filed: August 13, 2014
    Publication date: July 14, 2016
    Inventors: Michael W. Dolezal, Robert R. Kieschke, Ta-Hua Yu, Mark A. Roehrig, Pradnya V. Nagarkar, Matthew S. Stay, Shawn C. Dodds, Bernard O. Geaghan
  • Publication number: 20160143153
    Abstract: A method for making an electronic assembly includes applying a conductive adhesive to a resist layer overlying a patterned conductive nanowire layer on a substrate and engaging an electrical contact of an electronic component with the conductive adhesive to provide an electrical connection between the electronic component and the conductive nanowire layer.
    Type: Application
    Filed: July 18, 2014
    Publication date: May 19, 2016
    Applicant: 3M Innovative Properties Company
    Inventors: Matthew S. Stay, Mikhail L. Pekurovsky, Shawn C. Dodds, Ann M. Gilman, Daniel J. Theis
  • Publication number: 20150316955
    Abstract: A method of patterning a conductive layer to form transparent electrical conductors that does not require etching is disclosed. The method includes peeling a strippable polymer layer from a substrate coated with the conductive layer to pattern the conductive layer. In some embodiments, a resist matrix material is patterned over the conductive layer to prevent removal of the conductive layer beneath the resist matrix material. In other embodiments, a liner having a pressure sensitive adhesive surface is brought into contact with the patterned strippable polymer material to remove both the patterned strippable polymer material and the conductive layer beneath it.
    Type: Application
    Filed: December 2, 2013
    Publication date: November 5, 2015
    Inventors: Shawn C. Dodds, Matthew S. Stay, Mikhail L. Pekurovsky, Matthew H. Frey, Mark J. Pellerite, John P. Baetzold
  • Publication number: 20150192728
    Abstract: Variable index light extraction layers that contain a first region with a first material and a second region including a second material are described, where the first region has a lower effective index of refraction than the second region. Optical films and stacks may use the variable index light extraction layers in front lit or back lit display devices and luminaires.
    Type: Application
    Filed: August 21, 2013
    Publication date: July 9, 2015
    Inventors: David Scott Thompson, Shawn C. Dodds, Mikhail L. Pekurovsky, Kevin R. Schaffer, Matthew S. Stay, Steven D. Solomonson, John A. Wheatley, Zhaohui Yang, Joseph W. Woody, V
  • Publication number: 20150118457
    Abstract: A method of forming an article is provided. The method can include providing a substrate comprising a surface. The method can further include forming a solvent soluble layer on or over the surface of the substrate in a pattern, the pattern defining one or more first portions of the surface that are overlaid by the solvent soluble layer, and one or more second portions of the surface that are free of the solvent soluble layer. The method can further include forming a second layer on or over at least one of the first portions and at least one of the second portions, wherein the step of forming the second layer includes buffing an exfoliatable material on or over at least one of the first portions and at least one of the second portions. The method can further include removing the solvent soluble layer by applying a solvent to the substrate.
    Type: Application
    Filed: June 10, 2013
    Publication date: April 30, 2015
    Inventors: Ranjith Divigalpitiya, Mikhail L. Pekurovsky, Shawn C. Dodds