Patents by Inventor Jolanta Gadzalinska

Jolanta Gadzalinska 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: 20220388211
    Abstract: A method of filling a microcavity with layers of a polymer material includes the following steps: (A) estimating a current vertical position of a bottom of the microcavity (current bottom position); (B) lowering the capillary tube into the microcavity towards the current bottom position; (C) dispensing a polymer composition from a tube outlet of the capillary tube under a dispensing applied pressure until the polymer composition substantially fills the microcavity; (D) curing a work piece including the microcavity and the polymer composition in the microcavity to obtain a current layer of the polymer material; and (E) repeatedly executing steps (A), (B), (C), and (D), until the layers of the polymer material have substantially filled the microcavity.
    Type: Application
    Filed: June 1, 2022
    Publication date: December 8, 2022
    Applicant: XTPL S.A.
    Inventors: Jolanta Gadzalinska, Lukasz Witczak, Aneta Wiatrowska, Karolina Fiaczyk, Piotr Kowalczewski, Filip Granek
  • Publication number: 20220310397
    Abstract: A method of forming an electrically conductive feature traversing a microscopic step on or in a substrate is disclosed. A metallic nanoparticle composition is continuously extruded from a capillary tube (nozzle) while displacing the capillary tube along a first portion of a trajectory from a first position (above a step-top portion) past an edge of the microscopic step to a second position to form a first extrudate. The composition is continuously extruded while displacing the nozzle along a sloped second portion of the trajectory from the second position to a third position (above a step-bottom portion) to form a second extrudate. The third position is at a lower height than the second position. The composition is continuously extruded while displacing the nozzle along a third portion of the trajectory from the third position to a fourth position (above the step-bottom portion). The feature includes the first, second, and third extrudates.
    Type: Application
    Filed: March 9, 2022
    Publication date: September 29, 2022
    Applicant: XTPL S.A.
    Inventors: Lukasz Witczak, Jolanta Gadzalinska, Aneta Wiatrowska, Karolina Fiaczyk, Piotr Kowalczewski, Filip Granek
  • Publication number: 20220212255
    Abstract: An additive method of forming a metallic nanoparticle microdot on a substrate is disclosed. The method includes: (A) estimating or obtaining a position of an outlet of a capillary tube at zero height above the substrate (zero-height position); (B) extruding a metallic nanoparticle composition from the outlet at a first height h1 above the zero-height position, including forming a fluid bridge between the outlet and the substrate; (C) optionally lifting the capillary tube relative to the substrate by a height increment of Dh while continuing to extrude the metallic nanoparticle composition from the outlet; and (D) rapidly lifting the capillary tube to separate the outlet from the fluid bridge.
    Type: Application
    Filed: December 29, 2021
    Publication date: July 7, 2022
    Applicant: XTPL S.A.
    Inventors: Jolanta Gadzalinska, Piotr Kowalczewski, Karolina Fiaczyk, Aneta Wiatrowska, Filip Granek
  • Publication number: 20210285091
    Abstract: A method of decreasing a sheet resistance of a transparent conductor is disclosed. The method includes the following: forming a first transparent conductor layer on a substrate; dispensing a metallic nanoparticle composition on the first transparent conductor layer to form metallic nanoparticle features; and sintering at least the first transparent conductor layer and the metallic nanoparticle features. The first transparent conductor layer includes a crystalline metal oxide. The aperture ratio of the transparent conductor is in a range of 90% to 99%. A multilayer transparent conductor and a method of forming a multilayer transparent conductor are also disclosed.
    Type: Application
    Filed: March 15, 2021
    Publication date: September 16, 2021
    Applicant: XTPL S.A.
    Inventors: Anna Stanczak, Jolanta Gadzalinska, Mateusz Lysien, Aneta Wiatrowska, Filip Granek