Patents by Inventor Derek J. Dehn

Derek J. Dehn 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: 11926717
    Abstract: Polymer matrix composite comprising a porous polymeric network; and a plurality of thermally insulating particles distributed within the polymeric network structure, wherein the thermally insulating particles are present in a range from 15 to 99 weight percent, based on the total weight of the thermally insulating particles and the polymer (excluding the solvent); and wherein the polymer matrix composite has a density not greater than 3 g/cm3; and methods for making the same. The polymer matrix composites are useful, for example, in electronic devices.
    Type: Grant
    Filed: October 8, 2020
    Date of Patent: March 12, 2024
    Assignee: 3M INNOVATIVE PROPERTIES COMPANY
    Inventors: Derek J. Dehn, Clinton P. Waller, Jr., Bharat R. Acharya
  • Patent number: 11906252
    Abstract: A composite cooling film (100) comprises an antisoiling layer (160) secured to a first major surface of a reflective microporous layer (110). The reflective microporous layer (110) comprises a first fluoropolymer and is diffusely reflective of electromagnetic radiation over a majority of wavelengths in the range of 400 to 2500 nanometers. The antisoiling layer (160) has an outwardly facing antisoiling surface (162) opposite the micro-voided polymer film. An article (1100) comprising the composite cooling film (1112) secured to a substrate (1110) is also disclosed.
    Type: Grant
    Filed: May 27, 2020
    Date of Patent: February 20, 2024
    Inventors: Timothy J. Hebrink, Michelle M. Mok, Derek J. Dehn, Mary E. Johansen, Lon R. Johnson, Todd G. Pett, Moses M. David, James P. Burke, Vivian W. Jones, Haiyan Zhang
  • Patent number: 11866565
    Abstract: Polymer matrix composite comprising a porous polymeric network; and a plurality of intumescent particles distributed within the polymeric network structure; wherein the intumescent particles are present in a range from 15 to 99 weight percent, based on the total weight of the intumescent particles and the polymer (excluding the solvent); and wherein the polymer matrix composite volumetrically expands at least 2 times its initial volume when exposed to at least one temperature greater than 135° C.; and methods for making the same. The polymer matrix composites are useful, for example, as fillers, thermally initiated fuses, and fire stop devices.
    Type: Grant
    Filed: January 22, 2021
    Date of Patent: January 9, 2024
    Assignee: 3M INNOVATIVE PROPERTIES COMPANY
    Inventors: Derek J. Dehn, Bharat R. Acharya, Brandon A. Bartling, Paul T. Hines, Clinton P. Waller, Jr., Satinder K. Nayar
  • Publication number: 20230356186
    Abstract: A polymer matrix composite comprising a porous polymeric network; and a plurality of functional particles distributed within the polymeric network structure, and wherein the polymer matrix composite has an air flow resistance at 25° C., as measured by the “Air Flow Resistance Test,” of less than 300 seconds/50 cm3/500 micrometers; and wherein the polymer matrix composite has a density of at least 0.3 g/cm3; and methods for making the same. The polymer matrix composites are useful, for example, as filters.
    Type: Application
    Filed: July 12, 2023
    Publication date: November 9, 2023
    Inventors: Jerald K. Rasmussen, Derek J. Dehn, Clinton P. Waller, Jr., Bharat R. Acharya, Satinder K. Nayar
  • Patent number: 11807732
    Abstract: Method of making a polymer matrix composite comprising a porous polymeric network structure; and a plurality of particles distributed within the polymeric network structure, the method comprising: combining a thermoplastic polymer, a solvent that the thermoplastic polymer is soluble in, and a plurality of particles to provide a slurry; forming the slurry in to an article; heating the article in an environment to retain at least 90 percent by weight of the solvent, based on the weight of the solvent in the slurry, and inducing phase separation of the thermoplastic polymer from the solvent to provide the polymer matrix composite.
    Type: Grant
    Filed: November 15, 2018
    Date of Patent: November 7, 2023
    Assignee: 3M INNOVATIVE PROPERTIES COMPANY
    Inventors: Derek J. Dehn, Clinton P. Waller, Jr., Jeanne M. Bruss, Bharat R. Acharya, Brandon A. Bartling, Michael S. Graff, Noah O. Shanti, Fabian Stolzenburg, Satinder K. Nayar
  • Patent number: 11787929
    Abstract: A composition is described comprising semicrystalline polylactic acid polymer; polyvinyl acetate polymer having a glass transition temperature (Tg) of at least 25° C.; plasticizer; and optionally amorphous polylactic acid polymer. In another embodiment the composition further comprises nucleating agent. Also described are films comprising the composition as well as articles, such as a tape or sheet, comprising the film described herein and a layer of pressure sensitive adhesive disposed on the film.
    Type: Grant
    Filed: January 7, 2022
    Date of Patent: October 17, 2023
    Assignee: 3M Innovative Properties Company
    Inventors: Ning Zhou, Robert S. Clough, Derek J. Dehn, Jeffrey P. Kalish, William W. Merrill, Kevin M. Lewandowski, Jayant Chakravarty
  • Patent number: 11745167
    Abstract: A polymer matrix composite comprising a porous polymeric network; and a plurality of functional particles distributed within the polymeric network structure, and wherein the polymer matrix composite has an air flow resistance at 25° C., as measured by the “Air Flow Resistance Test,” of less than 300 seconds/50 cm3/500 micrometers; and wherein the polymer matrix composite has a density of at least 0.3 g/cm3; and methods for making the same. The polymer matrix composites are useful, for example, as filters.
    Type: Grant
    Filed: November 15, 2018
    Date of Patent: September 5, 2023
    Assignee: 3M Innovative Properties Company
    Inventors: Jerald K. Rasmussen, Derek J. Dehn, Clinton P. Waller, Jr., Bharat R. Acharya, Satinder K. Nayar
  • Patent number: 11732104
    Abstract: A polymer matrix composite comprising a porous polymeric network; and a plurality of dielectric particles distributed within the polymeric network structure; wherein the dielectric particles are present in a range from 5 to 98 weight percent, based on the total weight of the dielectric particles and the polymer (excluding the solvent); and wherein the polymer matrix composite has a dielectric constant in a range from 1.05 to 80; and methods for making the same. Polymer matrix composites comprising dielectric particles are useful, for example, as electric field insulators.
    Type: Grant
    Filed: November 15, 2018
    Date of Patent: August 22, 2023
    Assignee: 3M Innovative Properties Company
    Inventors: Badri Veeraraghavan, Derek J. Dehn, Clinton P. Waller, Jr., Bharat R. Acharya, Satinder K. Nayar
  • Patent number: 11643517
    Abstract: A polymer matrix composite includes a porous polymeric network structure; and a plurality of acoustically active particles distributed within the polymeric network structure. The weight fraction of acoustically active particles is between 0.80 and 0.99, based on the total weight of the polymer matrix composite. The polymer matrix composite has an air flow resistance of less than 100 seconds/50 mL/500 ?m.
    Type: Grant
    Filed: June 11, 2018
    Date of Patent: May 9, 2023
    Assignee: 3M Innovative Properties Company
    Inventors: Bharat R. Acharya, Derek J. Dehn, Fabian Stolzenburg, Noah O. Shanti
  • Publication number: 20220354032
    Abstract: A magnetic shielding film includes opposing first and second major surfaces and a plurality of particles dispersed therebetween, each particle having a magnetic permeability, a thickness H along a thickness direction of the particle, and a longest dimension L along a length direction of the particle orthogonal to the thickness direction, L/H greater than or equal to 2, the particles defining a plurality of voids therebetween, the length directions of at least 60% of the particles oriented within 5.5 degrees of a same orientation direction.
    Type: Application
    Filed: May 8, 2020
    Publication date: November 3, 2022
    Inventors: Michael S. Graff, Derek J. Dehn, Paul T. Hines, Charles L. Bruzzone, Bharat R. Acharya, Ronald D. Jesme, William J. Kopecky, Jennifer J. Sokol, Sergei A. Manuilov
  • Patent number: 11472992
    Abstract: Polymer matrix composite comprising a porous polymeric network; and a plurality of thermally conductive particles distributed within the polymeric network structure; wherein the thermally conductive particles are present in a range from 15 to 99 weight percent, based on the total weight of the thermally conductive particles and the polymer (excluding the solvent); and wherein the polymer matrix composite has a density of at least 0.3 g/cm3; and methods for making the same. The polymer matrix composites are useful, for example, in electronic devices.
    Type: Grant
    Filed: November 15, 2018
    Date of Patent: October 18, 2022
    Assignee: 3M Innovative Properties Company
    Inventors: Derek J. Dehn, Clinton P. Waller, Jr., Bharat R. Acharya, Brandon A. Bartling, Audrey S. Forticaux, Jeremy M. Higgins, Satinder K. Nayar
  • Publication number: 20220259398
    Abstract: (Co)polymer matrix composites including a porous (co)polymeric network; a multiplicity of thermally-conductive particles and a multiplicity of magnetic particles distributed within the (co)polymeric network structure; wherein the thermally-conductive particles, magnetic particles and optional magnetic particles are present in a range from 15 to 99 weight percent, based on the total weight of the particles and the (co)polymer (excluding the solvent). Methods of making and using the (co)polymer matrix composites are also disclosed. The (co)polymer matrix composites are useful, for example, as heat dissipating or heat absorbing thermal interface materials that also provide magnetic properties useful, for example, in flux field directional materials or shielding from electromagnetic interference.
    Type: Application
    Filed: May 9, 2020
    Publication date: August 18, 2022
    Inventors: Sebastian Goris, Derek J. Dehn, Paul T. Hines, Michael S. Graff, JR., Mario A. Perez, Charles L. Bruzzone, Bharat R. Acharya, Clinton P. Waller
  • Patent number: 11407872
    Abstract: Foam compositions are provided including a polylactic acid polymer; second (e.g., polyvinyl acetate) polymer having a glass transition temperature (Tg) of at least 25° C.; and plasticizer. Also described are articles comprising the foam compositions, such as a sheet or hearing protection article. Methods of making and using the foam compositions are further described herein.
    Type: Grant
    Filed: June 14, 2017
    Date of Patent: August 9, 2022
    Assignee: 3M Innovative Properties Company
    Inventors: Joshua M. Fishman, Caitlin E. Meree, Ning Zhou, Derek J. Dehn, Jacob D. Young, Jeffrey O. Emslander, Bradley L. Givot, Aaron T. Hedegaard, Justin M. Bolton, Terry R. Hobbs, Mahfuza B. Ali, Robert C. Coffin, Brant U. Kolb, Paul D. Pennington, Jimmie R. Baran, Jr., Duane D. Fansler, Ying Lin
  • Publication number: 20220221627
    Abstract: A composite cooling film (100) comprises an ultraviolet-reflective multilayer optical film (120) and a reflective microporous layer (110) secured thereto. The ultraviolet-reflective multilayer optical film (120) hat is at least 50 percent reflective of ultraviolet radiation over a majority of the wavelength range of at least 340 but less than 400 nanometers. The reflective microporous layer (110) has a continuous phase comprising a nonfluorinated organic polymer and is diffusely reflective of solar radiation over a majority the wavelength range of 400 to 2500 nanometers, inclusive. The composite cooling film (100) has an average absorbance over the wavelength range 8-13 microns of at least 0.85. An article (1200) comprising the composite cooling film (100) adhered to a substrate (1210) is also disclosed.
    Type: Application
    Filed: May 21, 2020
    Publication date: July 14, 2022
    Inventors: Timothy J. Hebrink, Michelle M. Mok, Derek J. Dehn, Mary E. Johansen, Lon R. Johnson, Todd G. Pett, Moses M. David, James P. Burke, Vivian W. Jones, Haiyan Zhang
  • Publication number: 20220221235
    Abstract: A composite cooling film (100) comprises an antisoiling layer (160) secured to a first major surface of a reflective microporous layer (110). The reflective microporous layer (110) comprises a first fluoropolymer and is diffusely reflective of electromagnetic radiation over a majority of wavelengths in the range of 400 to 2500 nanometers. The antisoiling layer (160) has an outwardly facing antisoiling surface (162) opposite the micro-voided polymer film. An article (1100) comprising the composite cooling film (1112) secured to a substrate (1110) is also disclosed.
    Type: Application
    Filed: May 27, 2020
    Publication date: July 14, 2022
    Inventors: Timothy J. Hebrink, Michelle M. Mok, Derek J. Dehn, Mary E. Johansen, Lon R. Johnson, Todd G. Pett, Moses M. David, James P. Burke, Vivian W. Jones, Haiyan Zhang
  • Publication number: 20220213288
    Abstract: (Co)polymer matrix composites including a porous (co)polymeric network; a multiplicity of thermally-conductive particles, a multiplicity of intumescent particles and optionally a multiplicity of endothermic particles distributed within the (co)polymeric network structure; wherein the thermally-conductive particles, intumescent particles and optional endothermic particles are present in a range from 15 to 99 weight percent, based on the total weight of the particles and the (co)polymer (excluding the solvent). Optionally, the (co)polymer matrix composite volumetrically expands by at least 50% over its initial volume when exposed to at least one temperature greater than 135° C. when exposed to at least one temperature greater than 135° C. Methods of making and using the (co)polymer matrix composites are also disclosed. The (co)polymer matrix composites are useful, for example, as heat dissipating or heat absorbing articles, thermally-initiated fuses, and fire-stop devices.
    Type: Application
    Filed: May 7, 2020
    Publication date: July 7, 2022
    Inventors: Derek J. Dehn, Sebastian Goris, Paul T. Hines, Clinton P. Waller, Jr., Mario A. Perez, Bharat R. Acharya, Brandon A. Bartling
  • Publication number: 20220213372
    Abstract: (Co)polymer matrix composites including a porous (co)polymeric network; a multiplicity of thermally-conductive particles, and a multiplicity of endothermic particles distributed within the (co)polymeric network structure; wherein the thermally-conductive particles and endothermic particles are present in a range from 15 to 99 weight percent, based on the total weight of the particles and the (co)polymer (excluding the solvent). Optionally, the (co)polymer matrix composite volumetrically expands by at least 10% of its initial volume when exposed to a temperature of at least 135° C. Methods of making and using the (co)polymer matrix composites are also disclosed. The (co)polymer matrix composites are useful, for example, as heat dissipating or heat absorbing articles, as fillers, thermal interface materials, and thermal management materials, for example, in electronic devices, more particularly mobile handheld electronic devices, power supplies, and batteries.
    Type: Application
    Filed: May 6, 2020
    Publication date: July 7, 2022
    Inventors: Paul T. Hines, Derek J. Dehn, Sebastian Goris, Clinton P. Waller, Jr., Mario A. Perez, Bharat R. Acharya, Ronald W. Ausen
  • Publication number: 20220203661
    Abstract: A film includes a polymeric material and a plurality of particles dispersed therein. The polymeric material includes a plurality of elongate polymeric elements oriented along substantially a same first direction and interconnecting the particles. An elongate end portion of at least a first elongate polymeric element in the plurality of elongate polymeric elements conforms and is bonded to a first particle in the plurality of particles along an entire length of the elongate end portion. An elongate mid portion of at least a second elongate polymeric element in the plurality of elongate polymeric elements conforms and is bonded to a second particle in the plurality of particles along an entire length of the elongate mid portion with the second elongate polymeric element extending away from the second particle from opposite ends of the elongate mid portion. Multilayer films and processes are also described.
    Type: Application
    Filed: May 12, 2020
    Publication date: June 30, 2022
    Inventors: Bharat R. Acharya, Derek J. Dehn, Bradley L. Givot, Jaewon Kim, Yong K. Wu
  • Publication number: 20220186030
    Abstract: (Co)polymer matrix composites including a porous (co)polymeric network; a nonvolatile diluent, and a multiplicity of thermally-conductive particles distributed within the (co)polymeric network; wherein the thermally-conductive particles are present in a range from 15 to 99 weight percent, based on the total weight of the (co)polymer matrix (including the thermally-conductive particles and the nonvolatile diluent). Optionally, the (co)polymer matrix composite volumetrically expands by at least 10% of its initial volume when exposed to a temperature of at least 135° C. Methods of making and using the (co)polymer matrix composites are also disclosed. The (co)polymer matrix composites are useful, for example, as heat dissipating or heat absorbing articles, as fillers, thermal interface materials, and thermal management materials, for example, in electronic devices, more particularly mobile handheld electronic devices, power supplies, and batteries.
    Type: Application
    Filed: May 7, 2020
    Publication date: June 16, 2022
    Inventors: Sebastian Goris, Derek J. Dehn, Paul T. Hines, Clinton P. Waller, Jr., Mario A. Perez, Bharat R. Acharya, Ronald W. Ausen
  • Publication number: 20220127444
    Abstract: A composition is described comprising semicrystalline polylactic acid polymer; polyvinyl acetate polymer having a glass transition temperature (Tg) of at least 25° C.; plasticizer; and optionally amorphous polylactic acid polymer. In another embodiment the composition further comprises nucleating agent. Also described are films comprising the composition as well as articles, such as a tape or sheet, comprising the film described herein and a layer of pressure sensitive adhesive disposed on the film.
    Type: Application
    Filed: January 7, 2022
    Publication date: April 28, 2022
    Inventors: Ning Zhou, Robert S. Clough, Derek J. Dehn, Jeffrey P. Kalish, William W. Merrill, Kevin M. Lewandowski, Jayant Chakravarty