Patents by Inventor Jennifer E. Curtis
Jennifer E. Curtis 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).
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Patent number: 11060074Abstract: The present invention provides polymer brush constructs, for example, surfaces decorated with hyaluronan polymers, and methods of making the same. The constructs are useful as functional materials for numerous applications, e.g., as lubricants, implant coatings, bandages and other uses.Type: GrantFiled: March 11, 2019Date of Patent: July 13, 2021Assignee: Georgia Tech Research CorporationInventors: Jennifer E. Curtis, M. G. Finn, Wenbin Wei, Jessica Faubel
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Publication number: 20190276807Abstract: The present invention provides polymer brush constructs, for example, surfaces decorated with hyaluronan polymers, and methods of making the same. The constructs are useful as functional materials for numerous applications, e.g., as lubricants, implant coatings, bandages and other uses.Type: ApplicationFiled: March 11, 2019Publication date: September 12, 2019Inventors: Jennifer E. Curtis, M.G. Finn, Wenbin Wei, Jessica Faubel
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Patent number: 8468611Abstract: Improved nanolithography components, systems, and methods are described herein. The systems and methods generally employ a resistively heated atomic force microscope tip to thermally induce a chemical change in a surface. In addition, certain polymeric compositions are also disclosed.Type: GrantFiled: June 1, 2010Date of Patent: June 18, 2013Assignee: Georgia Tech Research CorporationInventors: Elisa Riedo, Seth R. Marder, Walt A. de Heer, Robert J. Szoskiewicz, Vamsi K. Kodali, Simon C. Jones, Takashi Okada, Debin Wang, Jennifer E. Curtis, Clifford L. Henderson, Yueming Hua
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Publication number: 20110053805Abstract: Improved nanolithography components, systems, and methods are described herein. The systems and methods generally employ a resistively heated atomic force microscope tip to thermally induce a chemical change in a surface. In addition, certain polymeric compositions are also disclosed.Type: ApplicationFiled: June 1, 2010Publication date: March 3, 2011Applicant: Georgia Tech Research CorporationInventors: Elisa Riedo, Seth R. Marder, Walt A. de Heer, Robert J. Szoszkiewicz, Vamsi K. Kodali, Simon C. Jones, Takashi Okada, Debin Wang, Jennifer E. Curtis, Clifford L. Henderson, Yueming Hua
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Publication number: 20080316575Abstract: A method and system for correcting aberrations in a beam of light including correcting for effects from an undiffracted portion of an input beam. The method and system includes (1) a component for providing a beam of light; (2) a component for applying a diffraction grating pattern to the beam of light to establish an optical gradient to form an optical trap; (3) component for measuring aberration in the beam of light having the applied diffraction grating pattern; (4) component for calculating a phase-shifting diffraction grating encoding the aberration; and (5) component for projecting the phase-shifting diffraction grating in conjunction with the diffraction grating pattern characteristic of the optical trap.Type: ApplicationFiled: June 5, 2008Publication date: December 25, 2008Applicant: THE UNIVERSITY OF CHICAGO.,Inventors: Jennifer E. Curtis, Brian A. Koss, David G. Grier, Kosta Ladavac, Karen Kasza
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Patent number: 7232989Abstract: A method and system for generating modulated optical vortices. Optical vortices can be used for a variety of applications, such as applying controlled torque or controlled force patterns to objects from a few nanometers to hundreds of micrometers in size. Numerous optical modes of optical vortices can be created to meet virtually any desired need in manipulating of objects. Furthermore, one can modify the wavefront of a beam of light in a specific way to create a new type of optical trap useful for manipulating mesoscopic materials. When the modified beam is brought to a focus, the resulting optical trap exerts forces transverse to the optical axis that can be used to transport mesoscopic matter such as nanoclusters, colloidal particles, and biological cells.Type: GrantFiled: September 18, 2006Date of Patent: June 19, 2007Assignee: University of ChicagoInventors: David G. Grier, Jennifer E. Curtis
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Patent number: 7176445Abstract: A method for creating large numbers of high-quality optical traps in arbitrary three-dimensional configurations and dynamically reconfiguring the traps under computer control. The method uses computer-generated diffractive optical elements to convert one or more optical tweezers into one or more optical vortices. The method involves combining the optical vortex technique with the holographic optical tweezer technique to create multiple optical vortices in arbitrary configurations. The method also involves employing the rotation induced in trapped particles by optical vortices to assemble clusters of particles into functional micromachines, to drive previously assembled micromachines, to pump fluids through microfluidics channels, to control flows of fluids through microfluidics channels, to mix fluids within microfluidics channels, to transport particles, to sort particles and to perform other related manipulations and transformations on matter over length scales.Type: GrantFiled: November 4, 2005Date of Patent: February 13, 2007Assignee: University of ChicagoInventors: Jennifer E. Curtis, Brian A. Koss, David G. Grier
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Patent number: 7109473Abstract: A method and system for generating modulated optical vortices. Optical vortices can be used for a variety of applications, such as applying controlled torque or controlled force patterns to objects from a few nanometers to hundreds of micrometers in size. Numerous optical modes of optical vortices can be created to meet virtually any desired need in manipulating of objects. Furthermore, one can modify the wavefront of a beam of light in a specific way to create a new type of optical trap useful for manipulating mesoscopic materials. When the modified beam is brought to a focus, the resulting optical trap exerts forces transverse to the optical axis that can be used to transport mesoscopic matter such as nanoclusters, colloidal particles, and biological cells.Type: GrantFiled: September 10, 2003Date of Patent: September 19, 2006Assignee: University of ChicagoInventors: David G. Grier, Jennifer E. Curtis
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Patent number: 7104659Abstract: A method and apparatus for control of optical trap arrays and formation of particle arrays using light that is in the visible portion of the spectrum. The method and apparatus provides a laser and a time variable diffractive optical element to allow dynamic control of optical trap arrays and consequent control of particle arrays and also the ability to manipulate singular objects using a plurality of optical traps. By avoiding wavelengths associated with strong absorption in the underlying material, creating optical traps with a continuous-wave laser, optimizing the efficiency of individual traps, and trapping extended samples at multiple points, the rate of deleterious nonlinear optical processes can be minimized.Type: GrantFiled: December 10, 2004Date of Patent: September 12, 2006Assignee: University of ChicagoInventors: David G. Grier, Eric R. Dufresne, Jennifer E. Curtis, Brian A. Koss
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Patent number: 6995351Abstract: A method for creating large numbers of high-quality optical traps in arbitrary three-dimensional configurations and dynamically reconfiguring the traps under computer control. The method uses computer-generated diffractive optical elements to convert one or more optical tweezers into one or more optical vortices. The method involves combining the optical vortex technique with the holographic optical tweezer technique to create multiple optical vortices in arbitrary configurations. The method also involves employing the rotation induced in trapped particles by optical vortices to assemble clusters of particles into functional micromachines, to drive previously assembled micromachines, to pump fluids through microfluidics channels, to control flows of fluids through microfluidics channels, to mix fluids within microfluidics channels, to transport particles, to sort particles and to perform other related manipulations and transformations on matter over length scales.Type: GrantFiled: February 17, 2005Date of Patent: February 7, 2006Assignee: The University of ChicagoInventors: Jennifer E. Curtis, Brian A. Koss, David G. Grier
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Patent number: 6858833Abstract: A method for creating large numbers of high-quality optical traps in arbitrary three-dimensional configurations and dynamically reconfiguring the traps under computer control. The method uses computer-generated diffractive optical elements to convert one or more optical tweezers into one or more optical vortices. The method involves combining the optical vortex technique with the holographic optical tweezer technique to create multiple optical vortices in arbitrary configurations. The method also involves employing the rotation induced in trapped particles by optical vortices to assemble clusters of particles into functional micromachines, to drive previously assembled micromachines, to pump fluids through microfluidics channels, to control flows of fluids through microfluidics channels, to mix fluids within microfluidics channels, to transport particles, to sort particles and to perform other related manipulations and transformations on matter over length scales.Type: GrantFiled: May 17, 2004Date of Patent: February 22, 2005Assignee: University of ChicagoInventors: Jennifer E. Curtis, Brian A. Koss, David G. Grier
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Patent number: 6846084Abstract: A method and apparatus for control of optical trap arrays and formation of particle arrays using light that is in the visible portion of the spectrum. The method and apparatus provides a laser and a time variable diffractive optical element to allow dynamic control of optical trap arrays and consequent control of particle arrays and also the ability to manipulate singular objects using a plurality of optical traps. By avoiding wavelengths associated with strong absorption in the underlying material, creating optical traps with a continuous-wave laser, optimizing the efficiency of individual traps, and trapping extended samples at multiple points, the rate of deleterious nonlinear optical processes can be minimized.Type: GrantFiled: August 22, 2003Date of Patent: January 25, 2005Assignee: University of ChicagoInventors: David G. Grier, Eric R. Dufresne, Jennifer E. Curtis, Brian A. Koss
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Publication number: 20040211889Abstract: A method for creating large numbers of high-quality optical traps in arbitrary three-dimensional configurations and dynamically reconfiguring the traps under computer control. The method uses computer-generated diffractive optical elements to convert one or more optical tweezers into one or more optical vortices. The method involves combining the optical vortex technique with the holographic optical tweezer technique to create multiple optical vortices in arbitrary configurations.Type: ApplicationFiled: May 17, 2004Publication date: October 28, 2004Applicant: The University of ChicagoInventors: Jennifer E. Curtis, Brian A. Koss, David G. Grier
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Patent number: 6737634Abstract: A method for creating large numbers of high-quality optical traps in arbitrary three-dimensional configurations and dynamically reconfiguring the traps under computer control. The method uses computer-generated diffractive optical elements to convert one or more optical tweezers into one or more optical vortices. The method involves combining the optical vortex technique with the holographic optical tweezer technique to create multiple optical vortices in arbitrary configurations.Type: GrantFiled: January 16, 2002Date of Patent: May 18, 2004Assignee: The University of ChicagoInventors: Jennifer E. Curtis, Brian A. Koss, David G. Grier
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Publication number: 20040036976Abstract: A method and apparatus for control of optical trap arrays and formation of particle arrays using light that is in the visible portion of the spectrum. The method and apparatus provides a laser and a time variable diffractive optical element to allow dynamic control of optical trap arrays and consequent control of particle arrays and also the ability to manipulate singular objects using a plurality of optical traps. By avoiding wavelengths associated with strong absorption in the underlying material, creating optical traps with a continuous-wave laser, optimizing the efficiency of individual traps, and trapping extended samples at multiple points, the rate of deleterious nonlinear optical processes can be minimized.Type: ApplicationFiled: August 22, 2003Publication date: February 26, 2004Applicant: University of ChicagoInventors: David G. Grier, Eric R. Dufresne, Jennifer E. Curtis, Brian A. Koss
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Patent number: 6626546Abstract: A method and apparatus for control of optical trap arrays and formation of particle arrays using light that is in the visible portion of the spectrum. The method and apparatus provides a laser and a time variable diffractive optical element to allow dynamic control of optical trap arrays and consequent control of particle arrays and also the ability to manipulate singular objects using a plurality of optical traps. By avoiding wavelengths associated with strong absorption in the underlying material, creating optical traps with a continuous-wave laser, optimizing the efficiency of individual traps, and trapping extended samples at multiple points, the rate of deleterious nonlinear optical processes can be minimized.Type: GrantFiled: July 1, 2002Date of Patent: September 30, 2003Assignee: University of ChicagoInventors: David G. Grier, Eric R. Dufresne, Jennifer E. Curtis, Brian A. Koss
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Publication number: 20030132373Abstract: A method for creating large numbers of high-quality optical traps in arbitrary three-dimensional configurations and dynamically reconfiguring the traps under computer control. The method uses computer-generated diffractive optical elements to convert one or more optical tweezers into one or more optical vortices. The method involves combining the optical vortex technique with the holographic optical tweezer technique to create multiple optical vortices in arbitrary configurations.Type: ApplicationFiled: January 16, 2002Publication date: July 17, 2003Inventors: Jennifer E. Curtis, Brian A. Koss, David G. Grier
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Publication number: 20020181113Abstract: A method and apparatus for control of optical trap arrays and formation of particle arrays using light that is in the visible portion of the spectrum. The method and apparatus provides a laser and a time variable diffractive optical element to allow dynamic control of optical trap arrays and consequent control of particle arrays and also the ability to manipulate singular objects using a plurality of optical traps. By avoiding wavelengths associated with strong absorption in the underlying material, creating optical traps with a continuous-wave laser, optimizing the efficiency of individual traps, and trapping extended samples at multiple points, the rate of deleterious nonlinear optical processes can be minimized.Type: ApplicationFiled: July 1, 2002Publication date: December 5, 2002Applicant: University of ChicagoInventors: David G. Grier, Eric R. Dufresne, Jennifer E. Curtis, Brian A. Koss