Patents by Inventor Philippe Fauchet

Philippe Fauchet 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: 20160115951
    Abstract: Thin pnc-Si membranes operate as high-flow-rate EOPs at low applied voltages. In at least some instances, this may be due to the small electrical resistance presented by the membrane and high electric fields across the molecularly thin membrane. The normalized flow rates of some pnc-Si EOPs may be 20 times to several orders of magnitude higher than other low-voltage EOPs.
    Type: Application
    Filed: October 27, 2014
    Publication date: April 28, 2016
    Inventors: Jessica Snyder, James McGrath, Philippe Fauchet, Thomas Gaborski, Christopher C. Striemer
  • Patent number: 8619358
    Abstract: An optical amplifier on a silicon platform includes a first doped device layer and a second doped device layer. A gain medium is positioned between the first and second doped device layers. The gain medium comprises extrinsic gain materials so as to substantially confine in the gain medium a light signal and allow the optical amplifier to be electrically or optically pumped.
    Type: Grant
    Filed: November 3, 2009
    Date of Patent: December 31, 2013
    Assignees: Massachusetts Institute of Technology, California Institute of Technology, The Board of Trustees of the Leland Stanford Junior University, University of Rochester, Cornell University
    Inventors: Lionel C. Kimerling, Harry Atwater, Mark L. Brongersma, Luca Dal Negro, Thomas L Koch, Philippe Fauchet, Michal Lipson, Jurgen Michel, Carlos Angulo Barrios
  • Publication number: 20100091358
    Abstract: An optical amplifier on a silicon platform includes a first doped device layer and a second doped device layer. A gain medium is positioned between the first and second doped device layers. The gain medium comprises extrinsic gain materials so as to substantially confine in the gain medium a light signal and allow the optical amplifier to be electrically or optically pumped.
    Type: Application
    Filed: November 3, 2009
    Publication date: April 15, 2010
    Inventors: Lionel C. Kimerling, Harry Atwater, Mark L. Brongersma, Luca Dal Negro, Thomas L. Koch, Philippe Fauchet, Michal Lipson, Jurgen Michel, Carlos Angulo Barrios
  • Publication number: 20090015906
    Abstract: An optical amplifier on a silicon platform includes a first doped device layer and a second doped device layer. A gain medium is positioned between the first and second doped device layers. The gain medium comprises extrinsic gain materials so as to substantially confine in the gain medium a light signal and allow the optical amplifier to be electrically or optically pumped.
    Type: Application
    Filed: May 18, 2007
    Publication date: January 15, 2009
    Inventors: Lionel C. Kimerling, Harry Atwater, Mark L. Brongersma, Luca Dal Negro, Thomas L. Koch, Philippe Fauchet, Michal Lipson, Jurgen Michel
  • Publication number: 20080006891
    Abstract: An energy conversion device includes a plurality of pores formed within a substrate and a junction region disposed within each of the plurality of pores where each of the junction regions has a depletion region. Each of the plurality of pores defines an opening size in the substrate and a spacing from adjacent pores so that the depletion regions of each of the pores are at least substantially in contact with the depletion region of the pores which are adjacent.
    Type: Application
    Filed: October 25, 2005
    Publication date: January 10, 2008
    Inventors: Larry Gadeken, Wei Sun, Nazir Kherani, Philippe Fauchet
  • Publication number: 20070269411
    Abstract: Provided are materials and devices comprising physiologically acceptable silicon. The materials and devices can comprise a vector, including a viral vector.
    Type: Application
    Filed: March 7, 2007
    Publication date: November 22, 2007
    Inventors: Wei Sun, Philippe Fauchet, J. Puzas
  • Publication number: 20070231887
    Abstract: Disclosed is a device for co-culturing two or more populations of cells using ultrathin, porous membranes positioned between cell culture chambers. Multiple chamber devices and uses thereof are described, including the formation of in vitro tissue models for studying drug delivery, cell-cell interactions, and the activity of low abundance molecular species.
    Type: Application
    Filed: March 14, 2007
    Publication date: October 4, 2007
    Applicant: UNIVERSITY OF ROCHESTER
    Inventors: James McGrath, Thomas Gaborski, Jessica Snyder, Christopher Striemer, Philippe Fauchet, Michael Springer
  • Publication number: 20070134840
    Abstract: A method of making an energy conversion device includes forming a plurality of pores within a substrate and forming a junction region within each of the plurality of pores. Each of the junction regions has a depletion region and each of the plurality of pores defines an opening size in the substrate and a spacing from adjacent pores so that the depletion regions of each of the pores is at least substantially in contact with the depletion region of the pores which are adjacent.
    Type: Application
    Filed: October 25, 2005
    Publication date: June 14, 2007
    Inventors: Larry Gadeken, Wei Sun, Nazir Kherani, Philippe Fauchet, Karl Hirschman
  • Publication number: 20060278580
    Abstract: A process for forming a porous nanoscale membrane is described. The process involves applying a nanoscale film to one side of a substrate, where the nanoscale film includes a semiconductor material; masking an opposite side of the substrate; etching the substrate, beginning from the masked opposite side of the substrate and continuing until a passage is formed through the substrate, thereby exposing the film on both sides thereof to form a membrane; and then simultaneously forming a plurality of randomly spaced pores in the membrane. The resulting porous nanoscale membranes, characterized by substantially smooth surfaces, high pore densities, and high aspect ratio dimensions, can be used in filtration devices, microfluidic devices, fuel cell membranes, and as electron microscopy substrates.
    Type: Application
    Filed: May 1, 2006
    Publication date: December 14, 2006
    Applicant: University of Rochester
    Inventors: Christopher Striemer, Philippe Fauchet, Thomas Gaborski, James McGrath
  • Publication number: 20060276047
    Abstract: A biological sensor which includes: a macroporous semiconductor structure comprising a central layer interposed between upper and lower layers, each of the upper and lower layers including strata of alternating porosity; and one or more probes coupled to the porous semiconductor structure, the one or more probes binding to a target molecule, whereby a detectable change occurs in a refractive index of the biological sensor upon binding of the one or more probes to the target molecule. Methods of making the biological sensor and methods of using the same are disclosed, as is a detection device which includes such a biological sensor.
    Type: Application
    Filed: March 14, 2006
    Publication date: December 7, 2006
    Applicant: University of Rochester
    Inventors: Huimin Ouyang, Philippe Fauchet, Marc Christophersen
  • Publication number: 20060243655
    Abstract: A nanoscale membrane exposed on opposite sides thereof and having an average thickness of less than about 100 nm, and a lateral length to thickness aspect ratio that is more than 10,000 to 1 is disclosed. Also disclosed are methods of making such membranes, and use thereof in a number of devices including fuel cells, sensor devices, electrospray devices, and supports for examining a sample under electron microscopy.
    Type: Application
    Filed: May 1, 2006
    Publication date: November 2, 2006
    Applicant: University of Rochester
    Inventors: Christopher Striemer, Philippe Fauchet
  • Publication number: 20060234391
    Abstract: A sensor includes at least one high refractive index layer; and at least one low refractive index layer coupled to the high refractive index layer.
    Type: Application
    Filed: February 16, 2006
    Publication date: October 19, 2006
    Inventors: Sharon Weiss, Jarkko Saarinen, Philippe Fauchet, John Sipe
  • Publication number: 20050018300
    Abstract: A method for controlling one or more temperature dependent optical properties of a structure in accordance with embodiments of the present invention includes heating at least a portion of a photonic band-gap structure and oxidizing the portion of the photonic band-gap structure during the heating to alter at least one temperature dependent optical property of the stack.
    Type: Application
    Filed: April 16, 2004
    Publication date: January 27, 2005
    Inventors: Sharon Weiss, Philippe Fauchet, Michael Molinari