Patents by Inventor Matteo Rinaldi

Matteo Rinaldi 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: 20170187347
    Abstract: A monolithic integration of phase change material (PCM) switches with a MEMS resonator is provided to implement switching and reconfiguration functionalities. MEMS resonator includes a piezoelectric material to control terminal connections to the electrodes. The PCM is operable between an ON state and an OFF state by application of heat, which causes the phase change material to change from an amorphous state to a crystalline state or from a crystalline state to an amorphous state, the amorphous state and the crystalline state each associated with one of the ON state and the OFF state. A method of fabricating the MEMS resonator with phase change material is provided. A reconfigurable filter system using the MEMS resonators is also provided.
    Type: Application
    Filed: April 17, 2015
    Publication date: June 29, 2017
    Inventors: Matteo RINALDI, Gwendolyn HUMMEL
  • Publication number: 20170170803
    Abstract: A resonator includes a piezoelectric plate and interdigitated electrode(s). The interdigitated electrode includes a plurality of conductive strips disposed over a top surface of the piezoelectric plate. A two-dimensional mode of mechanical vibration is excited in a cross sectional plane of the piezoelectric plate in response to an alternating voltage applied through the interdigitated electrode. The two-dimensional mode of mechanical vibration is a cross-sectional Lamé mode resonance (CLMR) or a degenerate cross-sectional Lamé mode resonance (dCLMR).
    Type: Application
    Filed: August 16, 2016
    Publication date: June 15, 2017
    Inventors: Matteo RINALDI, Cristian CASSELLA, Zhenyun QIAN, Yu HUI
  • Publication number: 20170163240
    Abstract: A resonator including a piezoelectric plate and an interdigital electrode is provided. A ratio between a thickness of the plate and a pitch of the interdigital electrode may be from about 0.5 to about 1.5. A radiation detector including a resonator and an absorber layer capable of absorbing at least one of infrared and terahertz radiation is provided. A resonator including a piezoelectric plate and a two-dimensional electrically conductive material is provided.
    Type: Application
    Filed: August 18, 2016
    Publication date: June 8, 2017
    Inventors: Matteo RINALDI, Zhenyun QIAN, Yu HUI
  • Publication number: 20170126263
    Abstract: A zero power radio frequency (RF) activated wake up device is provided. The device is based on a high-Q MEMS demodulator that filters an amplitude-modulated RF tone of interest from the entire spectrum while producing a much higher voltage signal suitable to trigger a high-Q MEMS resonant switch tuned to the modulation frequency of the RF tone.
    Type: Application
    Filed: October 11, 2016
    Publication date: May 4, 2017
    Inventors: Matteo RINALDI, Nicol McGRUER, Amy DUWEL, Marc S. WEINBERG, Robert EGRI, Cristian CASSELLA
  • Patent number: 9638616
    Abstract: Devices and methods for gravimetric sensing are disclosed. A gravimetric sensor includes a piezoelectric resonator and an encapsulating layer formed on the surface of the resonator. The encapsulating layer defines a channel within the encapsulating layer on the surface of the resonator. The sensor is fabricated by forming a piezoelectric resonator, forming a sacrificial layer on a surface of the piezoelectric resonator, forming an encapsulating layer over the sacrificial layer on the resonator, and etching the sacrificial layer to remove the sacrificial layer and form a channel on the surface of the resonator. The sensor is used by supplying the liquid to the channel of the gravimetric sensor, operating the piezoelectric resonator, detecting a change in a resonant frequency of the resonator, and determining a presence of the analyte in the liquid from the change in resonant frequency of the resonator.
    Type: Grant
    Filed: November 1, 2011
    Date of Patent: May 2, 2017
    Assignee: The Trustees of the University of Pennsylvania
    Inventors: Chiara Zuniga, Matteo Rinaldi, Gianluca Piazza
  • Publication number: 20170102263
    Abstract: An environmental physical sensor is provided that includes a power input terminal, a sensor output terminal, and a resonant switch. The resonant switch includes a mechanical element that is responsive to an environmental stimulus and is coupled to an electrical switch. The electrical switch is operable between an open position and a closed position and electrically connects the power input terminal to the sensor output terminal when in the closed position. The mechanical element is configured to intermittently actuate the electrical switch into the closed position responsive to the environmental stimulus.
    Type: Application
    Filed: October 7, 2016
    Publication date: April 13, 2017
    Inventors: Jonathan J. Bernstein, Marc S. Weinberg, Amy Duwel, Paul A. Ward, Nicol E. McGruer, Matteo Rinaldi, Eugene H. Cook
  • Patent number: 9425765
    Abstract: A resonator including a piezoelectric plate and an interdigital electrode is provided. A ratio between a thickness of the plate and a pitch of the interdigital electrode may be from about 0.5 to about 1.5. A radiation detector including a resonator and an absorber layer capable of absorbing at least one of infrared and terahertz radiation is provided. A resonator including a piezoelectric plate and a two-dimensional electrically conductive material is provided.
    Type: Grant
    Filed: April 22, 2014
    Date of Patent: August 23, 2016
    Assignee: Northeastern University
    Inventors: Matteo Rinaldi, Zhenyun Qian, Yu Hui
  • Patent number: 9419583
    Abstract: A resonator includes a piezoelectric plate and interdigitated electrode(s). The interdigitated electrode includes a plurality of conductive strips disposed over a top surface of the piezoelectric plate. A two-dimensional mode of mechanical vibration is excited in a cross sectional plane of the piezoelectric plate in response to an alternating voltage applied through the interdigitated electrode. The two-dimensional mode of mechanical vibration is a cross-sectional Lamé mode resonance (CLMR) or a degenerate cross-sectional Lamé mode resonance (dCLMR).
    Type: Grant
    Filed: December 15, 2015
    Date of Patent: August 16, 2016
    Assignee: Northeastern University
    Inventors: Matteo Rinaldi, Cristian Cassella, Zhenyun Qian, Yu Hui
  • Publication number: 20160099701
    Abstract: A resonator includes a piezoelectric plate and interdigitated electrode(s). The interdigitated electrode includes a plurality of conductive strips disposed over a top surface of the piezoelectric plate. A two-dimensional mode of mechanical vibration is excited in a cross sectional plane of the piezoelectric plate in response to an alternating voltage applied through the interdigitated electrode. The two-dimensional mode of mechanical vibration is a cross-sectional Lamé mode resonance (CLMR) or a degenerate cross-sectional Lamé mode resonance (dCLMR).
    Type: Application
    Filed: December 15, 2015
    Publication date: April 7, 2016
    Inventors: Matteo Rinaldi, Cristian Cassella, Zhenyun Qian, Yu Hui
  • Publication number: 20160065169
    Abstract: A resonator including a piezoelectric plate and an interdigital electrode is provided. A ratio between a thickness of the plate and a pitch of the interdigital electrode may be from about 0.5 to about 1.5. A radiation detector including a resonator and an absorber layer capable of absorbing at least one of infrared and terahertz radiation is provided. A resonator including a piezoelectric plate and a two-dimensional electrically conductive material is provided.
    Type: Application
    Filed: April 22, 2014
    Publication date: March 3, 2016
    Inventors: Matteo Rinaldi, Zhenyun Qian, Yu Hui
  • Publication number: 20160003924
    Abstract: This disclosure provides systems, methods, and apparatus for detecting magnetic fields. A magnetic sensor can include a substantially planar magnetostrictive layer. A piezoelectric layer can be bonded to a lower surface of the magnetostrictive layer. An electrode layer can be bonded to a lower surface of the piezoelectric layer. The device can be configured such that, when exposed to a magnetic field, at least one of an admittance amplitude, a quality factor, and a resonant frequency of the device is altered. The device can have a resonant frequency in the range of about 1 MHz to about 100 GHz.
    Type: Application
    Filed: March 6, 2014
    Publication date: January 7, 2016
    Inventors: Nian-Xiang Sun, Matteo Rinaldi, Tianxiang Nan, Yu Hui
  • Publication number: 20130330835
    Abstract: Devices and methods for gravimetric sensing are disclosed. A gravimetric sensor includes a piezoelectric resonator and an encapsulating layer formed on the surface of the resonator. The encapsulating layer defines a channel within the encapsulating layer on the surface of the resonator. The sensor is fabricated by forming a piezoelectric resonator, forming a sacrificial layer on a surface of the piezoelectric resonator, forming an encapsulating layer over the sacrificial layer on the resonator, and etching the sacrificial layer to remove the sacrificial layer and form a channel on the surface of the resonator. The sensor is used by supplying the liquid to the channel of the gravimetric sensor, operating the piezoelectric resonator, detecting a change in a resonant frequency of the resonator, and determining a presence of the analyte in the liquid from the change in resonant frequency of the resonator.
    Type: Application
    Filed: November 1, 2011
    Publication date: December 12, 2013
    Applicant: The Trustees of the University of Pennsylvania
    Inventors: Chiara Zuniga, Matteo Rinaldi, Gianluca Piazza
  • Publication number: 20100190270
    Abstract: Systems and methods for detecting a gaseous analyte utilize a micromechanical piezoelectric resonator having a functionalization layer configured to bind with the gaseous analyte. The functionalization layer may include a layer of carbon nanotubes affixed to the resonator and coated with biopolymers configured to bind with the gaseous analyte. The gaseous analyte may be detected by operating the micromechanical piezoelectric resonator and functionalization layer in the presence of the gas, detecting a change in the resonant frequency of the resonator, and determining the concentration of the gaseous analyte from the change in resonant frequency. Finally, the layer of carbon nanotubes may be grown on the piezoelectric resonator by depositing a catalyst on a piezoelectric structure, heating the piezoelectric structure and the catalyst to enhance the growth of the carbon nanotubes, and growing the carbon nanotubes at growth sites on the piezoelectric structure.
    Type: Application
    Filed: January 25, 2010
    Publication date: July 29, 2010
    Applicant: The Trustees of the University of Pennsylvania
    Inventors: Gianluca Piazza, Alan T. Johnson, Matteo Rinaldi, Chiara Zuniga