Patents by Inventor Luca Perilli

Luca Perilli 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: 20240056060
    Abstract: A circuit includes a clock input node, a first signal input node configured to receive a first modulated signal switching between a first DC voltage and a second DC voltage, a bias circuit, a first output node, a first capacitor, a second capacitor, and switching circuitry coupled to the first capacitor and the second capacitor. Control circuitry is configured to initially set the switching circuitry in a first configuration in response to the first modulated signal having the second DC voltage, thereby charging the first capacitor to the second DC voltage and charging the second capacitor to the first DC voltage, and subsequently set the switching circuitry in a second configuration in response to an edge detected in the clock signal, thereby producing the first threshold voltage at the first output node after charge redistribution taking place between the first and second capacitors.
    Type: Application
    Filed: July 26, 2023
    Publication date: February 15, 2024
    Inventors: Matteo D'Addato, Alessia Maria Elgani, Luca Perilli, Eleonora Franchi Scarselli, Antonio Gnudi, Roberto Antonio Canegallo, Giulio Ricotti
  • Publication number: 20230318532
    Abstract: In accordance with an embodiment, an envelope detector includes a first transistor having a first current conduction terminal coupled to a first connection node; a second current conduction terminal coupled to an intermediate node; and a control terminal coupled the signal input node and to a biasing node; a second transistor having a first current conduction terminal coupled to the intermediate node; a second current conduction terminal coupled to a second connection node; and a control terminal coupled to the biasing node; and a first temperature compensating transistor that is diode-connected and coupled between a compensation output node and the biasing node. The second connection node is coupled to the compensation output node and the first connection node is coupled to a detector output.
    Type: Application
    Filed: March 28, 2023
    Publication date: October 5, 2023
    Inventors: Alessia Maria Elgani, Matteo D'Addato, Luca Perilli, Eleonora Franchi Scarselli, Antonio Gnudi, Roberto Antonio Canegallo, Giulio Ricotti
  • Patent number: 11342885
    Abstract: In one example, a circuit includes a first node to receive an analog signal that is an amplitude modulated radio-frequency signal for a digital signal. An output node is configured to provide an output signal indicative of rising and falling edges of an envelope of the analog signal. The rising and falling edges are indicative of rising and falling edges of the digital signal. A first current path is disposed between a power supply node and the first node. The first current path includes a first transistor coupled between the first node and a first bias source. The first bias source is coupled between the first transistor and the power supply node. The output node is coupled to a first intermediate node in the first current path between the transistor and the first bias source. A control terminal of the first transistor is coupled to the output node via a feedback network.
    Type: Grant
    Filed: November 27, 2019
    Date of Patent: May 24, 2022
    Assignee: STMICROELECTRONICS S.R.L.
    Inventors: Alessia Maria Elgani, Francesco Renzini, Luca Perilli, Eleonora Franchi Scarselli, Antonio Gnudi, Roberto Canegallo, Giulio Ricotti
  • Publication number: 20200177133
    Abstract: In one example, a circuit includes a first node to receive an analog signal that is an amplitude modulated radio-frequency signal for a digital signal. An output node is configured to provide an output signal indicative of rising and falling edges of an envelope of the analog signal. The rising and falling edges are indicative of rising and falling edges of the digital signal. A first current path is disposed between a power supply node and the first node. The first current path includes a first transistor coupled between the first node and a first bias source. The first bias source is coupled between the first transistor and the power supply node. The output node is coupled to a first intermediate node in the first current path between the transistor and the first bias source. A control terminal of the first transistor is coupled to the output node via a feedback network.
    Type: Application
    Filed: November 27, 2019
    Publication date: June 4, 2020
    Inventors: Alessia Maria Elgani, Francesco Renzini, Luca Perilli, Eleonora Franchi Scarselli, Antonio Gnudi, Roberto Canegallo, Giulio Ricotti
  • Patent number: 9432020
    Abstract: A communication cell for an integrated circuit includes a physical interface configured to supply an input signal (for example, a capacitive signal or an ohmic signal). A receiver circuit operates to receive the capacitive signal and generate a first intermediate signal. A buffer circuit operates to receive the ohmic signal and generate a second intermediate signal. An output stage including a selector device (for example, a multiplexer) configured to receive the first and second intermediate signals and selectively pass only one of those signals to the integrated circuit based on operating condition. The input signal may further be an inductive signal, with the output stage further functioning to selectively pass that signal based on operating condition.
    Type: Grant
    Filed: June 19, 2015
    Date of Patent: August 30, 2016
    Assignee: STMICROELECTRONICS S.R.L.
    Inventors: Roberto Canegallo, Luca Perilli, Luca Perugini, Salvatore Valerio Cani, Eleonora Franchi
  • Publication number: 20150381177
    Abstract: A communication cell for an integrated circuit includes a physical interface configured to supply an input signal (for example, a capacitive signal or an ohmic signal). A receiver circuit operates to receive the capacitive signal and generate a first intermediate signal. A buffer circuit operates to receive the ohmic signal and generate a second intermediate signal. An output stage including a selector device (for example, a multiplexer) configured to receive the first and second intermediate signals and selectively pass only one of those signals to the integrated circuit based on operating condition. The input signal may further be an inductive signal, with the output stage further functioning to selectively pass that signal based on operating condition.
    Type: Application
    Filed: June 19, 2015
    Publication date: December 31, 2015
    Applicant: STMICROELECTRONICS S.R.L.
    Inventors: Roberto Canegallo, Luca Perilli, Luca Perugini, Salvatore Valerio Cani, Eleonora Franchi
  • Patent number: 8982574
    Abstract: Contactless differential coupling structures can be used to communicate signals between circuits located on separate chips or from one chip to a probing device. The contactless coupling structures avoid problems (breaks, erosion, corrosion) that can degrade the performance of ohmic-type contact pads. The contactless coupling structures comprise pairs of conductive pads placed in close proximity. Differential signals are applied across a first pair of differential pads, and the signals are coupled wirelessly to a mating pair of conductive pads. Circuitry for generating and receiving differential signals is described.
    Type: Grant
    Filed: May 24, 2012
    Date of Patent: March 17, 2015
    Assignee: STMicroelectronics S.R.L.
    Inventors: Mauro Scandiuzzo, Luca Perilli, Roberto Canegallo
  • Publication number: 20120262231
    Abstract: Contactless differential coupling structures can be used to communicate signals between circuits located on separate chips or from one chip to a probing device. The contactless coupling structures avoid problems (breaks, erosion, corrosion) that can degrade the performance of ohmic-type contact pads. The contactless coupling structures comprise pairs of conductive pads placed in close proximity. Differential signals are applied across a first pair of differential pads, and the signals are coupled wirelessly to a mating pair of conductive pads. Circuitry for generating and receiving differential signals is described.
    Type: Application
    Filed: May 24, 2012
    Publication date: October 18, 2012
    Applicant: STMicroelectronics S.r.l
    Inventors: Mauro SCANDIUZZO, Luca Perilli, Roberto CANEGALLO