Patents by Inventor Paul T. DiCarlo

Paul T. DiCarlo 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: 10389350
    Abstract: Disclosed herein are switching or other active FET configurations that implement a main-auxiliary branch design. Such designs include a circuit assembly for performing a switching function that includes a branch including a main path in parallel with an auxiliary path, both the main path and the auxiliary path having a plurality of field-effect transistors. The circuit assembly also includes a first gate bias network connected to the main path. The circuit assembly also includes a second gate bias network connected to a first subset of the plurality of FETs of the auxiliary path. The circuit assembly also includes a third gate bias network connected to a second subset of the plurality of FETs of the auxiliary path, the second gate bias network and the third gate bias network being independently configurable to improve linearity of the switching function.
    Type: Grant
    Filed: September 26, 2017
    Date of Patent: August 20, 2019
    Assignee: SKYWORKS SOLUTIONS, INC.
    Inventors: Hailing Wang, Dylan Charles Bartle, Hanching Fuh, Jerod F. Mason, David Scott Whitefield, Paul T. DiCarlo
  • Patent number: 10381985
    Abstract: Envelope tracking can be employed to reduce power consumption of a power amplifier, but envelope tracking can introduce nonlinearities to a power amplifier. These nonlinearities can manifest themselves as noise at the output of the power amplifier. Embodiments described herein provide techniques for characterizing a parameter indicative of power amplifier noise when envelope tracking is employed. Measurement of this parameter can permit power amplifier designers to decide whether to forgo envelope tracking if a power amplifier is too susceptible to such noise, redesign the power amplifier to improve compatibility with envelope tracking, or to employ distortion compensation circuitry to reduce the noise output by the power amplifier. Counterintuitively, this distortion compensation circuitry may involve increasing the power, such as the envelope tracking power supply. However, increasing the power may be a desirable trade-off for increased linearity.
    Type: Grant
    Filed: September 11, 2018
    Date of Patent: August 13, 2019
    Assignee: Skyworks Solutions, Inc.
    Inventors: Yu Zhu, Oleksiy Klimashov, Dylan C. Bartle, Paul T. DiCarlo
  • Patent number: 10381983
    Abstract: Disclosed herein are circuits, devices and methods that address challenges associated with power amplifier systems. A power amplifier system includes two or more fast error amplifiers coupled to corresponding power amplifiers. The fast error amplifiers are configured to generate envelope tracking signals based on a signal envelope, the envelope tracking signals modifying a DC-DC regulated voltage from a DC-DC converter to more efficiently operate the power amplifiers. By splitting the envelope tracking between two or more fast error amplifiers and amplification between corresponding two or more power amplifiers, the power, frequency or bandwidth, linearity, signal-to-noise ratio, efficiency, or the like of the power amplifier system can be improved. Wireless communications configurations with such power amplifier systems can provide uplink carrier aggregation and/or cellular signals based on standards and protocols that require increased bandwidth and/or power.
    Type: Grant
    Filed: November 13, 2017
    Date of Patent: August 13, 2019
    Assignee: SKYWORKS SOLUTIONS, INC.
    Inventors: Florinel G. Balteanu, Serge Francois Drogi, Boshi Jin, Paul T. DiCarlo
  • Patent number: 10361697
    Abstract: Disclosed herein are systems and methods for reducing intermodulation distortion (IMD) in switches using parallel distorter circuits. A switch circuit can include having a switch arm and a distorter arm that is configured to act as a compensation circuit to compensate for non-linearities in the switch arm. The switch circuit can include a plurality of FETs in the switch arm configured to provide switching functionality. The distorter arm is configured to compensate for a non-linearity effect generated by the FETs of the switch arm when it is in an ON state. The distorter arm is configured to compensate for the non-linearity effect generated by the switch arm independent of the frequency of the signal received by the switch arm. Various configurations of switch arms and distorter arms can be implemented to reduce harmonic distortion as well as intermodulation distortion.
    Type: Grant
    Filed: December 22, 2017
    Date of Patent: July 23, 2019
    Assignee: SKYWORKS SOLUTIONS, INC.
    Inventors: Yu Zhu, Hanching Fuh, Oleksiy Klimashov, Dylan Charles Bartle, Paul T. DiCarlo
  • Publication number: 20190190462
    Abstract: A linearization circuit that reduces intermodulation distortion in an amplifier output receives a first signal that includes a first frequency and a second frequency and generates a difference signal having a frequency approximately equal to the difference of the first frequency and the second frequency. The linearization circuit generates an envelope signal based at least in part on a power level of the first signal and adjusts a magnitude of the difference signal based on the envelope signal. When the amplifier receives the first signal at an input terminal and the adjusted signal at a second terminal, intermodulation between the adjusted signal and the first signal cancels at least a portion of the intermodulation products that result from the intermodulation of the first frequency and the second frequency.
    Type: Application
    Filed: December 19, 2018
    Publication date: June 20, 2019
    Inventors: Yu Zhu, Boshi Jin, Steven Christopher Sprinkle, Florinel G. Balteanu, Oleksiy Klimashov, Dylan Charles Bartle, Paul T. DiCarlo
  • Publication number: 20190190461
    Abstract: A linearization circuit reduces intermodulation distortion in an amplifier that includes a first stage and a second stage. The linearization circuit receives a first signal that includes a first frequency and a second frequency and generates a difference signal having a frequency approximately equal to the difference of the first frequency and the second frequency, generates an envelope signal based at least in part on a power level of the first signal, and adjusts a magnitude of the difference signal based on the envelope signal. When the amplifier receives the first signal at an input terminal, the first stage receives the adjusted signal, and the second stage does not receive the adjusted signal, intermodulation between the adjusted signal and the first signal cancels at least a portion of the intermodulation between the first frequency and the second frequency from the output of the amplifier.
    Type: Application
    Filed: December 17, 2018
    Publication date: June 20, 2019
    Inventors: Yu Zhu, Dylan Charles Bartle, Oleksiy Kimashov, Paul T. DiCarlo
  • Publication number: 20190144266
    Abstract: Discharge circuits, devices and methods. In some embodiments, a MEMS device can include a substrate and an electromechanical assembly implemented on the substrate. The MEMS device can further include a discharge circuit implemented relative to the electromechanical assembly. The discharge circuit can be configured to provide a preferred arcing path during a discharge condition affecting the electromechanical assembly. The MEMS device can be, for example, a switching device, a capacitance device, a gyroscope sensor device, an accelerometer device, a surface acoustic wave (SAW) device, or a bulk acoustic wave (BAW) device. The discharge circuit can include a spark gap assembly having one or more spark gap elements configured to facilitate the preferred arcing path.
    Type: Application
    Filed: November 13, 2018
    Publication date: May 16, 2019
    Inventors: Jerod F. MASON, Dylan Charles BARTLE, David Scott WHITEFIELD, David T. PETZOLD, Dogan GUNES, Paul T. DICARLO
  • Publication number: 20190123690
    Abstract: Disclosed herein are amplification systems that are dynamically biased based on a signal indicative of differential envelope of an input radio-frequency (RF) signal being amplified. The amplification systems include a cascode amplifier configured to amplify the RF signal to generate an output RF signal when one of the transistors of the cascode amplifier is biased by a combination of the input RF signal and a biasing signal while the other transistor of the cascode amplifier is biased by a processed differential envelope signal. The cascode amplifier also receives a combination of a processed differential envelope signal and a supply voltage to generate the output RF signal. The biasing signal can improve or enhance the linearity of amplification systems.
    Type: Application
    Filed: December 15, 2018
    Publication date: April 25, 2019
    Inventors: Florinel G. BALTEANU, Paul T. DICARLO, Boshi JIN, Serge Francois DROGI
  • Patent number: 10270394
    Abstract: Embodiments described herein relate to an envelope tracking system that uses a single-bit digital signal to encode an analog envelope tracking control signal, or envelope tracking signal for brevity. In certain embodiments, the envelope tracking system can estimate or measure the amplitude of the baseband signal. The envelope tracking system can further estimate the amplitude of the envelope of the RF signal. The system can convert the amplitude of the envelope signal to a single-bit digital signal, typically at a higher, oversample rate. The single-bit digital signal can be transmitted in, for example, a low-voltage differential signaling (LVDS) format, from a transceiver to an envelope tracker. An analog-to-digital converter (ADC or A/D) can convert the single-bit digital signal back to an analog envelope signal. Moreover, a driver can increase the power of the A/D output envelope signal to produce an envelope-tracking supply voltage for a power amplifier.
    Type: Grant
    Filed: December 28, 2016
    Date of Patent: April 23, 2019
    Assignee: Skyworks Solutions, Inc.
    Inventors: Serge Francois Drogi, Florinel G. Balteanu, Luigi Panseri, Craig Joseph Christmas, Paul T. DiCarlo
  • Publication number: 20190058446
    Abstract: Envelope tracking can be employed to reduce power consumption of a power amplifier, but envelope tracking can introduce nonlinearities to a power amplifier. These nonlinearities can manifest themselves as noise at the output of the power amplifier. Embodiments described herein provide techniques for characterizing a parameter indicative of power amplifier noise when envelope tracking is employed. Measurement of this parameter can permit power amplifier designers to decide whether to forgo envelope tracking if a power amplifier is too susceptible to such noise, redesign the power amplifier to improve compatibility with envelope tracking, or to employ distortion compensation circuitry to reduce the noise output by the power amplifier. Counterintuitively, this distortion compensation circuitry may involve increasing the power, such as the envelope tracking power supply. However, increasing the power may be a desirable trade-off for increased linearity.
    Type: Application
    Filed: September 11, 2018
    Publication date: February 21, 2019
    Inventors: Yu Zhu, Oleksiy Klimashov, Dylan C. Bartle, Paul T. DiCarlo
  • Patent number: 10205426
    Abstract: A linearization circuit reduces intermodulation distortion in an amplifier that includes a first stage and a second stage. The linearization circuit receives a first signal that includes a first frequency and a second frequency and generates a difference signal having a frequency approximately equal to the difference of the first frequency and the second frequency, generates an envelope signal based at least in part on a power level of the first signal, and adjusts a magnitude of the difference signal based on the envelope signal. When the amplifier receives the first signal at an input terminal, the first stage receives the adjusted signal, and the second stage does not receive the adjusted signal, intermodulation between the adjusted signal and the first signal cancels at least a portion of the intermodulation between the first frequency and the second frequency from the output of the amplifier.
    Type: Grant
    Filed: August 17, 2017
    Date of Patent: February 12, 2019
    Assignee: Skyworks Solutions, Inc.
    Inventors: Yu Zhu, Dylan Charles Bartle, Oleksiy Klimashov, Paul T. DiCarlo
  • Patent number: 10181820
    Abstract: Disclosed herein are power amplification systems that are dynamically biased based on a signal indicative of an envelope of the signal being amplified. The power amplification systems include a power amplifier configured to amplify an input radio-frequency (RF) signal to generate an output RF signal when biased by a biasing signal. The power amplification systems also include a bias component configured to generate the biasing signal based on an envelope signal indicative of an envelope of the input RF signal. The biasing signal can improve or enhance the linearity of the power amplification systems.
    Type: Grant
    Filed: May 16, 2017
    Date of Patent: January 15, 2019
    Assignee: SKYWORKS SOLUTIONS, INC.
    Inventors: Florinel G. Balteanu, Paul T. DiCarlo, Boshi Jin, Serge Francois Drogi
  • Patent number: 10164582
    Abstract: A linearization circuit that reduces intermodulation distortion in an amplifier output receives a first signal that includes a first frequency and a second frequency and generates a difference signal having a frequency approximately equal to the difference of the first frequency and the second frequency. The linearization circuit generates an envelope signal based at least in part on a power level of the first signal and adjusts a magnitude of the difference signal based on the envelope signal. When the amplifier receives the first signal at an input terminal and the adjusted signal at a second terminal, intermodulation between the adjusted signal and the first signal cancels at least a portion of the intermodulation products that result from the intermodulation of the first frequency and the second frequency.
    Type: Grant
    Filed: November 20, 2017
    Date of Patent: December 25, 2018
    Assignee: Skyworks Solutions, Inc.
    Inventors: Yu Zhu, Boshi Jin, Steven Christopher Sprinkle, Florinel G. Balteanu, Oleksiy Klimashov, Dylan Charles Bartle, Paul T. DiCarlo
  • Publication number: 20180337670
    Abstract: A radio frequency signal switch is provided and includes an input port and an output port with a signal path including a transistor coupled between the input port and the output port. A first shunt circuit, also including a transistor, has a terminal coupled to the signal path and another terminal coupled to a reference node, and a second shunt circuit including a varactor has a terminal coupled to the signal path and another terminal coupled to the reference node.
    Type: Application
    Filed: May 16, 2018
    Publication date: November 22, 2018
    Inventors: Yu Zhu, Dylan Charles Bartle, Paul T. DiCarlo
  • Publication number: 20180331657
    Abstract: Aspects of this disclosure relate to a radio frequency system that includes an envelope generator configured to generate an envelope signal corresponding to an envelope of a radio frequency signal and at least two radio frequency components coupled to the envelope generator. One of the radio frequency components is a radio frequency switch configured to pass the radio frequency signal. The radio frequency switch is configured to receive the envelope signal to cause intermodulation distortion associated with the radio frequency switch to be reduced.
    Type: Application
    Filed: April 9, 2018
    Publication date: November 15, 2018
    Inventors: Yu Zhu, Oleksiy Klimashov, Hailing Wang, Dylan Charles Bartle, Paul T. DiCarlo
  • Patent number: 10125011
    Abstract: MEMS devices having discharge circuits. In some embodiments, a MEMS device can include a substrate and an electromechanical assembly implemented on the substrate. The MEMS device can further include a discharge circuit implemented relative to the electromechanical assembly. The discharge circuit can be configured to provide a preferred arcing path during a discharge condition affecting the electromechanical assembly. The MEMS device can be, for example, a switching device, a capacitance device, a gyroscope sensor device, an accelerometer device, a surface acoustic wave (SAW) device, or a bulk acoustic wave (BAW) device. The discharge circuit can include a spark gap assembly having one or more spark gap elements configured to facilitate the preferred arcing path.
    Type: Grant
    Filed: April 13, 2015
    Date of Patent: November 13, 2018
    Assignee: Skyworks Solutions, Inc.
    Inventors: Jerod F. Mason, Dylan Charles Bartle, David Scott Whitefield, David T. Petzold, Dogan Gunes, Paul T. DiCarlo
  • Publication number: 20180308810
    Abstract: Disclosed are systems, devices and methods for providing electrostatic discharge (ESD) protection for integrated circuits. In some implementations, first and second conductors with ohmic contacts on an intrinsic semiconductor region can function similar to an x-i-y type diode, where each of x and y can be n-type or p-type. Such a diode can be configured to turn on under selected conditions such as an ESD event. Such a structure can be configured so as to provide an effective ESD protection while providing little or substantially nil effect on radio-frequency (RF) operating properties of a device.
    Type: Application
    Filed: June 7, 2018
    Publication date: October 25, 2018
    Inventors: Kim Rene Smith, Paul T. DiCarlo, Michael David Hill
  • Publication number: 20180302054
    Abstract: Apparatus and methods for biasing of power amplifiers are disclosed. In one embodiment, a mobile device includes a transceiver that generates a radio frequency signal and a power amplifier enable signal, a power amplifier that provides amplification to the radio frequency signal and that is biased by a bias signal, and a bias circuit that receives the power amplifier enable signal and generates the bias signal. The bias circuit includes a gain correction circuit that generates a correction current in response to activation of the power amplifier enable signal, and a primary biasing circuit that generates the bias signal based on the correction current and the power amplifier enable signal.
    Type: Application
    Filed: February 27, 2018
    Publication date: October 18, 2018
    Inventors: Ping Li, Paul T. DiCarlo
  • Patent number: 10103693
    Abstract: Envelope tracking can be employed to reduce power consumption of a power amplifier, but envelope tracking can introduce nonlinearities to a power amplifier. These nonlinearities can manifest themselves as noise at the output of the power amplifier. Embodiments described herein provide techniques for characterizing a parameter indicative of power amplifier noise when envelope tracking is employed. Measurement of this parameter can permit power amplifier designers to decide whether to forgo envelope tracking if a power amplifier is too susceptible to such noise, redesign the power amplifier to improve compatibility with envelope tracking, or to employ distortion compensation circuitry to reduce the noise output by the power amplifier. Counterintuitively, this distortion compensation circuitry may involve increasing the power, such as the envelope tracking power supply. However, increasing the power may be a desirable trade-off for increased linearity.
    Type: Grant
    Filed: September 28, 2016
    Date of Patent: October 16, 2018
    Assignee: SKYWORKS SOLUTIONS, INC.
    Inventors: Yu Zhu, Oleksiy Klimashov, Dylan C. Bartle, Paul T. DiCarlo
  • Publication number: 20180278214
    Abstract: A power amplifier can include a carrier amplifier having first and second differential amplification cells with outputs coupled by a primary loop of a carrier transformer, and a peaking amplifier having first and second differential amplification cells with outputs coupled by a primary loop of a peaking transformer. The power amplifier can further include a combiner having a quarter-wave circuit implemented between the secondary loop of the carrier transformer and a secondary loop of the peaking transformer. The quarter-wave circuit can be configured to provide a characteristic impedance, such that the carrier and peaking amplifiers are presented with an impedance that is approximately the same as the characteristic impedance when both of the carrier and peaking amplifiers are turned on, and the carrier amplifier is presented with an impedance that is approximately twice the characteristic impedance when the carrier amplifier is turned on and the peaking amplifier is turned off.
    Type: Application
    Filed: September 26, 2017
    Publication date: September 27, 2018
    Inventors: Boshi JIN, Jing-Hwa CHEN, Paul T. DICARLO, Steven Christopher SPRINKLE, Florinel G. BALTEANU, David Scott WHITEFIELD