H02M3/075

GENERATING BOOSTED VOLTAGES WITH A HYBRID CHARGE PUMP
20230260580 · 2023-08-17 ·

A hybrid charge pump is disclosed that employs novel arrangements of depletion-mode n-channel semiconductor devices and enhancement-mode p-channel semiconductor devices that eliminate or otherwise substantially reduce voltage drops that would otherwise occur across semiconductor device arrangements in existing charge pumps. As a result, the hybrid charge pump disclosed herein achieves the same output voltages as conventional charge pumps while requiring a reduced physical die area. Additionally, a hybrid charge pump arrangement disclosed herein employs a novel clocking scheme that reduces or eliminates reverse currents in the hybrid charge pump arrangement.

Pump capacitor configuration for switched capacitor circuits
11316425 · 2022-04-26 · ·

A cascade multiplier includes a switch network having switching elements, a phase pump, and a network of pump capacitors coupled with the phase pump and to the switch network. The network of pump capacitors includes first and second capacitors, both of which have one terminal DC coupled with the phase pump, and a third capacitor coupled with the phase pump through the first capacitor.

CHARGE ADJUSTMENT TECHNIQUES FOR SWITCHED CAPACITOR POWER CONVERTER

An apparatus for converting a first voltage into a second voltage includes a reconfigurable switched capacitor power converter having a selectable conversion gain. The power converter has switch elements configured to electrically interconnect capacitors to one another and/or to the first or second voltage in successive states. The switch elements are configured to interconnect at least some capacitors to one another through the switch elements. A controller causes the reconfigurable switched capacitor power converter to transition between first and second operation modes. The controller minimizes electrical transients arising from transition between modes. In the first operating mode, the power converter operates with a first conversion gain. In the second operating mode, it operates with a second conversion gain.

Charge pump stability control
11177735 · 2021-11-16 · ·

During its first and second residence times, corresponding first and second currents flow between a charge pump and a circuit that connects to one of the charge pump's terminals. Based on a feedback measurement from the charge pump, a controller adjusts these first and second currents.

CHARGE ADJUSTMENT TECHNIQUES FOR SWITCHED CAPACITOR POWER CONVERTER

Various embodiments of charge adjustment techniques for a switched capacitor power converter are described. In one example embodiment, briefly, charge adjustment techniques may include a technique to operate a charge pump so as to reduce electrical transient effects that may occur during charge pump transition operation between a first steady state charge pump operation with respect to a first configuration gain mode and a second steady state charge pump operation with respect to a second configuration gain mode. In some instances, electrical transient effects may occur during charge pump transition operation, at least in part, from a selectable adjustment of charge pump configuration gain with respect to a configuration gain mode.

POSITIVE-AND-NEGATIVE-VOLTAGE CHARGE PUMP CIRCUIT, CHIP AND COMMUNICATION TERMINAL

A positive-and-negative-voltage charge pump circuit, comprising a clock generation module, a positive-voltage charge pump module, a transient enhancement module, and a negative-voltage charge pump module. The positive-voltage charge pump module generates a positive voltage according to a clock signal output by the clock generation module, and the transient enhancement module is used to sample the positive voltage and a power supply voltage, and convert same into currents for comparison, such that the negative-voltage charge pump module provides a switchable input voltage according to a comparison result. The negative-voltage charge pump module can quickly and reliably establish a negative voltage according to a clock signal output by the clock generation module, thereby improving the speed and efficiency of the negative-voltage charge pump module generating the negative voltage. Further disclosed are an integrated circuit chip, which comprises the positive-and-negative-voltage charge pump circuit, and a communication terminal.

CHARGE PUMP CIRCUIT
20230155496 · 2023-05-18 · ·

A charge pump circuit is provided. The charge pump circuit includes a dual-phase charge pump, a first load switch, a second load switch, and a control circuit. The dual-phase charge pump performs a voltage pumping operation on a power source in response to a first clock and a second clock to generate a first pumping voltage at a first node and a second pumping voltage at a second node. The control circuit controls the first load switch in response to a third clock and controls the second load switch in response to a fourth clock. In a period during which the first load switch is turned off, the second load switch transfers the first pumping voltage to an output terminal of the charge pump circuit. In a period during which the second load switch is turned off, the first load switch transfers the second pumping voltage to the output terminal.

Charge pump stability control
11527952 · 2022-12-13 · ·

During its first and second residence times, corresponding first and second currents flow between a charge pump and a circuit that connects to one of the charge pump's terminals. Based on a feedback measurement from the charge pump, a controller adjusts these first and second currents.

Generating boosted voltages with a hybrid charge pump

A hybrid charge pump is disclosed that employs novel arrangements of depletion-mode n-channel semiconductor devices and enhancement-mode p-channel semiconductor devices that eliminate or otherwise substantially reduce voltage drops that would otherwise occur across semiconductor device arrangements in existing charge pumps. As a result, the hybrid charge pump disclosed herein achieves the same output voltages as conventional charge pumps while requiring a reduced physical die area. Additionally, a hybrid charge pump arrangement disclosed herein employs a novel clocking scheme that reduces or eliminates reverse currents in the hybrid charge pump arrangement.

Low input supply and low output impedance charge pump circuit configured for positive and negative voltage generation
11522446 · 2022-12-06 · ·

The charge transfer transistors of a positive or negative charge pump are biased at their gate terminals with a control voltage that provides for an higher level of gate-to-source voltage in order to reduce switch resistance in passing a boosted (positive or negative) voltage to a voltage output of the charge pump. This control voltage is generated using a bootstrapping circuit whose polarity of operation (i.e., negative or positive) is opposite to a polarity (i.e., positive or negative) of the charge pump.