A61N1/37229

IMPLANTABLE MEDICAL DEVICE WITH MODULAR INJECTION MOLDED HEADER ASSEMBLY AND RELATED METHODS OF MANUFACTURE
20170266451 · 2017-09-21 ·

Disclosed herein is an implantable electronic device. In one embodiment, the device has a modular header-feedthru assembly and a housing. The modular header-feedthru assembly has a conductor assembly, a feedthru coupled to the conductor assembly, and a polymer header that is injected molded about the conductor assembly and at least a portion of the feedthru. The housing is welded to the feedthru.

Extracorporeal implant controllers

Apparatus, comprising (1) a first controller comprising at least one first-controller antenna configured to transmit a first wireless power signal having a first signal power; and a first-controller control unit configured to use battery power to drive the first-controller antenna; (2) a second controller, comprising at least one second-controller antenna, configured to transmit a second wireless power signal having a second signal power; and a second-controller control unit, configured to use mains electricity power to drive the second-controller antenna; and (3) an implant, comprising one or more electrodes; at least one implant antenna configured to receive 1-10 percent of the first signal power, and to receive 0.01-1 percent of the second signal power; and circuitry configured to drive the one or more electrodes responsively to the received 1-10 percent of the first signal power, or the received 0.01-1 percent of the second signal power.

WIRELESS TISSUE ELECTROSTIMULATION

A wireless electrostimulation system can comprise a wireless energy transmission source, and an implantable cardiovascular wireless electrostimulation node. A receiver circuit comprising an inductive antenna can be configured to capture magnetic energy to generate a tissue electrostimulation. A tissue electrostimulation circuit, coupled to the receiver circuit, can be configured to deliver energy captured by the receiver circuit as a tissue electrostimulation waveform. Delivery of tissue electrostimulation can be initiated by a therapy control unit.

Wireless Charging Loop Antenna
20220045421 · 2022-02-10 ·

Provided is a wireless charging loop antenna. The wireless charging loop antenna includes an extracorporal planar loop antenna and an intracorporal planar loop antenna. The intracorporal planar loop antenna is disposed inside a body, and the extracorporal planar loop antenna is disposed on a skin outside the body. The extracorporal planar loop antenna includes an extracorporal antenna substrate, an extracorporal loop radiation patch, paired connection radiation patches and a patch capacitor. The extracorporal loop radiation patch is provided with at least one extracorporal radiation patch gap. The patch capacitor is disposed at one of the at least one extracorporal radiation patch gap. The extracorporal loop radiation patch and the paired connection radiation patches form a circuit. The extracorporal loop radiation patch, the paired connection radiation patches and the patch capacitor are all on a same surface of the extracorporal antenna substrate. The wireless transmission antenna is designed to be planar and multi-loop to reduce the antenna area, and introduces the patch capacitor to increase the energy transmission efficiency.

RECEIVER
20170252143 · 2017-09-07 · ·

Receiver (1), in particular an implantable receiver (1) for transmitting energy to an implant, with a multi-layer circuit board comprising a plurality of electrically conductive layers (11-16), wherein the circuit board comprises an outer coil area and a multi-layer inner area enclosed by the coil area, a coil which is integrally incorporated at least partially in the layers (11-16) of the circuit board in the coil area, wherein the number of the layers (11-16) of the circuit board is smaller within this inner area than in the coil area.

Percutaneous Implantable Pulse Generator
20220233872 · 2022-07-28 ·

A medical apparatus includes a tubular shaped enclosure configured for implantation into a tissue medium; a receiver array with a multitude of receiver elements housed within the enclosure attached to the associated electronics via a flexible circuit board construction, wherein the receiver array is configured to receive one or more electromagnetic input signals of a combination of both power and data from an external transmitter via non-inductive coupling energy transfer, wherein the receiver array is composed of multiple receiver elements, wherein each receiver element within the receiver array includes an electrically small antenna and one or more processor circuits connected to the port of the antenna on the same physical substrate, wherein the receiver array and associated flexible circuit board are directly attached to two or more electrodes that are in direct contact with biological tissue for the purpose of transmitting stimulation pulses to tissue.

IMPLANTABLE PULSE GENERATOR FOR PROVIDING A NEUROSTIMULATION THERAPY USING COMPLEX IMPEDANCE MEASUREMENTS AND METHODS OF OPERATION
20210402192 · 2021-12-30 ·

Embodiments are directed to an implantable medical device comprising therapeutic stimulation circuitry for controlling delivery of a medical therapy to a patient, the therapeutic stimulation circuitry having at least one lead having electrodes for delivering the medical therapy, The implantable medical device further comprises measurement circuitry for determining characteristics of the at least one lead, a processor for controlling the IMD according to executable code, and memory for storing data and executable code, wherein the executable code comprises instructions for causing the processor to receive a plurality of voltage measurements associated with the electrodes, and calculate values for an impedance model of the electrode/tissue interface.

IMPLANTABLE PULSE GENERATOR WITH SUTURE HOLES, METHODS FOR IMPLANTING THE SAME, AND ENCAPSULATION OF EXTERNAL COMPONENTS IN ACTIVE IMPLANTABLE MEDICAL DEVICES
20210402191 · 2021-12-30 ·

An implantable pulse generator is provided that includes a power source, a wireless communication component configured to facilitate wireless communication with a non-implanted device and pulse-generating circuitry connected to the power source. The pulse-generating circuitry can be configured to identify, based on wireless communication with the non-implanted device, temporal and amplitude characteristics for electrical pulse stimuli and to trigger electrical output stimuli having the temporal and amplitude characteristics. The implantable pulse generation can further include one or more lead connections—each being shaped to engage a lead and electrically connected to the pulse-generating circuitry to enable the lead to deliver at least part of the electrical output stimuli triggered by the pulse-generating circuitry. The implantable pulse generator can further include one or more suture-engagement components, each including one or more holes each having a diameter that is at least 0.1 mm and less than 5 mm.

ANTENNA FOR USE WITH RF ENERGY HARVESTING
20210399584 · 2021-12-23 ·

The disclosure describes techniques to provide antennae configured to harvest radio-frequency (RF) energy from the nearby environment to provide electrical energy to an electrically powered device. Antennae may be configured in different shapes, lengths, locations, and materials to efficiently collect RF energy to be converted to electrical power. In some examples, RF energy may be harvested from existing sources, such as FM radio transmissions, communication transmissions such as Wi-Fi and BLUETOOTH, and similar existing sources. In other examples, antennae may be configured to collect energy from a source specifically designated to recharge the device. In some examples, the harvested RF energy may be sufficient to power the device. In other examples, the harvested RF energy may provide enough power to reduce the amount of recharging required by other means, such as by inductive recharging.

RADIO FREQUENCY ENERGY HARVESTING

This disclosure describes devices, systems, and techniques for recharging power sources using RF energy received by one or more antennae. In one example, an implantable medical device includes a rechargeable power supply and an antenna configured to receive radio frequency (RF) energy having one or more frequencies within at least one of a first range from 1 MHz to 20 MHz or a second range from 100 MHz to 700 MHz. The implantable medical device may also include charging circuitry configured to convert the RF energy to a direct current (DC) power and charge the rechargeable power supply with the DC power.