A61F2002/30087

PIEZOELECTRIC COATED IMPLANTS AND METHODS OF USING PIEZOELECTRIC COATED IMPLANTS TO REPAIR BONE STRUCTURES
20210205085 · 2021-07-08 ·

Various embodiments of implant systems and related apparatus, and methods of operating the same are described herein. In various embodiments, an implant for interfacing with a bone structure includes a web structure, including a space truss, configured to interface with human bone tissue. The space truss includes two or more planar truss units having a plurality of struts joined at nodes. Implants are coated with, or have struts formed from, a piezoelectric material to enhance bone growth around and through the implant.

Multi-layer substrate apparatus, systems and methods of assembling same

A multi-layer substrate apparatus includes a first layer configured to provide at least one electrical-based property. A second layer proximate to the first layer is configured to provide at least one mechanical-based property. A third proximate to the second layer includes at least one chemical component such that the third layer is enabled to regulate the multi-layer substrate apparatus based on a system that the multi-layer substrate apparatus is being used with. A fourth layer proximate to the third layer is configured to provide at least one magnetic-based property. A fifth layer proximate to the fourth layer is configured to provide support based on the system that the multi-layer substrate apparatus is being used with. The fifth layer includes a geometric portion that is configured to facilitate at least one process therein.

METHOD FOR MANUFACTURING ARTIFICIAL CARTILAGE AND ARTIFICIAL CARTILAGE MANUFACTURED WITH THE METHOD
20200337848 · 2020-10-29 ·

The present invention includes two methods for manufacturing an artificial cartilage and two types of artificial cartilage manufactured thereby, one of the said artificial cartilages can be utilized through implanting surgery fixed into an individual natural joint of an individual, and the other into an artificial joint of an individual joint of an individual before or during implanting surgery. The present invention is invented based on JOINT-ELECTRICITY THEORY created by the present inventor. After the said artificial cartilage is implanted, it can effectively react to the intra-articular dynamic pressure to continuously cause piezoelectricity effect for continuously generating Joint-Electricity, and to generate a sufficient amount of Joint-Electricity during daily living, so as to reduce pain, improve muscular strength, and speed the recovery of active motion ability after surgery.

BIODEGRADABLE PIEZOELECTRIC NANOFIBER SCAFFOLD FOR BONE OR TISSUE REGENERATION
20200276018 · 2020-09-03 ·

A scaffold comprised of a plurality of PLLA layers, which may include stem cells, for regenerating bone or tissue. The PLLA layers are separated by a plurality of hydrogel layers. The PLLA layers comprise a nanofiber mesh having a piezoelectric constant to apply an electrical charge to the bone or tissue upon application of ultrasound energy.

Prosthetic implant and method for the production of such an implant

A prosthetic implant includes a cavity that opens at an outer face of the prosthetic implant, the cavity forming a housing for receiving: a printed circuit including a radio tag; and a cover which closes the cavity at least partially when positioned on the implant in a so-called closed position, the radio tag and printed circuit being removably housed in the cavity.

System and method for monitoring the health of joints

A system and method for detecting lubrication conditions, lubrication regimes, impingement, stick-slip, and/or surface damage allows the health of a joint to be monitored. The system and method provides in situ or in vivo real-time monitoring of dynamic and static conditions of the joint. The monitoring system may use both passive and active sensing approaches that employ strategically placed piezoelectric transducers on/in the articulating components of the joint. In some embodiments, the transducers may be Lead Zirconate Titanate (PZT) transducers. Active sensing may be used to detect lubrication regimes under static and dynamic conditions. Passive sensing may be used to characterize the joint motion and abnormities, such as impingements and surface damages.

MULTI-LAYER SUBSTRATE APPARATUS, SYSTEMS AND METHODS OF ASSEMBLING SAME
20200179119 · 2020-06-11 ·

A multi-layer substrate apparatus includes a first layer configured to provide at least one electrical-based property. A second layer proximate to the first layer is configured to provide at least one mechanical-based property. A third proximate to the second layer includes at least one chemical component such that the third layer is enabled to regulate the multi-layer substrate apparatus based on a system that the multi-layer substrate apparatus is being used with. A fourth layer proximate to the third layer is configured to provide at least one magnetic-based property. A fifth layer proximate to the fourth layer is configured to provide support based on the system that the multi-layer substrate apparatus is being used with. The fifth layer includes a geometric portion that is configured to facilitate at least one process therein.

System for the wireless transmission of energy and/or signals, the conversion of energy and/or signals into other forms of energy and/or forms of signal, and the application and detection of same in peripheral regions of said system

Discloses is a system for the wireless transmission of energy and/or signals between spatially-separated regions with no electrically-conductive connection, the conversion of energy and/or signals into other forms of energy and/or forms of signal, and the application and/or detection of same in at least one peripheral region of said system. The system allows a wireless transmission of energy between at least two spatially-separated regions without an electrically-conductive connection, energy being supplied to at least one of these regions, transmitted to at least one additional region in a wireless manner, converted on demand into other forms of energy, and applied in a peripheral region of said system. Signals can be transmitted at the same time as energy is being transmitted.

Materials For Piezoelectric Implants, and Methods of Poling Materials for Piezoelectric Response for Bone Growth Stimulation
20240058504 · 2024-02-22 · ·

Disclosed are exemplary embodiments of materials for piezoelectric implants. Also disclosed are exemplary methods of poling materials for piezoelectric response for bone growth stimulation. Additional exemplary embodiments are disclosed of piezoelectric implants comprising such materials.

PIEZOELECTRIC COMPOSITES AND METHODS OF MAKING
20190365541 · 2019-12-05 ·

There is a need for methods that can produce piezoelectric composites having suitable physical characteristics and also optimized electrical stimulatory proper-ties. The present application provides piezo-electric composites, including tissue-stimu-lating composites, as well as methods of making such composites, that meet these needs. In embodiments, methods of making a spinal implant are provided. The methods suitably comprise preparing a thermoset, thermoplastic or thermoset/thermoplastic, or copolymer polymerizable matrix, dispersing a plurality of piezoelectric particles in the polymerizable matrix to generate dispersion, shaping the dispersion, inducing an electric polarization in the piezoelectric particles in the shaped dispersion, wherein at least 40% of the piezoelectric particles form chains.