Patent classifications
A61B2562/12
IN-BODY POWER SOURCE HAVING HIGH SURFACE AREA ELECTRODE
Power sources that enable in-body devices, such as implantable and ingestible devices, are provided. Aspects of the in-body power sources of the invention include a solid support, a first high surface area electrode and a second electrode. Embodiments of the in-power sources are configured to emit a detectable signal upon contact with a target physiological site. Also provided are methods of making and using the power sources of the invention.
HEALTH MONITORING DEVICE INCLUDING PINNED PHOTODIODE
The invention relates to a photoplethysmography (PPG) sensing device comprising—a pulsed light source, —at least one pixel to create photo-generated electrons, synchronized with said pulsed light source. It is mainly characterized in that each pixel comprises: —a pinned photodiode (PPD) having two electronic connection nodes, —a sense node (SN), to convert the photo-generated electrons into a voltage, and—a Transfer Gate (TGtransfer) transistor, having its source electronically connected to one electronic connection node of said pinned photodiode (PPD), and being configured to act as a transfer gate (TG) between said pinned photodiode (PPD) and said sense node (SN), allowing the photo-generated electrons to sink when the light is pulsed-off, the photo-generated electrons integration when the light is pulsed-on and the transfer of at least part of the integrated photo-generated electrons to said sense node for a read-out.
BANDAGE\E-TATTOO COMBINATION
Embodiments disclosed herein relate to devices and methods for monitoring one or more physiological parameters of a subject. In an embodiment, a wearable device comprises a substrate configured to be attached to a subject's skin. The substrate comprises a middle portion arranged between two end portions. The wearable device also comprises a physiological sensor. The physiological sensor is configured to sense a physiological signal of the subject when the wearable device is attached to the subject's skin. And, the wearable device comprises one or more electrical components arranged on at least one of the end portions, wherein at least one of the one or more electrical components is coupled to the physiological sensor.
FOCUSED STERILIZATION AND STERILIZED SUBASSEMBLIES FOR ANALYTE MONITORING SYSTEMS
- Christopher A. Thomas ,
- Louis Pace ,
- Dharmendra Patel ,
- Vincent M. Dipalma ,
- Vivek S. Rao ,
- Steven T. MITCHELL ,
- Byron J. Lambert ,
- Peter G. Robinson ,
- Peter M. Voit ,
- Stephen T. Pudjijanto ,
- Matthew Siimmons ,
- Hsuehchieh Wu ,
- Vu H. Le ,
- Johnathan D. Manion ,
- Christopher M. Harris ,
- Tuan Nguyen ,
- Phillip W. Carter ,
- Jonathan D. MCCANLESS
A system includes a sensor applicator, a sensor control device arranged within the sensor applicator and including an electronics housing and a sensor extending from a bottom of the electronics housing, and a cap coupled to one of the sensor applicator and the sensor control device, wherein the cap is removable prior to deploying the sensor control device from the sensor applicator.
SYSTEMS AND METHODS FOR LOW POWER PULSE OXIMETRY
Methods and systems are provided for lowering power consumption in an optical sensor, such as a pulse oximeter. In one example, a method for an optical sensor includes illuminating a light emitter of the optical sensor according to set sensor parameters, the sensor parameters set based on hardware noise or external interference characterization and light transmission or reflection of a tissue contributing to a signal output by the optical sensor, the sensor parameters including current drive parameters of the light emitter, and adjusting the current drive parameters of the light emitter to maintain a target signal to noise ratio of the signal output by the optical sensor.
MEDICAL PATCH
A medical patch configured for being applied to a patient and for communicating with an in-vivo device located within the patient’s body; The medical patch comprises an adhesive surface configured for adhering the patch to the patient’s skin; and a communication arrangement configured for providing communication between the medical patch and the in-vivo device.
XYLITOL-DOPED CITRATE COMPOSITIONS AND USES THEREOF
The present disclosure provides compositions which may be used as tissue engineering materials, and more particularly xylitol-doped citrate polymer compositions which may be useful as bone grafts.
NON-INVASIVE METHOD AND DEVICE FOR CONTINUOUS SWEAT INDUCTION AND COLLECTION
Systems and methods for a microfluidic biosensor patch and health monitoring system may include an iontophoresis module, a multi-inlet microfluidic sweat collection and sampling module, and a molecularly imprinted polymer (MIP) organic compound sensor module. An iontophoresis module may provide for stimulation of a biofluid sample. A biofluid may be a sweat sample. Stimulation may be achieved via electrostimulation and/or application of a stimulating agent. A microfluidic sweat collection and sample module may include several adhesive layers with carefully designed inlets, channels, a reservoir, and an outlet for the efficient collection and sampling of biofluid. A MIP sensor module may quickly and accurately identify concentrations of key metabolites present in a biofluid sample which may indicate certain health conditions.
In-body power source having high surface area electrode
Power sources that enable in-body devices, such as implantable and ingestible devices, are provided. Aspects of the in-body power sources of the invention include a solid support, a first high surface area electrode and a second electrode. Embodiments of the in-power sources are configured to emit a detectable signal upon contact with a target physiological site. Also provided are methods of making and using the power sources of the invention.
Wearable Device, Perspiration Analysis Device, and Perspiration Analysis Method
A wearable device attached to a living body includes a substrate that forms a first flow path, a second flow path, and a third flow path, a light source that is disposed on the substrate and emits light toward the second flow path, and a light receiving element that is disposed on the substrate to face the light source, receives the light emitted from the light source and transmitted through the second flow path, converts the received light into an electrical signal, and outputs the electrical signal.