G01N2333/00

ACTIVE REMOTE SENSING SYSTEM USING TIME-OF-FLIGHT SENSOR WITH APPLICATIONS TO CAMERAS AND VEHICLE OR AIRBORNE PLATFORMS
20220308034 · 2022-09-29 ·

An active remote sensing system is provided with an array of laser diodes that generate light directed to an object having one or more optical wavelengths that include at least one near-infrared wavelength between 600 nanometers and 1000 nanometers. One of the laser diodes pulses at a modulation frequency between 10 Megahertz and 1 Gigahertz and has a phase associated with the modulation frequency. A detection system includes a photo-detector, a lens, a spectral filter at an input to the photo-detector, and a processor that processes digitized signals received from the photo-detector to generate an output signal. The detection system uses a lock-in technique that synchronizes pulsing the one laser diode. The active remote sensing system is configured to be mounted on a vehicle or an airborne platform to provide distance information based on a time-of-flight measurement.

METHOD AND DEVICE FOR MEASURING THE STATUS OF OXIDATIVE STRESS IN A BIOLOGICAL MATRIX
20220031230 · 2022-02-03 ·

Methods and devices for measuring the status of oxidative stress on the surface or in a biological matrix involve use of at least one compound selected from NADH, NADPH, Cyt C (Fe.sup.2+) or H.sub.2O.sub.2.

OBSERVATION APPARATUS, MEASUREMENT SYSTEM, CULTURE VESSEL AND CONTROL METHOD FOR OBSERVATION APPARATUS
20170280051 · 2017-09-28 ·

An observation apparatus includes a casing, an imaging unit, a driving mechanism and a processor. The casing includes a transparent plate and is configured to hold a sample placed on the transparent plate. The imaging unit is provided inside the casing and generates image data by taking an image through the transparent plate. The driving mechanism is provided inside the casing and moves the imaging unit. The processor assists control of sample imaging, based on image data which the imaging unit generates by imaging a code.

Methods for Detection and Treatment of Colorectal Cancer

This invention provides methods, reagents, and diagnostic and prognostic markers useful for minimally invasive identification, diagnosis, and therapeutic intervention in individuals with colorectal cancers, or individuals who may be susceptible to developing colorectal cancers.

Electrode and use thereof

The application relates to an electrode for use in the electrochemical detection of a target species, wherein the electrode has a planar surface disposed on which are probe molecules that are capable of binding selectively to the target species, wherein the electrode, prior to binding of the probe molecules with the target species, has an electron transfer resistance per area of the electrode of from 10 megaohms cm.sup.−2 to 95 megaohms cm.sup.−2.

Method for liposome preparation by centrifugation

Methods and devices for producing a population of liposomes are provided. Aspects of the methods include applying a centrifugal force to a suspension of liposomes in a manner sufficient to pass the liposomes through a porous membrane to produce a population of liposomes. Aspects of the invention further include devices, systems and kits useful for performing the methods.

TIME-OF-FLIGHT IMAGING AND PHYSIOLOGICAL MEASUREMENTS
20220160234 · 2022-05-26 ·

A measurement system is provided with an array of laser diodes with one or more Bragg reflectors. At least a portion of the light generated by the array is configured to penetrate tissue comprising skin. A detection system configured to: measure a phase shift, and a time-of-flight, of at least a portion of the light from the array of laser diodes reflected from the tissue relative to the portion of the light generated by the array; generate one or more images of the tissue; detect oxy- or deoxy-hemoglobin in the tissue; non-invasively measure blood in blood vessels within or below a dermis layer within the skin; measure one or more physiological parameters based at least in part on the non-invasively measured blood; and measure a variation in the blood or physiological parameter over a period of time.

Active remote sensing system using time-of-flight sensor combined with cameras and wearable devices
11678805 · 2023-06-20 · ·

An active remote sensing system is provided with an array of laser diodes that generate light directed to an object having one or more optical wavelengths that include at least one near-infrared wavelength between 700 nanometers and 2500 nanometers. One of the laser diodes pulses with pulse duration of approximately 0.5 to 2 nanoseconds at repetition rate between one kilohertz and about 100 megahertz. A beam splitter receives the laser light, separates the light into a plurality of spatially separated lights and directs the lights to the object. A detection system includes a photodiode array synchronized to the array of laser diodes and performs a time-of-flight measurement by measuring a temporal distribution of photons received from the object. The time-of-flight measurement is combined with images from a camera system, and the remote sensing system is configured to be coupled to a wearable device, a smart phone or a tablet.

Wearable device coupled to time-of-flight imaging system
11564577 · 2023-01-31 · ·

An optical system measures one or more physiological parameters with a wearable device that includes a light emitting diode (LED) source including a driver and a plurality of semiconductor sources that generate an output optical light. One or more lenses deliver a lens output light to tissue of a user. A detection system receives at least a portion of the lens output light reflected from the tissue and generates an output signal having a signal-to-noise ratio. The detection system comprises a plurality of spatially separated detectors and an analog to digital converter. The detection system increases the signal-to-noised ratio by comparing a first signal with the LEDs off to a second signal with the LEDs on. An imaging system including a Bragg reflector is pulsed and has a near infrared wavelength. A beam splitter splits the light into a sample arm and a reference arm to measure time-of-flight.

Liposomes and methods of production thereof

Methods and devices for producing a population of liposomes are provided. Aspects of the methods include applying a centrifugal force to a suspension of liposomes in a manner sufficient to pass the liposomes through a porous membrane to produce a population of liposomes. Aspects of the invention further include devices, systems and kits useful for performing the methods.