IP Library Patent Application 13963925
Patent Application
App. No. 13/963,925

MULTIPLEXED / PATHLENGTH RESOLVED NONINVASIVE ANALYZER APPARATUS AND METHOD OF USE THEREOF

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Patent No.
US None
App. No.
13/963,925
Abstract

A noninvasive analyzer apparatus and method of use thereof is described using a plurality of time resolved sample illumination zones coupled to at least one two-dimensional detector array monitoring a plurality of detection zones. Control of illumination times and/or patterns along with selected detection zones yields pathlength resolved groups of spectra. Sectioned pixels and/or zones of the detector are optionally filtered for different light throughput as a function of wavelength. The pathlength resolved groups of spectra are subsequently analyzed to determine an analyte property. Optionally, in the mapping and/or collection phase, incident light is controllably varied in time in terms of any of: sample probe position, incident light solid angle, incident light angle, depth of focus, energy, intensity, and/or detection angle. Optionally, one or more physiological property and/or model property related to a physiological property is used in the analyte property determination.

Claims (74)

1 . An apparatus for noninvasive spectroscopic analysis of a component of a human subject, comprising:

a near-infrared noninvasive analyzer, comprising:

a near-infrared source;

a photon transport system configured to transport photons from said near-infrared source to an illumination zone proximate a subject interface zone;

at least one two-dimensional near-infrared detector array configured to detect diffusely reflected photons from a detection zone proximate the subject interface zone, said two-dimensional near-infrared detector array within ten centimeters of the illumination zone during use; and

a processor configured to convert signals from said two-dimensional near-infrared detector array into a vibrational spectroscopy reading.

2 . The apparatus of claim 1 , said source configured to provide photons at least in a range of 1500 to 1800 nanometers, the photons comprising the diffusely reflected photons detected by said two-dimensional near-infrared detector array during use.

3 . The apparatus of claim 1 , said two-dimensional near-infrared detector array comprising:

at least three columns of detector elements; and

at least three rows of detector elements,

said two-dimensional near-infrared detector array comprising at least indium, gallium, and arsenide.

4 . The apparatus of claim 1 , said noninvasive analyzer further comprising:

a two-dimensional transmittance filter array, each element of said transmittance filter array optically coupled to at least one detector element of said two-dimensional near-infrared detector array.

5 . The apparatus of claim 4 , wherein each element of said transmittance filter array optically couples to at least three detector elements of said two-dimensional near-infrared detector array.

6 . The apparatus of claim 5 , further comprising:

said two-dimensional transmittance filter array comprising at least two distinct optical filters differing by at least twenty percent transmittance at at least one wavelength in a range of 1100 to 2500 nm.

7 . The apparatus of claim 4 , said two-dimensional transmittance filter array further comprising:

at least two filter types, comprising:

a first filter comprising a first cut-on transmittance inflection point at a first wavelength in a range of 1200 to 2500 nanometers;

a second filter comprising a second cut-on transmittance inflection point at a second wavelength, said second wavelength at least one hundred nanometers shorter than said first wavelength,

said first filter positioned closer to the illumination zone than said second filter.

8 . The apparatus of claim 1 , further comprising:

a two-dimensional detector optic array each element of said two-dimensional detector optic array optically coupled to at least one detector element of said two-dimensional near-infrared detector array; and

a two-dimensional transmittance filter array, each element of said transmittance filter array optically coupled to at least one detector element of said two-dimensional near-infrared detector array.

9 . The apparatus of claim 1 , said two-dimensional near-infrared detector array further comprising:

a first optic configured to collect light from a first area of the detection zone, said first optic configured to focus light onto at least a first detection element of said two-dimensional near-infrared detector array;

a second optic configured to collect light from a second area of the detection zone, the second area at least twenty percent larger than the first area, said second optic configured to focus light onto at least a second detection element of said two-dimensional near-infrared detector array.

10 . The apparatus of claim 9 , said first optic configured to direct light on a first path comprising a vector component away from a center of the illumination zone, said second optic configured to direct light on a second path comprising a vector component toward a center of the illumination zone.

11 . The apparatus of claim 1 , said photon transport system further comprising:

a first optic optically coupled to a first line of detection elements of said two-dimensional near-infrared detector array; and

a second optic optically coupled to a second line of detection elements of said two-dimensional near-infrared detector array, said first optic comprising a first transmittance differing from a second transmittance of said second optic by at least twenty percent at at least three wavelengths separated from each other by at least one hundred nanometers in a range of 1100 to 2500 nm.

12 . The apparatus of claim 1 , further comprising:

an array of optics, individual optical elements of said array of optics optically coupled to individual elements of said two-dimensional near-infrared detector array.

13 . The apparatus of claim 1 , further comprising:

an array of dynamically controllable optics, said array of dynamically controllable optics optically linked to said two-dimensional near-infrared detector array.

14 . The apparatus of claim 1 , said photon transport system further comprising:

a computer controlled optic, said computer controlled optic configured to direct light from said source to physically separated regions of said illumination zone as a function of time during a time period used to determine one concentration of the component.

15 . The apparatus of claim 1 , further comprising:

a first optical filter comprising transmittance of at least sixty percent of light in a range of 1500 to 1700 nm and transmittance of less than twenty percent in a range of 2100 to 2350 nm, said first optical filter optically coupled to a first group of detectors of said two-dimensional near-infrared detector array; and

a second optical filter comprising transmittance of at least sixty percent of light in a range of 2100 to 2300 nm and transmittance of less than twenty percent in a range of 1600 to 1700 nm, said second optical filter optically coupled to a second group of detectors of said two-dimensional near-infrared detector array.

16 . The apparatus of claim 1 , said two-dimensional near-infrared detector array further comprising:

an array of detector wells, wherein a first element of said array of detector wells comprises a first total surface area, wherein a second element of said array of detector wells comprises a second total surface area, said second total surface area at least fifty percent larger than said first total surface area.

17 . The apparatus of claim 1 , said two-dimensional near-infrared detector array comprising a set of detector elements symmetrically positioned about a line through a center of the detection zone and a center of said two-dimensional near-infrared detector array.

18 . The apparatus of claim 1 , said two-dimensional near-infrared detector array comprising a set of detector elements non-symmetrically positioned about a line through a center of the detection zone and a center of said two-dimensional near-infrared detector array.

19 . The apparatus of claim 1 , said noninvasive analyzer further comprising:

a wireless transmitter, and a controller configured to use said wireless transmitter to communicate with a remote personal communication device.

20 . A method for noninvasive spectroscopic analysis of a component of a subject, comprising the steps of:

providing a near-infrared noninvasive analyzer, said analyzer comprising:

a near-infrared source;

a photon transport system; and

a two-dimensional near-infrared detector array;

transporting photons from said near-infrared source to an illumination zone proximate a subject interface zone using said photon transport system;

detecting diffusely reflected photons from a detection zone proximate the subject interface zone using said two-dimensional near-infrared detector array, said two-dimensional near-infrared detector array positioned within ten centimeters of the illumination zone; and

converting signals from said two-dimensional array detector into a vibrational spectroscopy reading using a processor.

21 . The method of claim 20 , further comprising the steps of:

focusing, using a first focusing optic, light collected from a first area of the detection zone onto a first detection element of said two-dimensional near-infrared detector array; and

simultaneously focusing, using a second focusing optic, light collected from a second area of the detection zone onto a second detection element of said two-dimensional near-infrared detector array, the second area at least twenty percent larger than the first area.

22 . The method of claim 20 , further comprising the steps of:

guiding the photons with said photon transport system to a set of mean radial distances from a center of a sample site of the subject;

wherein a first member of said set of mean radial distances, comprises a first distance of less than two and a half millimeters and greater than six hundred micrometers,

wherein a second member of said set of mean radial distances comprises a second distance of less than one millimeter and greater than one-half millimeter, and

wherein a third member of said set of radial distances comprises a third distance of less than one-half millimeter; and

simultaneously detecting the photons traversing through each of said first member, said second member, and said third member of said set of mean radial distances using said two-dimensional near-infrared detector array.

23 . The method of claim 20 , further comprising the steps of:

collecting a plurality of mapping spectra of the subject using a first set of optical configurations;

calculating a metric related to skin tissue physiology of the subject using the mapping spectra;

based on the metric, setting up a second set of optical configurations, the first set of optical configurations configured to deliver light to the subject in a manner different than the second set of optical configurations; and

collecting subject specific noninvasive spectra of the subject using the second set of optical configurations.

24 . The method of claim 20 , further comprising the steps of:

determining a measure of spectral quality for each of a majority of signals from independent detector elements of said two-dimensional near-infrared detector array; and

calculating a concentration of the component of the subject, using a sub-set of the majority of signals and the associated measure of spectral quality.

25 . The method of claim 20 , further comprising the steps of:

organizing the signals into a plurality of finite width channels, a majority of said finite width channels correlating with probed tissue pathlength; and

processing the signals using cross-coherence between said finite width channels.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 4, 2016
From: NOVOTONY, VLAD
To: ZYOMED CORP.
Reel/Frame 039572/0966 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 29, 2015
From: GULATI, SANDEEP; GEORGE, THOMAS; RUCHTI, TIMOTHY; ABUL-HAJ, ALAN; HAZEN, KEVIN H.
To: ZYOMED CORP.
Reel/Frame 035747/0135 →