The invention relates to the field of medical apparatus and more specifically to an apparatus for the optical analysis of body portions such as the lower skin layers. The invention is particularly relevant to the field of non-invasive optical skin analysis for the detection of skin layers properties and components.
Optical measurement of the skin of a patient is often used to detect biological parameters. For instance, Near Infra-Red (NIR) spectroscopy is a non-invasive method for determining glucose concentration in tissue and blood. NIR spectroscopy is often used in diabetes glucose control. It operates as follows: first, a light source illuminates a body portion with NIR light via an optical probe head in contact with skin and light reflected by the body fluids and body tissue is then detected in the probe head.
Patent application JP06-052444 discloses, for instance, a device used to observe an enlarging surface of an examined body by suppressing surface reflected light.
The problem with this type of measure where the probe head is in contact with the skin is that the pressure from the probe head on the skin changes the scattering of light in the skin cellular epidermal, fibrous dermal layer and adipose tissue layer. A drawback of prior art systems is thus that the weight of the probe head affects the physical conditions of the underneath skin layers thereby altering the properties measurements and components concentrations in a non-reliable way.
Therefore, it would be desirable to devise an analysis apparatus that minimally affects the sampling conditions so that, at least, sampling conditions could remain the same for reproducible skin spectral measurements.
An object of the invention is to devise an apparatus that minimally alters analysis conditions thereby permitting to achieve reproducible conditions of measurement. To address the above concerns, the invention more precisely relates to an apparatus for optical body analysis comprising first an illumination and detection head, and an optical coupler. The illumination and detection head comprises a light source for illuminating, through the optical coupler, a body portion to analyze and a detector for receiving light diffusely reflected by the body portion. The optical coupler is mechanically decoupled from the illumination and detection head and is adapted to be in contact with an outer surface of the body portion.
The apparatus maintains sampling conditions the same by keeping the probe contact pressure to a minimum. In other words, the contact between the optical coupler and the body portion minimally affects physical properties of the body portion. Indeed, contrary to prior art systems, only the optical coupler is placed on the body portion, e.g. skin surface, and there is little mechanical strength between the optical coupler and the illumination and detection head when such mechanical strength would constrain the head onto the optical coupler. Thus, the apparatus of the invention minimizes the perturbation caused by the overall analysis device to the physical environment of the body portion of interest. In the event the physical conditions are slightly modified due to the weight of the optical coupler or the pressure contact between the optical coupler and the outer layer of the body portion, a physical equilibrium may be quickly established in the lower skin layers and analytes concentrations and physical properties will only be temporarily affected.
In an examplary embodiment, the apparatus further comprises a position unit adapted to adjust the position of the illumination and detection head relative to the optical coupler so that the detector receives through the optical coupler light generated by the light source and diffusely reflected by the body portion.
In an examplary embodiment, the optical coupler is made out of a light weight material. In a particular embodiment, the illumination and detection head further comprises lens(es) arranged in front of the detector to selectively collect light emerging with respect to an area of interest allowing more accurate measurements or shorter measurement times.
In another embodiment, a lens is placed in front of the light source to project the light to the desired area to measure. The lens allows using an extended light source, such as a bulb, rather than a point source, e.g. as a laser, allowing for a safer and lower cost device.
In another embodiment, the light source and the detector are positioned in order to prevent light reflected directly by the optical coupler to enter the detector. This way, only light diffusely reflected by the sample enters the detector. As the light that has been directly reflected off the optical coupler contains no valuable information, this embodiment improves the measurement signal-to-noise ratio. This advantage can also be achieved in another embodiment where each of the light source and the detector comprises a polarizer, the polarization direction of one polarizer being orthogonal to the polarization direction of the other polarizer.
In another embodiment, the optical coupler comprises a chamfer on its edge adapted to prevent direct reflection from the optical coupler to be directed toward the detector.
In a further embodiment, the position unit comprises at least two position sensitive photo detectors adapted to receive light reflected off the chamfer when the illumination and detection head is correctly positioned relative to the optical coupler.
In another examplary embodiment of the invention, the optical coupler is in contact with the body portion through an index matching fluid or gel.
These and other aspects of the invention will be apparent from and elucidated with reference to the embodiment described hereafter where:
In the figures, the same reference number designates a similar or identical object.
In reference to
The optical coupler 2 is positioned on the outer layer of the body portion 4 to analyze. The outer layer is for example the patient's skin. Optical coupler 2 may be a piece of transparent material with a well defined smooth surface. Optical couplers are typically used to correct for the skin roughness so that the relief of the illuminated surface is known when the skin is illuminated. This makes it easier to predict how much light is reflected and how much light penetrates the skin. Optical coupler 2 can also be either associated with an index matching fluid or gel 5 that is placed between optical coupler 2 and the skin 4 to prevent any air bubbles being trapped at the interface skin-coupler. The index matching fluid 5 minimizes reflection of light passing through optical coupler 2 and the skin 4 or at the interface between the two. The fluid or gel 5 could also be a type of glue that levels out the skin surface 4 while matching the refractive index of the optical coupler 2.
Optical coupler 2 may be made out of a light-weight material so that it applies minimal pressure on the skin surface 4 thereby only minimally affecting the physical condition of the lower skin layers of body portion 4. As previously explained, components concentrations and physical properties like scattering, will thus not be modified at all or only very slightly, yet leading to reliable measurements.
The illumination and detection head 3 is mounted on a support 10. Said support 10 is movable via a position unit 6 which may allow a 6-axis (3 translations, 3 rotations) movement of the head 3. In this embodiment, the illumination portion and the detection portion of head 3 are interdependent, however one could devise an embodiment where the two portions move independently. Also, support 6 may allow less translation and rotational movement, i.e. support 6 could be a 5 or less-axis.
The illumination and detection head 3 comprises a light source 7, such as a bulb or a laser, combined with a reflector 8 to illuminate the skin area. It further comprises a detector 9 such as an optical fiber or a CCD matrix.
The position unit 10 may adjust the position of the illumination and detection head 3 relative to the optical coupler 2 so that the detector 9 receives at least a part of the light generated by the light source 7 after it has been diffusely reflected by the skin area through the optical coupler 2.
In another embodiment, illustrated in
The advantage of the lens 30 is that a point source, such as a laser is not necessary therefore allowing for a safer and lower cost device.
In another examplary embodiment, both lenses 20, 30 are integrated as one physical element.
In another embodiment, illustrated in
In another embodiment illustrated in
In another embodiment illustrated in
In an examplary embodiment, illustrated in
While the invention has been illustrated and described in details in the drawings and foregoing description, such illustration and description are to be considered illustrative or examplary and not restrictive; the invention is not limited to the disclosed embodiment.
For instance, the position unit 6 may provide visual aids to the operator to help him adjust the position of the head 3 or control a motorized support 10 to automatically adjust the position of the head 3.
Other variations to the disclosed embodiments can be understood and effected by those skilled on the art in practicing the claimed invention, from a study of the drawings, the disclosure and the appended claims. In the claims, the word “comprising” does not exclude other elements and the indefinite article “a” or “an” does not exclude a plurality.
Number | Date | Country | Kind |
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06300982.3 | Sep 2006 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB07/53886 | 9/25/2007 | WO | 00 | 3/24/2009 |