Proximity sensor using partial-transmissive-partial-reflective optical element with a same light transmission window and manufacturing method thereof
11692870 · 2023-07-04
Assignee
Inventors
Cpc classification
G02B27/144
PHYSICS
G01J1/0414
PHYSICS
Y10T29/49016
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
G01S7/481
PHYSICS
Abstract
A proximity sensing device includes: a light source, a sensing unit, a light guide unit, and a window. The light source emits light, which is guided by the light guide unit to the window. The emitted light reflected by an object is received by the same window. The light guide unit includes a partial-transmissive-partial-reflective (PTPR) optical element, whereby the light emitted from the light source is reflected by the PTPR optical element, while the light reflected by the object passes through the PTPR optical element. There is only one window required.
Claims
1. An optical sensing device, comprising: a light source, configured to emit a light beam; a sensing unit, configured to receive a reflected light beam; a light guide unit which includes a partial-transmissive-partial-reflective (PTPR) optical element, disposed in the transmission path of the light beam and the reflected light beam; and a window located between the PTPR optical element and the object, the light beam emitted from the light source and the reflected light beam passing through this same window; wherein the light source and the sensing unit are located on a same substrate, and the light beam emitted by the light source is first transmitted to the PTPR optical element, and further next is transmitted to pass through the window, wherein the reflected light passing through the window is transmitted to the PTPR optical element, and further next is transmitted to the sensing unit.
2. The optical sensing device of claim 1, wherein a size of the window is not larger than 1 mm×1 mm.
3. The optical sensing device of claim 1, wherein the optical sensing device is located in a handheld device, which includes a transparent cover for covering the proximity sensing device, wherein the transparent cover includes an IR-ink (infrared ink) located at a location corresponding to the window.
4. The optical sensing device of claim 1, wherein the PTPR optical element includes a transparent body and a semi-reflective surface on the transparent body.
5. The optical sensing device of claim 4, wherein the semi-reflective surface includes a polarization coating.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) The drawings as referred to throughout the description of the present invention are for illustrative purpose only, o show the interrelations between the components, but not drawn according to actual scale.
(7)
(8) The light source 11 and the sensing unit 12 are preferably located on a same substrate 1. The light source 11 is configured to operably provide a light beam, for sensing a proximal status of an object (which is equivalent to sensing a proximal status of the proximity sensing device 10 to the object). The sensing unit 12 is configured to operably receive light reflected from the object, for determining the proximal status of the object. The light guide unit 13 guides the light beam emitted from the light source 11 to the window 14, and also guides the light received from the same window 14 to the sensing unit 12.
(9) In one preferable embodiment, the light guide unit 13 includes a partial-transmissive-partial-reflective (PTPR) optical element 132, which is configured to reflect at least part of the light beam emitted by the light source and transmit at least part of the light reflected from the object, whereby at least part of the light beam emitted by the light source reaches the window and at least part of the light received from the window 14 reaches the sensing unit 12.
(10) Referring to
(11) Referring back to
(12) The purpose to provide the reflective optical element 131 is to redirect the light emitting direction, so that the light source 11 and the sensing unit 12 can be located on the same substrate 1, facing the same direction. This helps to reduce the thickness of the proximity sensing device 10.
(13) As per the reflective optical element 131, in one embodiment, the reflective optical element 131 can be a prism lens. In another embodiment, the reflective optical element 131 can be a mirror.
(14) Referring to
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(17) In one perspective, the present invention also provides a light guiding method of proximity sensing device. Pease refer to
(18) Note that, for illustration purpose, both the emitted light beam and the received light are represented by straight lines. However, according to natural optical physics, the emitted light beam and the received light in fact have light intensity distributions, and the drawings simplify it. Therefore, in the context of the present invention, “light beam” or “light” does not require to be its complete intensity distribution, but can be any significant portion thereof.
(19) The present invention has been described in considerable detail with reference to certain preferred embodiments thereof. It should be understood that the description is for illustrative purpose, not for limiting the scope of the present invention. Those skilled in this art can readily conceive variations and modifications within the spirit of the present invention. Besides, an embodiment or a claim of the present invention does not need to attain or include all the objectives, advantages or features described in the above. The abstract and the title are provided for assisting searches and not to be read as limitations to the scope of the present invention. It is not limited for each of the embodiments described hereinbefore to be used alone; under the spirit of the present invention, two or more of the embodiments described hereinbefore can be used in combination. For example, two or more of the embodiments can be used together, or, a part of one embodiment can be used to replace a corresponding part of another embodiment.