This application claims the priority benefit of Taiwan application serial no. 101147284, filed on Dec. 13, 2012. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
1. Field of the Invention
The present invention relates to a touch sensing structure, and more particularly relates to an optical touch sensing structure.
2. Description of Related Art
The current designs of the touch display panels are generally categorized, based on their touch sensing principles, into resistive, capacitive, optical, sound wave, and electromagnetic touch display panels. At present, the optical touch panels employ infrared rays as the light source and the charge coupled devices (CCDs) or CMOS optical sensors as the detectors for sensing the infrared rays so as to calculate the position of the touching points.
The optical touch apparatus employs the infrared diode to emit the infrared ray and the infrared ray is reflected by the reflecting component to the light sensing component in order to calculate the position of the touching point. However, the angle of the incoming infrared ray has to be carefully designed to match the location of the light sensing component to ensure the reflected infrared ray, after being reflected by the reflecting component, being received accurately by the light sensing component. Hence, the design flexibility of the arrangement of the infrared diode and/or the light sensing component is constrained.
The present invention provides an optical touch sensing structure, which is capable of calculating the position of the touching point(s) through the retroflection and reflection of the infrared ray by the transparent optical sphere(s) of the optical touch sensing structure.
The present invention provides an optical touch sensing structure, including a transparent substrate, a transparent adhesive layer and a plurality of transparent optical spheres. The transparent substrate has a top surface, and the transparent adhesive layer is disposed on the top surface of the transparent substrate. The transparent adhesive layer includes a plurality of adhesive portions. The adhesive portions are separate from one another and expose a portion of the top surface. The transparent optical spheres are disposed on the adhesive portions. The transparent optical spheres on each adhesive portion are arranged as a single layer, and the transparent optical spheres are fixed on the transparent substrate via the adhesive portions. When an infrared ray reaches each transparent optical sphere, the infrared ray is retroreflected and reflected by each transparent optical sphere.
According to the embodiment, a refractive index of each of the plurality of transparent optical spheres ranges from 1.9 to 5.0, and a refractive index of each of the plurality of transparent optical spheres is greater than a refractive index of the transparent substrate.
According to the embodiment, a diameter of each of the plurality of transparent optical spheres ranges from 10 microns to 100 microns.
According to the embodiment, a material of each of the plurality of transparent optical spheres includes a transparent oxide material.
According to the embodiment, the optical touch sensing structure further comprises a transparent positioning layer disposed on the top surface of the transparent substrate. A refractive index of the transparent positioning layer is smaller than a refractive index of the plurality of transparent optical spheres. The transparent positioning layer includes a plurality of transparent positioning portions covering the portion of the top surface that is exposed by the plurality of adhesive portions, and the plurality of transparent positioning portions restrict locations of the plurality of transparent optical spheres on the plurality of adhesive portions.
According to the embodiment, a top surface of each of the plurality of transparent positioning portion is lower than a top end of each of the plurality of transparent optical spheres, and a material of the transparent positioning layer includes an ultraviolet photoresist material or a flexible material.
According to the embodiment, the optical touch sensing structure further comprises a transparent protection layer disposed over the plurality of transparent optical spheres. A bottom surface of the transparent protection layer is in contact with a top end of each of the plurality of transparent optical spheres.
According to the embodiment, a refractive index of the transparent protection layer is smaller than a refractive index of each of the plurality of transparent optical spheres, and a thickness of the transparent protection layer ranges from 0.1 millimeter to 1 millimeter.
According to the embodiment, the optical touch sensing structure further comprises a transparent optical matching layer disposed on the top surface of the transparent substrate. A refractive index of the transparent optical matching layer is smaller than a refractive index of each of the plurality of transparent optical spheres, and the transparent optical matching layer includes a plurality of transparent optical matching portions covering the portion of the top surface that is exposed by the plurality of adhesive portions.
According to the embodiment, the transparent protection layer is in contact with a top surface of each of the plurality of transparent optical matching portions.
In view of above, the optical touch sensing structure of the present invention has transparent optical spheres, when a touch device (such as an optical touch stylus) emits an infrared ray to the optical touch sensing structure, the transparent optical spheres can retroreflect and reflect the infrared ray to the infrared camera of the touch device, so as to calculate the position of the touching point(s).
Since the transparent optical spheres have dual functions of retroreflection and reflection, the reflected infrared ray propagates toward the light source and the reflected infrared ray also propagates toward a plurality of directions. The infrared camera may be installed at the location(s) adjacent to the infrared light source to receive the infrared ray retroreflected back by the transparent optical spheres, or installed at other locations to receive the reflected infrared ray propagating toward the other directions. Hence, there is no need to limit the incident angle of the infrared ray of the touch device and the position of the infrared camera. As a result, when the touch device works with the optical touch sensing structure of this invention, the touch device can work with a larger range of operation angles and better operation flexibility.
In order to make the aforementioned and other objects, features and advantages of the present invention comprehensible, a preferred embodiment accompanied with Figures is described in detail below.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
In details, the material of the transparent substrate 110 may be plastic, glass, polymethylmethacrylate (PMMA) or other highly transparent materials. The material of the transparent adhesive layer 120 may be a transparent optical adhesive material. The locations of the adhesive portions 122 of the transparent adhesive layer 120 define the allocation locations of the transparent optical spheres 130. In this embodiment, the refractive index of each of the transparent optical spheres 130 ranges from 1.9 to 5.0, and the diameter D of each of the transparent optical spheres 130 ranges from 10 microns to 100 microns, for example. The material of the transparent optical spheres 130 may be transparent oxide materials, such as, bismuth oxide (Bi2O3), zinc oxide (ZnO), titanium oxide (TiO2), tin oxide (SnO2), tungsten oxide (WO3), cerium oxide (CeO2), hafnium oxide (HfO2), tantalum oxide (Ta2O5), holmium oxide (Ho2O3), indium tin oxide (ITO), niobium oxide (Nb2O5), indium oxide (In2O3), neodymium (Nd2O3), antimony oxide (Sb2O3) or zirconium oxide (ZrO2), but is not limited to the examples described herein.
In this embodiment, for the optical touch sensing structure 100a having a plurality of transparent optical spheres 130, when the touch device (such as an optical touch stylus) emits the infrared ray L1 and reaches the optical touch sensing structure 100a, the transparent optical spheres 130 can retroreflect the infrared ray L1 (becoming the infrared ray L2 in
In the following embodiment(s), certain reference numbers and related contexts of some elements or components in the previous embodiment will be used again and the same reference numbers will be used to describe the same or similar elements or components and the related descriptions of the same technology may be omitted.
In summary, as the optical touch sensing structure of the present invention has transparent optical spheres, when a touch device (such as an optical touch stylus) emits an infrared ray to the optical touch sensing structure, the transparent optical spheres can retroreflect and reflect the infrared ray to the infrared camera of the touch device, so as to calculate the position of the touching point(s). Hence, it is not necessary to limit the incident angle of the infrared ray of the touch device or the positions of the infrared camera. As a result, when the touch device works with the optical touch sensing structure of this invention, the touch device can work with a larger range of operation angles and better operation flexibility.
This invention has been disclosed above in several embodiments, but is not limited to those. It is known to persons skilled in the art that some modifications and innovations may be made without departing from the spirit and scope of this invention. Hence, the scope of this invention should be defined by the following claims.
Number | Date | Country | Kind |
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101147284 | Dec 2012 | TW | national |