BRIEF DESCRIPTION OF THE DRAWINGS
The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
FIG. 1 is a conceptual perspective view of a reflective type polarizing diffusing film according to the present invention;
FIG. 2 is an enlarged view of the area indicated by phantom line 2 in FIG. 1; and
FIG. 3 is an enlarged view of the area indicated by phantom line 3 in FIG. 1.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
Please refer to FIG. 1 that is a conceptual perspective view of a reflective type polarizing diffusive film 10 according to the present invention, and to FIGS. 2 and 3 that are enlarged views of the areas indicated by phantom lines 2 and 3 in FIG. 1, respectively. As shown, the reflective type polarizing diffusive film 10 includes a light-transmittable substrate 11 having an tipper surface 11a and a lower surface 11b; a high reflectance polymeric shielding reflection layer 12 is formed on the upper surface 11a of the substrate 11 by way of coating; a first diffusive layer 13 formed on the high reflectance polymeric shielding reflection layer 12; and a second diffusive layer 14 formed on the lower surface 11b of the substrate 11.
On the shielding reflection layer 12, a plurality of grooves 12a are formed using a nano-micro structured die (not shown).
Each of the grooves 12a preferably has a depth large enough to penetrate into the substrate 11, so as to form a light-transmittable gap d on the upper surface 11a of the substrate below the groove 12a.
The first diffusive layer 13 consists of a plurality of particles 13a and an optical material 13b; and the second diffusive layer 14 consists of a plurality of particles 14a and an optical material 14b. Wherein, the optical materials 13b, 14b may be an optical plastic material, such as polystyrene, polymethyl methacrylate, polycarbonate, polyvinyl, polypropylene, polyvinyl chloride, epoxy resin, polyethylene terephthalate, and polylactic resin. The reflective type polarizing diffusive film 10 is not necessarily limited to have a specific side as an incident face. Both sides of the diffusive film 10 may serve as the incident face. When lights pass the gap d, only the lights vibrating in a direction parallel to the gap d are allowed to pass through the diffusive film 10, while the lights vibrating in a direction normal to or non-parallel to the gap d, due to an electric field induction of the high reflectance polymeric shielding reflection layer 12, are reflected to the original optical path and reused. A method of manufacturing the reflective type polarizing diffusive film 10 according to the present invention includes the steps of:
- (1) Preparing a polymer coating by evenly doping one or more types of high reflectance compound nano powder, such as aluminum, aluminum compounds, zinc, zinc compounds, titanium, titanium compounds, and high dielectric ceramics powder, in a photo-initiator added UV-curable polymer, such as different optical plastic materials, including polystyrene, polymethyl methacrylate, polycarbonate, polyvinyl, polypropylene, polyvinyl chloride, epoxy resin, and polyethylene terephthalate.
Preferably, the high reflectance compound nano powder has a size within the range from 200 μm to 20 nm. The high reflectance compound nano powder having a bar shape instead of a ball shape is preferably selected because the bar-shaped powder has a dielectric constant higher than that of the ball-shaped powder. Further, the nano powder of a high reflectance compound having a dielectric constant higher than 10 is preferably selected for use. According to the dielectric constant ε of a selected compound, the reflectance r of a polymeric shielding reflection layer and the percentage by volume v (%) of the high reflectance compound nano powder relative to the UV-curable polymer may be defined using the following formulas:
- where,
- in the formula (1):
- εr is the dielectric constant of the polymeric shielding reflection layer;
- and in the formula (2):
- εm is the dielectric constant of the UV-curable polymer;
- ε1 is the dielectric constant of a first type high reflectance compound nano powder;
- ε2 is the dielectric constant of a second type high reflectance compound nano powder; and
- εi is the dielectric constant of an ith type high reflectance compound nano powder.
- (2) Coating the polymer prepared in step (1) on the upper surface 11a of the substrate 11 preferably by a film coating technique to form a film of uncured polymeric shielding reflection layer 12.
- (3) Preparing a nano-micro structured die, and forming a nano structure on the surface of the die by way of etching or laser; pressing the die against the shielding reflection layer 12 to form a plurality of nano-sized grooves 12a on the shielding reflection layer 12. Preferably, the grooves 12a are formed on the uncured polymeric shielding reflection layer 12 by way of rolling or punching. And, the grooves 12a preferably have a depth sufficient for penetrating into the substrate 11 to form a plurality of light-transmittable gaps d on the surface of the substrate 11.
- (4) Curing the shielding reflection layer 12 by irradiating the shielding reflection layer 12 with a UV lamp, so that the grooves 12a are cured to facilitate processing in the next procedure.
- (5) Preparing a suitable diffusive material, and coating the prepared diffusive material on the shielding reflection layer 12 and on the lower surface 11b of the substrate 11 to form a diffusive layer 13, 14 on each side of the substrate 11; and curing the resultant diffusive layers by baking them at a proper temperature to complete the reflective type polarizing diffusive film 10.
The diffusive layer 13 consists of a plurality of particles 13a and an optical material 13b; and the diffusive layer 14 consists of a plurality of particles 14a and an optical material 14b. Wherein, the optical materials 13b, 14b may be an optical plastic material, such as polystyrene, polymethyl methacrylate, polycarbonate, polyvinyl, polypropylene, polyvinyl chloride, epoxy resin, polyethylene terephthalate, and polylactic resin.
In brief, in the present invention, grooves formed on a shielding reflection layer and the property of electromagnetic wave are employed to polarize light passing through the reflective polarization diffusive film of the present invention, and the shielding reflection layer is used to reflect the blocked light to an original optical path for reuse and thereby provides largely enhanced brightness.