The disclosure relates to an optical material, an optical product, and a manufacturing method thereof, particularly to an optical material capable of resisting at least light having a wavelength between 280 nm and 380 nm, an optical product, and a manufacturing method thereof.
Generally speaking, natural light sources (such as sunlight) or light sources from other electronic devices (such as LED light sources of a computer or mobile phone screens) are likely to cause damage to human eyes, especially eye diseases that cause vision degradation such as cataracts and macular degeneration. Among these light sources, the wavelength bands that are more harmful to human eyes include long-wave ultraviolet light (UVA) and near-ultraviolet light (UVB). These two light wavelength bands cover the wavelength range of 280 nm to 380 nm. Furthermore, the ultraviolet light produced by optical products is known to bring chemical changes to the retina, causing damage to eyes. Therefore, to reduce the damage caused by ultraviolet light to the eyes, it has become an important subject for the present disclosure to provide users with better optical products.
The present disclosure provides an optical material, an optical product, and a manufacturing method thereof capable of improving the ability to protect eyes.
An optical material for manufacturing an optical product of the present disclosure includes a light-resistant material undergone surface modification by titanium dioxide, so that the optical product is at least resistant to light having a wavelength between 280 nm and 380 nm.
In an embodiment of the present disclosure, a surface of the light-resistant material mentioned above has an ethylenic functional group.
In an embodiment of the present disclosure, the ethylenic functional group mentioned above includes a propenyl group.
In an embodiment of the present disclosure, the light-resistant material mentioned above is grafted onto another light-resistant material.
An optical product includes a body and a light-resistant layer. The light-resistant layer is formed on the body. The light-resistant layer is formed of a light-resistant material undergone surface modification by titanium dioxide, so that the optical product is at least resistant to light having a wavelength between 280 nm and 380 nm.
In an embodiment of the present disclosure, the body and the light-resistant layer mentioned above are bonded by an ethylenic functional group.
In an embodiment of the present disclosure, the ethylenic functional group mentioned above includes a propenyl group.
In an embodiment of the present disclosure, a transmittance of the optical product mentioned above is between 0.1% and 50% for light having a wavelength between 280 nm and 380 nm.
In an embodiment of the present disclosure, the light-resistant layer mentioned above allows the optical product to further resist light having a wavelength between 380 nm and 500 nm.
In an embodiment of the present disclosure, a transmittance of the optical product mentioned above is less than 70% for light having a wavelength between 380 nm and 500 nm.
In an embodiment of the present disclosure, the light-resistant layer mentioned above is formed on a surface of the body.
In an embodiment of the present disclosure, the light-resistant layer mentioned above is formed within the body.
In an embodiment of the present disclosure, a distance exists between the light-resistant layer mentioned above and an edge of the body.
In an embodiment of the present disclosure, a material of the body and the light-resistant material mentioned above are not mutually doped.
A manufacturing method of an optical product at least includes the following steps: providing a body; and forming a light-resistant layer on the body, where the light-resistant layer is formed of a light-resistant material undergone surface modification by titanium dioxide, so that the optical product is at least resistant to light having a wavelength between 280 nm and 380 nm.
In an embodiment of the present disclosure, the light-resistant layer mentioned above is formed without doping.
In an embodiment of the present disclosure, the titanium dioxide mentioned above performs the surface modification by a condensation reaction.
In an embodiment of the present disclosure, forming the light-resistant layer further includes: providing a solution including a light-resistant material on the body; and generating an ethylenic functional group bond between the body and the light-resistant material through a curing process.
In an embodiment of the present disclosure, the solution mentioned above is provided by a spraying, dipping, coating, or transfer process.
In an embodiment of the present disclosure, the ethylenic functional group mentioned above includes a propenyl group.
Based on the above, the optical material of the present disclosure is introduced with titanium dioxide that has anti-ultraviolet light effect, and such surface modification increases the bonding ability between the optical material and the surface of the body. In this way, the adhesion between the optical material and the body is improved, increasing the adhesion between the two. Therefore, the optical product made from the optical materials mentioned above may effectively resist the ultraviolet wavelength range (280 nm to 380 nm), thereby reducing the damage caused by ultraviolet light to the eyes and improving the protection for the eyes.
To make the above features and advantages of the present disclosure more comprehensible, the following embodiments are described in detail in conjunction with the accompanying drawings.
Note that, for the sake of clarity, components in
Hereinafter, reference numerals are added to describe the embodiments of the present disclosure in detail, and the description is accompanied by drawings. Where possible, unnecessary components are omitted for clarity.
The directional terms used herein (for example, up, down, right, left, front, back, top, bottom, etc.) are only used as a reference for the drawings and are not intended to imply absolute orientation.
As shown in
Furthermore, the optical material may include a light-resistant material undergone surface modification by titanium dioxide (TiO2). Therefore, the light-resistant layer 120 formed by the optical material mentioned above allows the optical product 100 to at least resist light having a wavelength between 280 nm and 380 nm. Accordingly, the optical material of this embodiment is introduced with titanium dioxide that has anti-ultraviolet light effect, and such surface modification increases the bonding ability between the optical material and the surface of the body 110. In this way, the adhesion between the optical material and the body is improved, increasing the adhesion between the two. Therefore, the optical product 100 made from the optical material may resist the ultraviolet wavelength band (280 nm to 380 nm) effectively, thereby reducing the damage caused by ultraviolet light to the eyes and improving the protection for the eyes. Here, the titanium dioxide may be surface-modified on the light-resistant material according to a condensation reaction or any other process suitable. Note that the present disclosure does not impose restrictions on the surface modification, which can be selected based on actual design requirements.
In this embodiment, as shown in
In some embodiments, the surface of the light-resistant material has ethylenic functional groups. For example, the ethylenic functional group includes a propenyl group. Therefore, the body 110 and the light-resistant layer 120 may be bonded through the mentioned ethylenic functional group to improve the bonding ability between the light-resistant layer 120 and the body 110, but the present disclosure is not limited thereto.
In some embodiments, the light-resistant material is grafted onto another light-resistant material. For example, another light-resistant material may be an anti-blue light material (which resists light having a wavelength between 380 nm and 500 nm) grafted onto the surface of the light-resistant material (one that is resistant to light having a wavelength between 280 nm and 380 nm) as mentioned. In this way, the light-resistant layer 120 allows the optical product 100 to further resist light having a wavelength between 380 nm and 500 nm. And as shown in
In this embodiment, the light-resistant layer 120 may be formed on the surface of the body 110. For example, as shown in
The main procedure of an optical product according to an embodiment of the present disclosure is described below along with the drawings.
In
In
It must be noted here that the following embodiments adopt the reference numbers and part of the content of the above embodiments. The same or similar reference numerals are used to represent the same or similar elements, and the description of the same technical content is omitted. For the description of the omitted parts, please refer to the foregoing embodiments, as the following embodiments do not repeat the same description.
In
In
In
In
In
Note that the various aspects of optical products mentioned above can be mixed and matched with each other in an appropriate manner. For example, the configurations of
In summary, the optical material of the present disclosure is introduced with titanium dioxide that has anti-ultraviolet light effect, and such surface modification increases the bonding ability between the optical material and the surface of the body. In this way, the adhesion between the optical material and the body is improved, increasing the adhesion between the two. Therefore, the optical product made from the optical materials mentioned above may resist the ultraviolet wavelength range (280 nm to 380 nm) effectively, thereby reducing the damage caused by ultraviolet light to the eyes and improving the protection for the eyes.
Although the present disclosure has been disclosed in the above embodiments, they are not intended to limit the present disclosure. Anyone with ordinary knowledge in the relevant technical field can make some changes and modifications without departing from the spirit and scope of the present disclosure. The scope of protection of the present disclosure shall be subject to those defined by the claims attached.
Number | Date | Country | Kind |
---|---|---|---|
110120371 | Jun 2021 | TW | national |
This application claims the priority benefit of U.S. provisional application Ser. No. 63/177,974, filed on Apr. 22, 2021 and Taiwan application serial no. 110120371, filed on Jun. 4, 2021. The entirety of the mentioned above patent application is hereby incorporated by reference herein and made a part of this specification.
Number | Date | Country | |
---|---|---|---|
63177974 | Apr 2021 | US |