Embodiments of the present disclosure generally relate to optical devices. Specifically, embodiments of the present disclosure relate to methods of laser dicing optical devices with a protective coating, and a protective coating for laser dicing optical devices.
Virtual reality (VR) is generally considered to be a computer generated simulated environment in which a user has an apparent physical presence. A VR experience can be generated in 3D and viewed with a head-mounted display (HMD), such as glasses or other wearable display devices that have near-eye display panels as lenses to display a VR environment that replaces an actual environment.
Augmented reality (AR), however, enables an experience in which a user can still see through the display lenses of the glasses or other HMD device to view the surrounding environment, yet also see images of virtual objects that are generated for display and appear as part of the environment. AR can include any type of input, such as audio and haptic inputs, as well as virtual images, graphics, and video that enhances or augments the environment that the user experiences. In order to achieve an AR experience, a virtual image is overlaid on an ambient environment, with the overlaying performed by optical devices.
Multiple optical devices are fabricated on a substrate and then diced prior to use on VR and AR devices. Accordingly, there is a need for a method of laser dicing optical devices with a protective coating, and a protective coating for laser dicing optical devices.
A method of dicing optical devices from an optical device substrate is provided. The method includes disposing a protective coating only over the optical devices. The optical device substrate includes the optical devices disposed on the surface of the optical device substrate with areas therebetween. The areas of the optical device substrate are exposed by the protective coating. The protective coating includes a polymer, a solvent, and an additive. The method further includes curing the protective coating via a cure process so that the protective coating is water-soluble after the solvent is removed by the cure process, dicing the optical devices from the optical device substrate by projecting a laser beam to the areas between the optical devices, and exposing the protective coating to water to remove the protective coating from the optical devices that are diced.
A method of dicing optical devices from an optical device substrate is provided. The method includes disposing a protective coating by inkjet deposition or screen printing deposition only over the optical devices. The optical devices have a plurality of optical device structures disposed thereon. The optical device substrate includes the optical devices disposed on the surface of the optical device substrate with areas therebetween. The areas of the optical device substrate are exposed by the protective coating. The protective coating includes a polymer, a solvent, and an additive. The method further includes curing the protective coating via a cure process so that the protective coating is water-soluble after the solvent is removed by the cure process, dicing the optical devices from the optical device substrate by projecting a laser beam to the areas between the optical devices, and exposing the protective coating to water to remove the protective coating from the optical devices that are diced.
A method of dicing optical devices from an optical device substrate is provided. The method includes disposing a protective coating by inkjet deposition or screen printing deposition only over the optical devices. The optical devices have a plurality of optical device structures disposed thereon. The optical device substrate includes the optical devices disposed on the surface of the optical device substrate with areas therebetween. The areas of the optical device substrate are exposed by the protective coating. The protective coating includes a polymer. The polymer includes at least one of a polyvinylpyrrolidone (PVP) containing material, a polypropylene containing material, polyvinyl acetate (PVA) containing material, or a combination thereof, a solvent, and an additive. The method further includes curing the protective coating via a cure process so that the protective coating is water-soluble after the solvent is removed by the cure process, dicing the optical devices from the optical device substrate by projecting a laser beam to the areas between the optical devices, and exposing the protective coating to water to remove the protective coating from the optical devices that are diced.
So that the manner in which the above recited features of the disclosure can be understood in detail, a more particular description of the disclosure, briefly summarized above, may be had by reference to embodiments, some of which are illustrated in the appended drawings. It is to be noted, however, that the appended drawings illustrate only typical embodiments of this invention and are therefore not to be considered limiting of its scope, for the disclosure may admit to other equally effective embodiments.
To facilitate understanding, identical reference numerals have been used, where possible, to designate identical elements that are common to the figures. It is contemplated that elements and features of one embodiment may be beneficially incorporated in other embodiments without further recitation.
Embodiments of the present disclosure generally relate to optical devices. Specifically, embodiments of the present disclosure relate to a method of laser dicing optical devices with a protective coating, and a protective coating for laser dicing optical devices.
After fabrication of the optical devices 100 on the optical device substrate 101, it is desirable to dice the optical device substrate 101 into individual optical devices. For example, as shown in
At operation 201, a protective coating 302 is deposited only over the optical devices 100. Portions of the surface 103 of the optical device substrate 101 without the optical devices 100 are not coated with the protective coating 302. As shown in
The protective coating 302 includes a polymer, a solvent, and an additive. In some embodiments, the protective coating 302 further includes a photo curable material. The polymer includes at least one of a polyvinylpyrrolidone (PVP) containing material, a polypropylene containing material, a polyvinyl acetate (PVA) containing material, or a combination thereof. The PVP containing material includes at least one of a PVP polymer, a PVD copolymer, a PVD block copolymer, or a combination thereof. The polymer is hydrophilic and water-soluble. The hydrophilic and water-soluble polymer allows for the protective coating 302 to be soluble in water after the protective coating 302 is cured by UV radiation, thermal baking, or a combination thereof. Thermal baking is conducted at a temperature of 25° C. to 300° C. or less. The water may be deionized water or distilled water.
The photo curable material includes one or more monomers, cross-linkers, oligomers, photo initiators, or combinations thereof. The photo curable material cross-links into a water-soluble polymer network when the protective coating 302 is cured. A water-soluble polymer network allows for the protective coating 302 to be soluble in water. In some embodiments, the protective coating 302 is cured via a UV cure process or thermal baking process. The monomers include water-soluble acrylates, such as methacrylates, epoxies, or combinations thereof. The cross-linkers include water-soluble multi-functional acrylates, such as multi-functional acrylates, methacrylates, epoxies, or combinations thereof. The oligomers include water-soluble acrylates, methacrylates, epoxies, or combinations thereof. The additive includes one or more surfactants or one or more polymers.
The solvent includes an organic solvent and water. The organic solvent includes an ester, an ether, and an alcohol. The ester, the ether, and the alcohol have a boiling point less than or equal to 300° C. at 1 atm. The organic solvent includes di(propylene glycol) methyl ether (DPGME), Dipropylene glycol n-butyl ether (DPGBE), Tri(propylene glycol) methyl ether (TPGME), dipropylene glycol mono-n-propylether (DPGPE), dipropylene glycol dimethyl ether (DPGDME), tripropylene glycol (mono) n-butyl ether (TPGBE), propylene glycol butyl ether (PGBE), (2-(2-methoxyethoxy)ethanol (DEGME), 2-(2-ethoxyethoxy)ethanol (DEGEE), triethylene glycol monomethyl ether (TEGME), propylene glycol methyl ether (PGME), propylene glycol propyl ethe (PGPE), propylene glycol methyl ether acetate (PGMEA), dipropylene glycol monomethyl ether acetate (DPGMEA), ethanol, methanol, isopropanol, 1-butanol, 2-butanol, 1-pentanol, 2-pentanol, 3-pentanol, 1-hexanol, 2-hexanol, 3-hexanol, butyl acetate, butyl lactate, or combinations thereof. The solvent includes 0% to 80% water. The solvent allows for the protective coating 302 to be selectively deposited as an inkjet ink or screen printing ink. Upon curing the solvent is removed from the protective coating 302.
At operation 202, as shown in
At operation 204, the protective coating 302 is removed from the optical devices 100. As shown in
While the foregoing is directed to embodiments of the present disclosure, other and further embodiments of the disclosure may be devised without departing from the basic scope thereof, and the scope thereof is determined by the claims that follow.
This application claims benefit of U.S. Provisional Patent Application No. 63/268,504, filed Feb. 25, 2022, which is herein incorporated by reference in its entirety.
Number | Date | Country | |
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63268504 | Feb 2022 | US |