WO2024167837A1 - Low reflectance removable lens stack - Google Patents
Low reflectance removable lens stack Download PDFInfo
- Publication number
- WO2024167837A1 WO2024167837A1 PCT/US2024/014446 US2024014446W WO2024167837A1 WO 2024167837 A1 WO2024167837 A1 WO 2024167837A1 US 2024014446 W US2024014446 W US 2024014446W WO 2024167837 A1 WO2024167837 A1 WO 2024167837A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- removable lens
- substrate
- layer
- lens layer
- coating
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Classifications
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B1/00—Optical elements characterised by the material of which they are made; Optical coatings for optical elements
- G02B1/10—Optical coatings produced by application to, or surface treatment of, optical elements
- G02B1/11—Anti-reflection coatings
- G02B1/118—Anti-reflection coatings having sub-optical wavelength surface structures designed to provide an enhanced transmittance, e.g. moth-eye structures
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B1/00—Optical elements characterised by the material of which they are made; Optical coatings for optical elements
- G02B1/04—Optical elements characterised by the material of which they are made; Optical coatings for optical elements made of organic materials, e.g. plastics
- G02B1/041—Lenses
Definitions
- M moth-eye
- the adhesives used between the layers have a tendency to fill in around the bumps of the ME coating, drastically increasing the peel strength of each layer (making it 650 to 1,070 grams/inch, for example) and thus making the stack unusable as the layers cannot easily be tom off and the force to remove a layer may be greater than the tensile strength of the lens material.
- the present disclosure contemplates various devices and methods for overcoming the drawbacks accompanying the related art.
- One aspect of the embodiments of the present disclosure is a removable lens stack.
- the removable lens stack may comprise a base layer including a substrate having a first side and a second side opposite the first side, the base layer further including a moth eye coating on the first side of the substrate.
- the removable lens stack may further comprise one or more removable lens layers, each removable lens layer including a substrate having a first side and a second side opposite the first side, a moth eye coating on the first side of the substrate, and a fluoropolymer coating on the second side of the substrate.
- the one or more removable lens layers may be stacked on top of the base layer such that the second side of the substrate of each removable lens layer faces the first side of the substrate of an immediately preceding layer from among the base layer and the one or more removable lens layers.
- Each of the fluoropolymer coatings may be molded to fit the moth eye coating of the immediately preceding layer.
- the moth eye coating may comprise a polymer.
- the moth eye coating may define a pattern of bumps with half-wave pitch.
- the moth eye coating may define a pattern of bumps with half-wave height.
- the moth eye coating may define a pattern of cones.
- the base layer may further include a moth eye coating on the second side of the substrate.
- the substrate may comprise polyethylene terephthalate (PET).
- PET polyethylene terephthalate
- the removable lens stack may comprise, in each of the one or more removable lens layers and the base layer, an adhesion treatment between the substrate and the moth eye coating.
- the adhesion treatment may comprise a pressure sensitive adhesive.
- the removable lens stack may comprise, in each of the one or more removable lens layers, an adhesion treatment between the substrate and the fluoropolymer coating.
- the adhesion treatment may comprise a pressure sensitive adhesive.
- a peel strength of each of the one or more removable lens layers may be less than 100 grams per inch.
- a peel strength of each of the one or more removable lens layers may be between 15 and 50 grams per inch and may, more particularly, be between 15 and 30 grams per inch.
- a visible light transmission (VLT) of the removable lens stack may be greater than 95% and may, more particularly, be greater than 98%.
- the method may comprise providing a base layer including a substrate having a first side and a second side opposite the first side, the base layer further including a moth eye coating on the first side of the substrate.
- the method may further comprise stacking one or more removable lens layers on top of the base layer, each removable lens layer including a substrate having a first side and a second side opposite the first side, a moth eye coating on the first side of the substrate, and a fluoropolymer coating on the second side of the substrate.
- the one or more removable lens layers may be stacked on top of the base layer such that the second side of the substrate of each removable lens layer faces the first side of the substrate of an immediately preceding layer from among the base layer and the one or more removable lens layers.
- the method may further comprise laminating the stacked one or more removable lens layers to the base layer, each of the fluoropolymer coatings being molded to fit the moth eye coating of the immediately preceding layer.
- the laminating may comprise laminating the stacked one or more removable lens layers to the base layer under pressure at a temperature less than 40 °C.
- the method may comprise, in each of the one or more removable lens layers, applying a corona treatment between the substrate and the moth eye coating.
- the method may comprise, in each of the one or more removable lens layers, applying a corona treatment between the substrate and the fluoropolymer coating.
- a removable lens stack comprising a base layer, a first removable lens layer, and a second removable lens layer.
- the base layer may include a substrate and a moth eye coating on a first side of the substrate.
- the first removable lens layer may include a substrate, a single or multi-layer interference antireflective coating on a first side of the substrate, and a fluoropolymer coating on a second side of the substrate opposite the first side.
- the first removable lens layer may be stacked on top of the base layer such that the second side of the substrate of the first removable lens layer faces the first side of the substrate of the base layer, the fluoropolymer coating being molded to fit the moth eye coating.
- the second removable lens layer may include a substrate, a single or multi-layer interference antireflective coating on a first side of the substrate, and an acrylic or polyurethane adhesive on a second side of the substrate opposite the first side.
- the second removable lens layer may be stacked on top of the first removable lens layer such that the second side of the substrate of the second removable lens layer faces the first side of the substrate of the first removable lens layer.
- the moth eye coating may comprise a polymer.
- the moth eye coating may define a pattern of bumps with half-wave pitch.
- the moth eye coating may define a pattern of bumps with half-wave height.
- the moth eye coating may define a pattern of cones.
- the base layer may include a moth eye coating on a second side of the substrate opposite the first side.
- the substrate may comprise polyethylene terephthalate (PET).
- PET polyethylene terephthalate
- the removable lens stack may further comprise a third removable lens layer including a substrate, a single or multi-layer interference antireflective coating on a first side of the substrate, and an acrylic or polyurethane adhesive on a second side of the substrate opposite the first side.
- the third removable lens layer may be stacked on top of the second removable lens layer such that the second side of the substrate of the third removable lens layer faces the first side of the substrate of the second removable lens layer.
- the removable lens stack may further comprise a fourth removable lens layer including a substrate, a single or multi-layer interference antireflective coating on a first side of the substrate, and an acrylic or polyurethane adhesive on a second side of the substrate opposite the first side.
- the fourth layer may be stacked on top of the third removable lens layer such that the second side of the substrate of the fourth removable lens layer faces the first side of the substrate of the third removable lens layer.
- a peel strength of the first removable lens layer may be less than 100 grams per inch.
- the peel strength of the first removable lens layer may be between 15 and 50 grams per inch.
- the peel strength of the first removable lens layer may be between 15 and 30 grams per inch.
- a visible light transmission (VLT) of the removable lens stack may be greater than 95%.
- the VLT of the removable lens stack may be greater than 98%.
- the method may comprise providing a base layer including a substrate and a moth eye coating on a first side of the substrate and stacking a first removable lens layer on top of the base layer, the first removable lens layer including a substrate, a single or multi-layer interference antireflective coating on a first side of the substrate, and a fluoropolymer coating on a second side of the substrate opposite the first side.
- the first removable lens layer may be stacked on top of the base layer such that the second side of the substrate of the first removable lens layer faces the first side of the substrate of the base layer.
- the method may further comprise laminating the stacked first removable lens layer to the base layer, the fluoropolymer coating being molded to fit the moth eye coating.
- the method may further comprise stacking a second removable lens layer on top of the first removable lens layer, the second removable lens layer including a substrate, a single or multi-layer interference antireflective coating on a first side of the substrate, and an acrylic or polyurethane adhesive on a second side of the substrate opposite the first side, the second removable lens layer being stacked on top of the first removable lens layer such that the second side of the substrate of the second removable lens layer faces the first side of the substrate of the first removable lens layer.
- the laminating may comprise laminating the stacked first removable lens layer to the base layer under pressure at a temperature less than 40 °C.
- the laminating may be performed prior to the stacking of the second removable lens layer on top of the first removable lens layer.
- the method may further comprise applying a corona treatment between the substrate and the moth eye coating of the base layer and/or between the substrate and the fluoropolymer coating of the first removable lens layer.
- the method may further comprise stacking a third removable lens layer on top of the second removable lens layer, the third removable lens layer including a substrate, a single or multi-layer interference antireflective coating on a first side of the substrate, and an acrylic or polyurethane adhesive on a second side of the substrate opposite the first side.
- the third removable lens layer may be stacked on top of the second removable lens layer such that the second side of the substrate of the third removable lens layer faces the first side of the substrate of the second removable lens layer.
- the method may further comprise stacking a fourth removable lens layer on top of the third removable lens layer, the fourth removable lens layer including a substrate, a single or multi-layer interference antireflective coating on a first side of the substrate, and an acrylic or polyurethane adhesive on a second side of the substrate opposite the first side.
- the fourth removable lens layer may be stacked on top of the third removable lens layer such that the second side of the substrate of the fourth removable lens layer faces the first side of the substrate of the third removable lens layer.
- Figure 1 is a cross-sectional view of a base layer and two removable lens layers of a removable lens stack according to an embodiment of the present disclosure
- Figure 2 is a cross-sectional view of the removable lens stack having the layers of Figure 1;
- Figure 3 is a cross-sectional view of a base layer and removable lens layers of a removable lens stack according to another embodiment of the present disclosure; and [0035] Figure 4 is a cross-sectional view of the removable lens stack having the layers of Figure 3.
- Figure 1 is a cross-sectional view of a base layer 100 and two removable lens layers 200, which may be stacked together to form a removable lens stack 10 as shown in cross-section in Figure 2.
- the base layer 100 of the removable lens stack 10 may be affixed to a surface such as a goggle lens or visor or a transparent window of a surgical helmet, hood, or gown, for example, or alternatively may be attached at a perimeter thereof to a frame such that the removable lens stack 10 itself serves as the lens, visor, face shield, etc. (i.e. without being affixed to a surface).
- two removable lens layers 200 are shown, which are stacked on the base layer 100 to form the removable lens stack 10.
- each of the removable lens layers 200 may comprise a substrate 210 and a moth eye coating 220 on a first side 212 thereof.
- the base layer 100 may likewise comprise a substrate 110 and a moth eye coating 120a on a first side 112 thereof, as well as an optional moth eye coating 120b on a second side 114 opposite the first side 112.
- the removable lens stack 10 may have very low reflectance and, accordingly, may exhibit a visible light transmission (VLT) of greater than 95% or in some cases greater than 98% (e.g. >99% with reflections sub 1%).
- VLT visible light transmission
- each removable lens layer 200 may additionally comprise a fluoropolymer coating 230 on a second side 214 of the substrate 210 opposite the first side 212.
- a fluoropolymer coating 230 on a second side 214 of the substrate 210 opposite the first side 212.
- each fluoropolymer coating 230 may thus be molded to fit the moth eye coating 120a, 220 of the immediately preceding layer 100, 200.
- the resulting mechanical interlocking of the moth eye coatings 120a, 220 with the molded female patterns corresponding thereto formed in the adjacent fluoropolymer coatings 230 may function similarly to a zipper to fix the adjacent layers together. Owing to this mechanical interlocking, the use of an acrylic or other tacky adhesive on the moth eye coating 120a, 220 may be entirely avoided, preventing the increased peel strength associated with such conventional adhesives collecting around the bumps of the moth eye coating 120a, 220.
- the removable lens layer(s) 200 may advantageously have a much lower peel strength, which may be less than 100 grams per inch and may, for example, be between 15 and 50 grams per inch or more particularly between 15 and 30 grams per inch (e.g. 25 grams per inch), making it possible for the wearer to remove each layer 200 as desired with a reasonable amount of pulling force.
- a tacky adhesive to affix the base layer 100 to a surface may not present a problem since the base layer 100 need not be removable and thus an increased peel strength caused by buildup of adhesive around the bumps of the optional moth eye coating 120b may be acceptable.
- the substrate 110, 210 of each layer 100, 200 may comprise a transparent polymer such as polyethylene terephthalate (PET) and may be 1 to 10 mil thick, for example, around 2 mil thick for the substrate 210 of each removable lens layer 200 with the substrate 110 of the base layer 100 being the same thickness or typically thicker (e.g. 7 mil).
- PET polyethylene terephthalate
- the moth eye coating 220 of each of the removable lens layers 200, as well as the moth eye coating(s) 120a, 120b of the base layer 100 may comprise a polymer and may typically be made of a hard polymer such as glassy carbon having a Mohs hardness of 7, for example.
- the moth eye coating 120a, 120b, 220 may define a pattern of nano sized micro-projections or bumps (e.g. transparent cones) on the surface of the substrate 110, 210 with dimensions on the order of the wavelength of light (e.g. visible light), such as half-wave pitch and/or half-wave height, to produce the antireflective effect.
- the pitch and/or height of the bumps may be 200-375 nm.
- Various shapes are possible for the bumps of the moth eye coating 120a, 120b, 220, including rounded or rectangular raised surfaces instead of cones, for example.
- the moth eye coating 120a, 120b, 220 may be refractive index matched (e.g. to within 0.2) with the substrates 110, 210 and with the fluoropolymer coating(s) 230, as well as with any adhesives that may be used (as described below), such that the entire removable lens stack 10 may have a consistent index of refraction (e.g. within 0.2).
- a removable bonding material is used to wet each pair of adjacent surfaces together.
- the term “wetting,” in this context, may refer to when two surfaces come in such close contact with each other that the contact displaces all of the air in between the two surfaces, allowing for good bonding.
- an acrylic removable adhesive may be used to wet the surfaces together and promote bonding.
- Patent No. 9,295,297 entitled “Adhesive Mountable Stack of Removable Layers,” the entire contents of which is expressly incorporated by reference herein.
- adhesive is tacky to the touch, issues arise when bonding two surfaces together where one or both surfaces have a moth eye coating.
- the adhesive fills in around the micro-projections of the moth eye coating, drastically increasing the peel strength beyond what is functionally suitable for a removable lens stack.
- the fluoropolymer coating(s) 230 may be provided on the second side 214 of each substrate 210.
- the fluoropolymer coating 230 may be an index-matched (e.g.
- soft fluoropolymer such as fluorinated ethylene-propylene copolymer (FEP), perfluoroalkoxy alkane (PFA), or tetrafluoroethylene perfluoro(methyl vinyl ether) (MFA) that is not tacky to the touch but is moldable under laminating pressure to produce a debossed (female) pattern corresponding to the bumps of the abutting moth eye coating 120a, 220.
- FEP fluorinated ethylene-propylene copolymer
- PFA perfluoroalkoxy alkane
- MFA tetrafluoroethylene perfluoro(methyl vinyl ether)
- an adhesion treatment 140a, 240 may be provided between the substrate 110 and moth eye coating 120a of the base layer 100 and/or between the substrate 210 and moth eye coating 220 of each removable lens layer 200.
- an adhesion treatment 140b may be provided between the substrate 110 and the moth eye coating 120b.
- an adhesion treatment 250 may similarly be provided between the substrate 210 and the fluoropolymer coating 230.
- the adhesion treatments 140a, 140b, 240, 250 may comprise a pressure sensitive adhesive such as a silicone adhesive (e.g.
- a polydimethyl/methylvinyl siloxane polymer and resin dispersed in toluene/isopropyl alcohol such as an adhesive sold under the name DOWSILTM 7655 Adhesive or DOWSILTM 7656 Adhesive by the Dow Chemical Company).
- the adhesive may be index matched (e.g. to within 0.2) with the substrates 110, 210 and other elements of the removable lens stack 10 as noted above.
- the base layer 100 and one or more removable lens layers 200 may be manufactured by coating each substrate 110, 210 with the moth eye coating(s) 120a, 120b, 220 and fluoropolymer coating 230, which may in some cases be adhered to the substrates 110, 210 by adhesion treatments 140a, 140b, 240, 250 as described above.
- adhesion treatments 140a, 140b, 240, 250 as described above.
- a corona treatment may be applied between the substrate 110, 210 and the moth eye coating 120a, 120b, 220, and/or between the substrate 210 and the fluoropolymer coating 220. This may ensure that the fluoropolymer coating 220 remains with the outermost removable lens layer 200 as it is pulled off the removable lens stack 10, for example.
- the corona treatment may be applied instead of or in addition to the above-described adhesion treatments 140a, 140b, 240, 250.
- the removable lens layer(s) 200 may then be stacked on top of the base layer 100 such that the second side 214 of the substrate 210 of each removable lens layer 200 faces the first side 112, 212 of the substrate 110, 210 of an immediately preceding layer from among the base layer 100 and the one or more removable lens layers 200 (as the case may be).
- a first removable lens layer 200 (shown in the center of each figure) is stacked on the base layer 100 and a second removable lens layer 200 (shown in the left-hand side of each figure) is stacked on the first removable lens layer 200. Additional removable lens layers 200 may similarly be provided and added to the stack.
- the removable lens layer(s) 200 may then be laminated to the base layer 100 under pressure with or without heat, for example, under pressure at a temperature less than 40 °C. It should be noted that the base layer 100 and removable lens layer(s) 200 may be laminated together in a single lamination process or in multiple lamination processes, for example, with each removable lens layer 200 added to the stack in a separate lamination process (or with multiple removable lens layers 200 being laminated together before being laminated to the base layer 100). As a result of the lamination, each fluoropolymer coating 230 may be molded to fit the moth eye coating 120a, 220 of the immediately preceding layer.
- the hard bumps of the moth eye coating 120a, 220 may press into the soft fluoropolymer coating 230 to produce the corresponding debossed (female) pattern in the fluoropolymer coating 230.
- the above-described mechanical interlocking between the layers 100, 200 may be achieved to produce the desired peel strength (e.g. 25 grams per inch) without the use of tacky adhesives between the layers 100, 200 that might otherwise fill in between the bumps and increase the peel strength too much.
- the air between the layers 100, 200 may be expelled during the laminating process, allowing for wetting of the opposing layers 100, 200 (and slight adhesion as a result), while the refractive index interface may be effectively eliminated due to the index gradient created by the architecture of the moth eye coatings 120a, 220.
- the resulting visible light transmission (VLT) of the removable lens stack 10 may be greater than 95% (e.g. 96% with 4% reflection), as opposed to 92% with 8% reflection that might be found in an uncoated lens. In some cases, the VLT may be greater than 98% (e.g. >99%), especially when the moth eye coating 120b is provided so that there are moth eye coatings 120a, 120b, 220 on both sides of the stack 10.
- the wearer may easily peel off the outermost removable lens layer 200 to reveal an unblemished removable lens layer 200 (or the base layer 100) underneath.
- the pulling force used to remove the outermost removable lens layer 200 may generally involve an initial outward force (perpendicular to the stack 10) as the wearer lifts the outermost removable lens layer 200 off the stack 10 on one side to separate it from the other removable lens layers 200 (e.g. by grasping an easily accessible tab on one side of the stack 10), followed by a continuous sideways force (with a component parallel to the stack 10) as the wearer peels the outermost removable lens layer 200 off.
- the continuous sideways force that is responsible for the majority of the separation of the removable lens layers 200 may have more of a tendency to lift off the outermost removable lens layer 200 than to separate subsequent layers 200 underneath. Therefore, the wearer can readily peel off one layer 200 at a time without accidentally tearing off additional layers 200 of the removable lens stack 10.
- Hybrid stacks are also contemplated, in which one or more layers having moth eye coatings may be combined with one or more layers having alternative types of antireflective coatings such as single or multi-layer interference antireflective coatings.
- Figure 3 is a cross-sectional view of the same base layer 100 as in Figure 1 but this time with a removable lens layer 300 and two removable lens layers 400, which may be stacked together to form a removable lens stack 20 as shown in cross-section in Figure 4.
- the base layer 100 of the removable lens stack 20 may be the same as that of the removable lens stack 10 as shown in Figures 1 and 2 and may similarly be affixed to a surface such as a goggle lens or visor or a transparent window of a surgical helmet, hood, or gown, for example, or alternatively may be attached at a perimeter thereof to a frame such that the removable lens stack 20 itself serves as the lens, visor, face shield, etc.
- the removable lens stack 20 employs moth eye coating in some but not all layers, reducing the difficulty and expense associated with producing moth eye coating.
- a first removable lens layer 300 may include a substrate 310, a single or multi-layer interference antireflective coating 340 on a first side 312 of the substrate 310, and a fluoropolymer coating 330 on a second side 314 of the substrate 310 opposite the first side 312 (with optional adhesion treatment 350).
- the fluoropolymer coating 330 may be molded to fit the moth eye coating 120a as described above.
- One or more additional removable lens layers 400 may also be added to the stack, each including a substrate 410, a single or multi-layer interference antireflective coating 440 on a first side 412, and an adhesive 450 such as an acrylic or polyurethane adhesive on a second side 414.
- One such removable lens layer 400 may be stacked on the removable lens layer 300 such that the second side 414 of the substrate 410 faces the first side 312 of the substrate 300. Further removable lens layers 400 may be stacked thereon, with the second side 414 of each substrate 410 facing the first side 412 of each preceding substrate 400.
- any concern about the adhesive 450 filling in around the bumps and undesirably increasing the peel strength can be avoided.
- various kinds of adhesive 450 may be used including an acrylic or polyurethane adhesive such as a pressure sensitive adhesive (PSA), which may adhere (e.g., with the application of pressure) to the antireflective coating 340, 440 of the preceding layer 300, 400.
- PSA pressure sensitive adhesive
- the hybrid removable lens stack 20 may effectively achieve the superior antireflective properties of moth eye by incorporating it in one or more layers while at the same time benefiting from one or more layers having less expensive antireflective coatings 340, 440 and/or adhesives 450.
- the hybrid removable lens stack 20 may thus represent a “best of both worlds” compromise that balances the need for a high degree of antireflection with the manufacturing costs.
- one removable lens layer 300 having a non-ME AR coating 340 and a fluoropolymer coating 330 to interface with the moth eye coating 120a of the base layer 100
- two removable lens layers 400 having a non-ME AR coating 440 and an acrylic or polyurethane adhesive 450
- hybrid stacks of various other combinations of layers are also contemplated. For example, more or fewer removable lens layers 400 may be used.
- one or more removable lens layers 200 may be added between the base layer 100 and the removable lens layer 300, In this case, the fluoropolymer coating 330 of the removable lens layer 300 may interface with the moth eye coating 220 of the outermost removable lens layer 200 instead of directly with the moth eye coating 120a of the base layer 100.
- substrates with moth eye coating(s) may be incorporated farther outward in the stack with one or more substrates having non-ME AR coating(s) underneath.
- a modified layer 400 may be used having a moth eye coating in place of the non-ME AR coating 440 (but with the acrylic or polyurethane adhesive 450 still being used to interface with a non-ME AR coating underneath).
- Hybrid removable lens stacks 20 of various configurations may be economically designed and produced in accordance with the particular needs of the manufacturer and consumer, both in terms of the degree of antireflection required and the desired unit cost.
- moth eye coatings on both sides of a single layer is not necessarily limited to the base layer 100.
- Either of the removable lens stacks 10, 20 may include such double-sided moth-eye layers at any position in the stack.
- the stack may consist of multiple layers 100 stacked on top of each other (which may in some cases be the only type of layer in the stack such as a stack consisting of three layers 100).
- a fluoropolymer coating may be applied that may mold to the shape of the moth-eye coating as described above, except that in this case the fluoropolymer coating may mold to the shapes of two moth-eye coatings that face each other with the fluoropolymer coating therebetween.
- the fluoropolymer coating may be coated on the forward-facing moth-eye coating 120a of a first layer 100, causing one side of the fluoropolymer coating to mold to the shape of the forward-facing motheye coating 120a, and then a second layer 100 may be stacked on the fluoropolymer coating and laminated, causing the other side of the fluoropolymer coating to mold to the shape of the rear-facing moth-eye coating 120b of the second layer 100.
- Stacking of further layers 100 can continue in the same way (or in combination with other types of layers as described above), with the fluoropolymer coating being molded to the shapes of two adjacent moth-eye coatings wherever necessary.
- a release treatment may be applied to each forward-facing moth-eye coating 120a, and/or an adhesion promoting treatment may be applied to each rear-facing moth-eye coating 120b, thus encouraging the fluoropolymer coating to come off with each layer 100 as it is removed from the stack.
- double-sided moth-eye layers in this way, a high degree of antireflection can be achieved.
- producing two moth-eye coatings 120a, 120b on the same substrate 110 may be more cost effective than producing individual moth-eye coatings on separate substrates, making the use of double-sided moth-eye layers potentially more efficient.
- Manufacturing processes may also be simplified (and costs reduced) by the use of the same repeated layer 100 in place of multiple different layers.
Landscapes
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Optics & Photonics (AREA)
- Eyeglasses (AREA)
Abstract
Description
Claims
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202480011776.5A CN120660021A (en) | 2023-02-10 | 2024-02-05 | Low reflectivity removable lens stack |
| EP24753858.0A EP4662517A1 (en) | 2023-02-10 | 2024-02-05 | Low reflectance removable lens stack |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US18/167,673 | 2023-02-10 | ||
| US18/167,673 US11709296B2 (en) | 2021-07-27 | 2023-02-10 | Low reflectance removable lens stack |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2024167837A1 true WO2024167837A1 (en) | 2024-08-15 |
Family
ID=92263402
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2024/014446 Ceased WO2024167837A1 (en) | 2023-02-10 | 2024-02-05 | Low reflectance removable lens stack |
Country Status (3)
| Country | Link |
|---|---|
| EP (1) | EP4662517A1 (en) |
| CN (1) | CN120660021A (en) |
| WO (1) | WO2024167837A1 (en) |
Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20110277361A1 (en) * | 2010-04-16 | 2011-11-17 | Anthony John Nichol | Sign comprising a film-based lightguide |
-
2024
- 2024-02-05 CN CN202480011776.5A patent/CN120660021A/en active Pending
- 2024-02-05 WO PCT/US2024/014446 patent/WO2024167837A1/en not_active Ceased
- 2024-02-05 EP EP24753858.0A patent/EP4662517A1/en active Pending
Patent Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20110277361A1 (en) * | 2010-04-16 | 2011-11-17 | Anthony John Nichol | Sign comprising a film-based lightguide |
Also Published As
| Publication number | Publication date |
|---|---|
| EP4662517A1 (en) | 2025-12-17 |
| CN120660021A (en) | 2025-09-16 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US12124057B2 (en) | Low reflectance removable lens stack | |
| US11624859B2 (en) | Low reflectance removable lens stack | |
| JP6458392B2 (en) | Transparent film for face protection | |
| US12461286B2 (en) | Low reflectance removable lens stack | |
| KR100380677B1 (en) | Retroreflective sheet and article having retroreflectiveness | |
| US10000037B2 (en) | Transparent laminate and protective tool including the same | |
| US20110117345A1 (en) | Optical Article | |
| JP2011037258A (en) | Transparent conductive laminated body and chromaticity uniformity improving method for the same | |
| EP4662517A1 (en) | Low reflectance removable lens stack | |
| WO2025151172A1 (en) | Low reflectance removable lens stack | |
| JP6655239B2 (en) | Transparent laminate and protective device using the same | |
| WO2007124258A2 (en) | Dichroic filters on flexible polymer film substrates | |
| CN119948369A (en) | Low static optical removable lens stack | |
| JP2014035365A (en) | Polarizer protective polyester film | |
| KR100528394B1 (en) | Base sheet of polarizing 0ptical lens and method of manufacturing the same | |
| KR102801003B1 (en) | Laminate and method for preparing the laminate | |
| CN120821015A (en) | Light guide device with stacked structure, preparation method thereof, and optical display device | |
| JP2008152118A (en) | Optical film | |
| CN112099124A (en) | Dense light wave multiplexing optical filter | |
| JP2019191426A (en) | Optical member |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 24753858 Country of ref document: EP Kind code of ref document: A1 |
|
| ENP | Entry into the national phase |
Ref document number: 2025546258 Country of ref document: JP Kind code of ref document: A |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 202480011776.5 Country of ref document: CN |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| WWP | Wipo information: published in national office |
Ref document number: 202480011776.5 Country of ref document: CN |
|
| WWP | Wipo information: published in national office |
Ref document number: 2024753858 Country of ref document: EP |