Electrochromic lenses and methods of fabricating the same
09977262 ยท 2018-05-22
Assignee
Inventors
Cpc classification
G02C7/104
PHYSICS
C09J2203/326
CHEMISTRY; METALLURGY
G02F1/161
PHYSICS
C09J2301/122
CHEMISTRY; METALLURGY
Y10T428/1476
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G02C7/022
PHYSICS
International classification
G02C7/10
PHYSICS
G02F1/161
PHYSICS
Abstract
The present disclosure provides a method of constructing an electrochromic lens which simplifies the steps of applying the electrochromic electrode coatings onto the lens elements. An electrochromic lens is constructed by applying an electrochromic electrode film onto the inner surfaces of facing lens elements and then sandwiching an electrochromic material between the lens elements. The films include a release liner having a release coating, an adhesive coating overlying the release coating of the release liner, an indium tin oxide (ITO) coating overlying the adhesive coating, and an active electrochromic electrode (EE) coating or active electrochromic electrode (ECE) coating overlying said ITO film coating. The release liner is removed and the remaining layers of the film are adhered to the lens.
Claims
1. An electrochromic eyewear lens comprising: a first optical lens having an inner surface, an indium tin oxide (ITO) coating overlying said inner surface, an active electrochromic electrode (EE) coating overlying said ITO coating, and an adhesive material disposed between said ITO coating and said inner surface to adhere said ITO coating, with said active EE coating, to said inner surface, said adhesive material further comprising a removable release liner; a second optical lens having an inner surface, an indium tin oxide (ITO) coating overlying said inner surface, an active electrochromic counterelectrode (ECE) coating overlying said ITO coating, and an adhesive material disposed between said ITO coating and said inner surface to adhere said ITO coating, with said active ECE coating, to said inner surface, said adhesive material further comprising a removable release liner; wherein said active EE coating comprises tungsten oxide and said active ECE coating comprises cerium-titanium oxide; said first and second optical lenses being arranged in adjacent relation with said EE coating and said ECE coating arranged in closely spaced facing relation; an electrochromic material sandwiched between said EE coating and said ECE coating, said electrochromic material comprising a liquid or gel electrolyte; a gasket extending around a peripheral edge of the electrochromic material layer; said sandwich of adhesive material, ITO coating, EE coating, electrochromic material, ECE coating, ITO coating, and adhesive material forming an electrochromic element; a power source; and an electrical circuit connecting said EE coating and said ECE coating with said power source for selectively applying power across said electrochromic material; whereby said electrochromic element is trimmable to size of said first optical lens and said second optical lens, and said release liners are removed prior to adhering said ITO coating to said inner surface of said first optical lens and said second optical lens, respectively.
2. The electrochromic eyewear lens of claim 1, wherein said release liners each comprise a polymer film having a release coating.
3. The electrochromic eyewear lens of claim 2, wherein said release coating is a silicone release coating.
Description
DESCRIPTION OF THE DRAWINGS
(1) An exemplary embodiment will now be described further by way of example with reference to the following examples and figures, which are intended to be illustrative only and in no way limiting upon the scope of the disclosure.
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
DESCRIPTION OF THE EXEMPLARY EMBODIMENTS
(14) Referring now to the drawings, the present disclosure provides a method of constructing an electrochromic lens which simplifies the steps of applying the electrochromic electrode coatings onto the lens elements.
(15) Referring to
(16) Turning to
(17) For purposes of this disclosure, the term electrochromic electrolyte material is used to describe the collective electrochromic layers between the conductive electrodes. These layers typically include an electrochromic layer, such as tungsten oxide, an ion conductor/electrolyte and an ion storage layer. The material may be a solid, liquid or gel.
(18) The optical lens elements 16 may preferably comprise a molded polycarbonate material common in safety eyewear, although any transparent substrate material may be used within the scope of the disclosure.
(19) Referring to
(20) The release liner 20 may comprise a low surface energy polymer film which is coated with a silicone release coating. Other polymer and paper liner materials and release coatings are also contemplated.
(21) The adhesive coating 22 may comprise any compatible permanent contact adhesive material based on for example, acrylates, rubbers, silicones, ethylene vinyl acetate copolymers, or thermoplastic elastomers.
(22) The electrochromic electrode materials 26 may comprise inorganic based coatings such tungsten oxide for the active electrochromic electrode (EE) and cerium-titanium oxide for the active electrochromic counter electrode (ECE) or organic based coatings, for example, redox active polymers such as polythipene and polyaniline.
(23) In use, the film 14 is trimmed to size, the release liner 20 is removed and the remaining layers of the film 22,24,26 are adhered to the lens element 16 resulting in a lens element as illustrated in
(24) As explained above, to form the completed lens an electrochromic electrolyte material 18 is sandwiched between two complementary lens elements, one having an electrode (EE) film and the other having a counter electrode (ECE) film (See
(25) The completed lens 12 is then assembled with an eyewear frame 11, and provided with a power source 28, an electrical circuit 30 connecting the power source with the electrochromic electrodes (EE and ECE) through the transparent conductor (indium tin oxide) layers, and a switch 32 for selectively energizing the lens 12 to modify the transmittance of the lens. A sensor (not shown) is also contemplated within the disclosure. In the embodiment shown in
(26) Turning briefly to
(27) In another exemplary embodiment illustrated in
(28) In yet another exemplary embodiment illustrated in
(29) It can therefore be seen that the present disclosure provides innovative electrochromic lens constructions and a method of constructing an electrochromic lens which simplifies the steps of applying the electrochromic electrode coatings onto the lens elements.
(30) For these reasons, exemplary embodiments described herein are believed to represent a significant advancement in the art which has substantial commercial merit.
(31) While there is shown and described herein certain specific structure embodying the exemplary embodiments, it will be manifest to those skilled in the art that various modifications and rearrangements of the parts may be made without departing from the spirit and scope of the underlying inventive concept and that the same is not limited to the particular forms herein shown and described except insofar as indicated by the scope of the appended claims.