CA2655349C - Static progressive surface region in optical communication with a dynamic optic - Google Patents

Static progressive surface region in optical communication with a dynamic optic Download PDF

Info

Publication number
CA2655349C
CA2655349C CA2655349A CA2655349A CA2655349C CA 2655349 C CA2655349 C CA 2655349C CA 2655349 A CA2655349 A CA 2655349A CA 2655349 A CA2655349 A CA 2655349A CA 2655349 C CA2655349 C CA 2655349C
Authority
CA
Canada
Prior art keywords
lens
dynamic optic
ophthalmic lens
optic
dynamic
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.)
Active
Application number
CA2655349A
Other languages
French (fr)
Other versions
CA2655349A1 (en
Inventor
Ronald D. Blum
William Kokonaski
Venkatramani S. Iyer
Joshua N. Haddock
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
E Vision LLC
Original Assignee
E Vision LLC
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by E Vision LLC filed Critical E Vision LLC
Publication of CA2655349A1 publication Critical patent/CA2655349A1/en
Application granted granted Critical
Publication of CA2655349C publication Critical patent/CA2655349C/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Classifications

    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C7/00Optical parts
    • G02C7/02Lenses; Lens systems ; Methods of designing lenses
    • G02C7/06Lenses; Lens systems ; Methods of designing lenses bifocal; multifocal ; progressive
    • G02C7/061Spectacle lenses with progressively varying focal power
    • G02C7/063Shape of the progressive surface
    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C7/00Optical parts
    • G02C7/02Lenses; Lens systems ; Methods of designing lenses
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61FFILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
    • A61F9/00Methods or devices for treatment of the eyes; Devices for putting-in contact lenses; Devices to correct squinting; Apparatus to guide the blind; Protective devices for the eyes, carried on the body or in the hand
    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C7/00Optical parts
    • G02C7/02Lenses; Lens systems ; Methods of designing lenses
    • G02C7/06Lenses; Lens systems ; Methods of designing lenses bifocal; multifocal ; progressive
    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C7/00Optical parts
    • G02C7/02Lenses; Lens systems ; Methods of designing lenses
    • G02C7/06Lenses; Lens systems ; Methods of designing lenses bifocal; multifocal ; progressive
    • G02C7/061Spectacle lenses with progressively varying focal power
    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C7/00Optical parts
    • G02C7/02Lenses; Lens systems ; Methods of designing lenses
    • G02C7/06Lenses; Lens systems ; Methods of designing lenses bifocal; multifocal ; progressive
    • G02C7/061Spectacle lenses with progressively varying focal power
    • G02C7/068Special properties achieved by the combination of the front and back surfaces
    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C7/00Optical parts
    • G02C7/02Lenses; Lens systems ; Methods of designing lenses
    • G02C7/08Auxiliary lenses; Arrangements for varying focal length
    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C7/00Optical parts
    • G02C7/02Lenses; Lens systems ; Methods of designing lenses
    • G02C7/08Auxiliary lenses; Arrangements for varying focal length
    • G02C7/081Ophthalmic lenses with variable focal length
    • G02C7/083Electrooptic lenses
    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C2202/00Generic optical aspects applicable to one or more of the subgroups of G02C7/00
    • G02C2202/20Diffractive and Fresnel lenses or lens portions

Landscapes

  • Health & Medical Sciences (AREA)
  • Ophthalmology & Optometry (AREA)
  • Physics & Mathematics (AREA)
  • General Health & Medical Sciences (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Heart & Thoracic Surgery (AREA)
  • Biomedical Technology (AREA)
  • Engineering & Computer Science (AREA)
  • Vascular Medicine (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Animal Behavior & Ethology (AREA)
  • Public Health (AREA)
  • Veterinary Medicine (AREA)
  • Eyeglasses (AREA)
  • Liquid Crystal (AREA)

Abstract

An ophthalmic lens is presented in which the lens includes a progressive addition region and a dynamic optic. The dynamic optic and the progressive addition region are in optical communication. The progressive addition region has an add power which Is less than a user's neat viewing distance add power. The dynamic optic, when activated, provides the additional needed optical power for the wearer to see clearly at a near distance. This combination leads to the unexpected result that not only does the wearer have the ability to see clearly at intermediate and near distances, but the level of unwanted astigmatism, distortion, and vision compromise are reduced significantly.

Description

STATIC PROGRESSIVE SURFACE REGION IN OPTICAL COMMUNICATION WITH A
DYNAMIC OPTIC
BACKGROUND OF THE INVENTION
Field of the Invention
[002] The present invention relates to multifocal ophthalmic lenses, lens designs, lens systems, and eyewear products or devices utilized on, in or about the eye. More specifically, the present invention relates to multifocal ophthalmic lenses, lens designs, lens systems, and eyewear products which provide an optical effect/ end result that in most cases reduces unwanted distortion, unwanted astigmatism, and vision compromises associated with Progressive Addition Lenses to a very acceptable range for the wearer.
Description of the Prior Art
[003] Presbyopia is the loss of accommodation of the crystalline lens of the human eye that often accompanies aging. This loss of accommodation results in an inability to focus on near distance objects. The standard tools for correcting presbyopia are multifocal ophthalmic lenses. A multifocal lens is a lens that has more than one focal length (i.e. optical power) for correcting focusing problems across a range of distances. Multifocal ophthalmic lenses work by means of a division of the lens's area into regions of different optical powers. Typically, a relatively large area located in the upper portion of the lens corrects for far distance vision errors, if any. A
small area located in the bottom portion of the lens provides additional optical power for correcting near distance vision errors caused by presbyopia. A muItifocal lens rnay also contain a small region located near the middle portion of the lens which provides additional optical power for correcting intermediate distance vision errors.
[004] The transition between the regions of different optical power may be either abrupt, as is the case for bifocal and trifocal lenses, oi smooth and continuous, as is the case with Prop essive Addition Lenses, Progressive Addition Lenscs arc a type a multifocal lenses that comprise a gradient of continuously increasing positive dioptric optical power= from the beginning of the far distance viewing zone of the lens to the near distance viewing zone in the lower portion of the lens. This progression of optical power generally starts at appioximately what is known as the fitting cross or fitting point of the lens and continues until the full add powei is realized in the =
near distance viewing zone and then plateaus. Conventional and state-of-the-art Progressive Addition Lenses utilize a surface topography on one oi both exterior surfaces of the lens shaped to 'create this progression of optical power.. Progressive Addition Lenses are known within the optical industry when plural as PALs or when singular as a PAL. PAL lenses are advantageous over. traditional bifocal and trifocal lenses in that they can provide a user with a lineless, cosmetically pleasing multifocal lens with continuous vision correction when focusing on = objects at a far distance to objects at a near distance or vice versa
(005] While PALs are now widely accepted and in vogue within the USA and throughout the = world as a correction for presbyopia, they also have sex ious vision compromises_ These compromises include but are not limited to unwanted astigmatism, distortion, and perceptual blur These vision compromises may affect a user's horizontal viewing width, which is the width of the visual field that can be seen clearly as a usei looks from side to side while focused at a given distance. Thus, PAL lenses may have a narrow horizontal viewing Width when focusing at an intermediate distance, which can make viewing a large section of a computer screen difficult. Similarly, PAL lenses may have a narrow horizontal viewing width when focusing at a near distance, which can make viewing the complete page of a book or newspapei difficult. Far distance vision may be similarly affected. PAL lenses may also present a difficulty to a wearer when playing .spoits due to the distortion of' the lenses.. Additionally, because the optical add power is placed in the bottom region of the PAL lens, the wearer must tilt his or her head back to make use-of this region when viewing an object above his or her head which is located at a near or intermediate distance. Contrastingly, when a wearei is descending stairs and assumes a downward glance, a near distance focus is provided by the lens instead of the far distance focus necessary to see one's feet and the stairs clearly..
Ihus, the wearer's feet will be out of focus and appear blurred. In addition to these liznitations, many wearers ofPALs .
experience an unpleasant effect known as visual motion (often referred to as "swim") due to the unbalanced distortion that exists in each of the lenses. In fact, many people refuse to wear such . =
lenses because of this effect.
[006] When considering the near optical power needs of a presbyopic individual, the amount of near optical power required is directly related to the amount of accommodative amplitude (near distance focusing ability) the individual has left in his or eyes.
Generally, as an individual ages the amount of accommodative amplitude decreases. Accommodative amplitude may also decrease for various health reasons. Therefore, as one ages and becomes more presbyopic, the optical power needed to correct one's ability to focus at a neat viewing distance and an intermediate viewing distance becomes 'stronger in terms of the needed dioptric optical add power By way of example only, an individual 45 years old may need +I 00 diopters of near viewing distance optical powet to see clearly at a near point distance, while an individual 80 -years old may need +2.75 diopters to +3.00 diopters of near viewing distance optical power to see clearly at the same near point distance. Because the degree of vision compromises in PAL
lenses increases with dioptric optical add power, a more highly presbyopic individual will be subject to greater vision compromises.. In the example above, the individual who is 45 year s of' age will have a lower level of distortion associated with his or her lenses than the individual who is 80 years of age. As is readily apparent, this is the complete opposite of what is needed given the quality of life issues associated with being elderly, such as frailty or loss of dexterity Prescription multifocal lenses that add compromises to vision function and inhibit safety are in sharp contrast to lenses that make lives easier, safer, and less complex..
[007] By way of example only, a conventional PAL with a +1 OOD near optical power may have approximately +1..00D or less of unwanted astigmatism. However a conventional PAL
with a +2.50D near optical power may have apProximately +2.75D or !note of unwanted' astigmatism while a conventional PAL with a +325D near point optical power may have approximately +3 75D or more of' unwanted astigmatism.. Thus, as a PAL's near distance add power increases (for example a +2 50D PAL compared to a +1.00D PAL), the unwanted astigmatism found within the PAL increases at a greater than linear rate with respect to the near distance add power
[008] More recently, a double-sided PAL has been developed which has a progressive addition surface topography placed on each side of the lens. The two progressive addition surfaces are aligned and rotated relative to one another to not only give the appropriate total additive near distance add power required, but also to have the unwanted astigmatism created by the PAL
on one surface of the lens counteract some of the unwanted astigmatism created by the PAL on the other surface of the lens. Even though this design somewhat reduces the unwanted astigmatism and distortion for a given near distance add power as compared to traditional PAL lenses, the level of unwanted astigmatism, distortion and other vision compromises listed above still causes serious vision problems for the wearer.
[009] Therefore, there is a pressing need to provide a spectacle lens and/ or eyewear system that satisfies the vanity needs of presbyopic individuals and at the same time corrects their presbyopia in a manner that reduces distortion and blur, widens the horizontal viewing width, allows for improved safety, and allows for improved visual ability when playing sports, working on a computer, and reading a book or newspaper.
SUMMARY OF THE INVENTION
[009a] Certain exemplary embodiments can provide an ophthalmic lens for a user, comprising: an optical substrate having a progressive addition region, wherein said progressive addition region has an add power therein that is less than the user's near viewing distance add power vision correction;
and a tunable dynamic optic in optical communication with the progressive addition region and having a non-zero optical power when activated; wherein said dynamic optic is off-center relative to said progressive addition region; said dynamic optic has a peripheral edge located away from a peripheral edge of the optical substrate; a top of said peripheral edge of said dynamic optic located within approximately 15 mm above a fitting point of the lens; said dynamic optic comprises a blend zone that continuously transitions the optical power within and adjacent the dynamic optic's peripheral edge to reduce visibility of the dynamic optic's peripheral edge when the dynamic optic is activated; said tunable dynamic optic is tuned with the application of electrical energy, mechanical energy or force; and said optical power of said tunable dynamic optic, when added to said add power of said progressive addition region, is substantially equal to the user's near distance add power vision correction.
[0010] In an embodiment of the invention, an ophthalmic lens for a user having a fitting point may include a progressive addition region having a channel, wherein the progressive addition region has an add power therein. The ophthalmic lens may further include a dynamic optic in optical communication with the progressive addition region having an optical power when activated.
[0011] In an embodiment of the invention, an ophthalmic lens for a user having a fitting point may include a progressive addition region having a channel, wherein the progressive addition region has an add power therein. The ophthalmic lens may further include a dynamic optic in optical communication with the progressive addition region having an optical power when activated, wherein the dynamic optic has a top peripheral edge located within approximately 15 mm of the fitting point.
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] A specific embodiment of the present invention will be described with reference to the Following drawings, wherein:
4a
[0013] Figure IA shows an embodiment of a low add power Progressive Addition Lens having a fitting point and a progressive addition region;
[0014] Figure 1B shows a graph of optical power 130 taken along a cross section of'the lens of Figure 1A, along axis line AA;
[0015] Figute 2A shows an embodiment of the invention having a low add power Progressive Addition Lens combined with a much lat ger dynamic optic placed such that a portion of= the dynamic optic lies above a fitting point of the lens;
[0016] Figute 2B shows the combined lens of figure 2A having a combined optical power that is created because the dynamic optic is in optical communication with a progressive addition region;
[0017] Figure 34 shows an embodiment of' the invention having a low add power Piogressive .
Addition Lens and a dynamic optic placed such that a portion of the dynamic optic lies above a fitting point of the lens. Figure 34 shows when the dynamic optic is deactivated, the optical powei takcn along a line of sight from a wearer's eye through the fitting point provides the wearer with correct far distance vision;
[0018] Figure 3B shows the lens of Figure 3A. Figure 3B shows when the dynamic optic is activated, the optical power taken along a line of sight from the wearer's eye thiough the fitting point provides the wearer with a con ect inteimediate distance focusing power;
[0019] Figure 3C shows the lens of Figure 3A, Figure 3C shows when the dynamic optic is activated, the optical power taken along a line of' sight from the wearer's eye throughthe near distance viewing zone provides the wearer with a correct near distance focusing power;
[0020] Figure 4A shows an embodiment of the invention having a low add power Progressive Addition Lens combined with a dynamic optic that is larger than a progressive addition region and/ or channel and located above a fitting point of' the lens;
[0021] Figure 4B shows the optical powet that is provided by the fixed progressive addition surface or region taken along axis line AA ofFigure 4A;
[0022] Figure 4C shows the optical power that is pi ovided by the dynamic optic when activated taken along axis line AA of F igure 4A;
[0023] Figure 4D shows the combined poweis of' the dynamic electro-active optic and the fixed progressive addition region taken along axis line AA of Figure 4A Figure 4D
shows that the top and bottom distorted blend area of' the dynamic electro-active optic are outside both the fitting point and the progressive addition reading area and channel;
[0024] Figure 5A shows an embodiment of the invention in which a dynamic optic is located below a fitting point of a low add power Progressive Addition ens;
[0025] Figure 5B shows optical power taken along axis line AA ofFigure 5A;
[0026] .Figures 6A ¨ 6C show various embodiments of the size of the dynamic optic; and
[0027] Figures 7A ¨ 7K show unwanted astigmatic contour maps compar ing an existing state- =
of-the-art Progressive Addition Lens and embodiments of the invention which include a low add .power Progressive Addition Lens and a dynamic optic.
DESCRIPTION OF THE PREFERRED EMBODEVIENT
[0028] Many ophthalmological, optometric, and optical terms are used in this application. For the sake of clarity, their definitions are listed below:
[0029] Add Power: The optical power added to the far distance viewing optical power which is -required for clear near distance viewing in a multifocal lens. For example, if an individual has a far distance viewing prescription of -3.00D with a +2.00D add power for near distance viewing then the actual optical power in the near distance portion of the multifocal lens is -1 00D. Add power is sometimes referred to as plus power. Add= power may be further distinguished by referring to "near viewing distance add power" which refers to the add power in the near viewing distance pottion of the lens and "intermediate viewing distance add power" which refers to the add power in the intermediate viewing distance portion of the lens.
Typically, the intermediate viewing distance add power is approximately 50% of the nem viewing distance add power.. Thus, in the example above, the individual would have +1.00E) add power for intermediate distance viewing and the actual total optical power in the intermediate viewing distance portion of the multifocal lens is -2.00D.
[0030] Approximately: Plus or minus 10 percent, inclusive. Thus, the phrase "approximately min" may be understood to mean from 9 mm to 11 mm, inclusive.
[00.31] Blend Zone: An optical power transition along a peripheral edge of a lens whereby the optical power continuously transitions across the blend zone from a first corrective power to that of a second corrective'power or Vice versa. Generally the blend' zone is designed to have as small a width as possible A peripheral edge of a dynamic optic may include a blend zone so as to.reduce the visibility of the dynamic optic.. A blend zone is utilized for cosmetic enhancement reasons and also to enhance vision functionality. A blend zone is typically not considered a usable portion of the lens due to its high unwanted astigmatism A blend zone is also known as a transition zone.
[0032] Channel: The region of a Progtessive Addition Lens defined by increasing plus optical powei which extends from the far distance optical power legion or zone to the near distance optical power region cm zone. This optical powet progression starts in an area ofthe PAL known as the fitting point and ends in the near distance viewing zone.. The channel is sometimes referred to as the corridor.
[0033] Channel Length: The channel length is the distance measured from the fitting point to the location in the channel where the add power is within appzoximately 85% of the specified near distance viewing powet [0034] Channel Width: The natrowest portion of the channel bounded by an unwanted astigmatism that is above approximately +1.00D. This definition is useful when comparing PAL lenses due to the fact that a widet channel width generally coirelates with less distortion, better visual perfoimance, increased visual comfott, and easier adaptation for the wealet [0035] Contour. Maps: Plots that are generated tiorn measming and plotting the unwanted astigmatic optical power- of' a Progressive Addition Lens_ The contour plot can be generated with various sensitivities of' astigmatic optical power thus ptoviding a visual picture of where and to what extent a Progressive Addition Lens possesses unwanted astigmatism as part of its optical design Analysis of such maps is typically used to quantify the channel length, channel width, reading width and fai distance width of a PAL.. Contout maps may also be referred to as unwanted astigmatic power maps. These maps can also be used to measure and portray optical power in various parts of'the lens.
[0036] Conventional Channel Length: Due to aesthetic concerns or trends in eyeweat fashion, it may be desirable to have a lens that is foreshortened veitically.. In such a lens the channel is naturally also shorter. Conventional channel length refers to the length of a channel in a non-foreshottened PAL lens. These channel lengths are usually, but not always, approximately 15 mm ot longer. Genetally, a longet channel length means a widet channel width and less unwanted astigrnatism. Longer channel designs are often associated with "soft"
progressives, since the transition between far distance correction and near distance correction is softer due to the more gradual increase in optical power.

[0037] Dynamic lens: A lens with an optical power which is alterable with the application of' electrical energy, mechanical energy or force. Either the entire lens may have an alterable optical power, or only a pottion, region Or zone of the lens may have an alterable optical power.
The optical power of such a lens is dynamic or tunable such that the optical power can be switched between two or more optical powers. One of the optical powers may be that of substantially no optical power. Examples of dynamic lenses include electro-active lenses, meniscus lenses, fluid lenses, movable dynamic optics having one or more components, gas lenses, and membrane lenses having a member capable of being deformed. A
dynamic lens may also be referred to as a dynamic optic, a dynamic optical element; a dynamic optical zone or a dynamic optical region [0038] Far Distance Reference Point: A reference point located approximately 3 ¨ 4 mm above the fitting cross where the fax distance prescription or fax distance optical power of the lens can be measured easily.
[0039] Far Distance Viewing Zone: The portion of a lens containing an optical power which allows a user to see correctly at a fax viewing distance [0040] Far Distance Width: The narrowest horizontal width within the far.
distance viewing portion of the lens which provides clear, mostly distortion-free correction with an optical power within 0.25D of the wearer's far distance viewing optical power correction.
[0041] Far Viewing Distance: The distance to which one looks, by way of example only, when viewing beyond the edge of one's desk, when driving a cat, when looking at a distant mountain, or when watching a movie.. This distance is usually, but not always, considered to be approximately 32 inches or greater from the eye. The far viewing distance may also be referred to as a fat distance and a far distance point.
[0042] Fitting Cross/ Fitting Point: A reference point on a PAL that represents the approximate location of the wearer's pupil when looking straight ahead through the lens once the lens is mounted in an eyeglass frame and positioned on the wearer's face..
The fitting cross/
fitting point is usually, but not always, located 2 ¨ 5 mm vertically above the start of the channel The fitting cross typically has a very slight amount of plus optical power ranging from just over +0.00 Diopters to apptoximately +0..12 Diopters. This point or cross is marked on the lens surface such that it can provide an easy reference point for measui ing and/
or double-checking the fitting of the lens relative to the pupil of the wearer. The mark is easily removed upon the =
dispensing of the lens to the patient/ wearer.

[0043] Hard Progressive Addition Lens: A Progressive Addition Lens with a less gradual, steeper transition between the far distance correction and the near distance correction.. In a hard PAL the unwanted distortion may be below the fitting point and not spread out into the petiphety of= the lens.. A hard PAL may also have a shottet channel length and a narrower channel width. A "modified hard Progressive Addition Lens" is a hard PAL which is modified to have a limited number of characteristics of a soft PAL such as a more gradual optical power transition, a longer channel, a wider. channel, more unwanted astigmatism spread out into the periphery ofthe lens, and less unwanted astigmatism below the fitting point.
[0044] Intermediate Distance Viewing Zone: The portion of a lens containing an optical power which allows a user to see correctly at an intermediate viewing distance_ [0045] Intermediate Viewing Distance: The distance to which one looks, by way of example only, when reading a newspaper, when working on a computet, when washing dishes in a sink, or when ironing clothing. This distance is usually, but not always, considered to be between approximately 16 inches and approximately 32 inches from the eye. The intermediate viewing distance may also be referred to as an intermediate distance and an intermediate distance point..
[0046] Lens: Any device lot portion of' a device that causes light to converge or diverge. The device may be static or dynamic. A lens may be refiactive oi diffiactive. A
lens may be either concave, convex or piano on one or both stufaces. A lens may be spherical, cylindrical, prismatic or a combination thereof A lens may be made of optical glass, plastic ot resin. A lens may algo be referred to as an optical element, an optical zone, an optical region, an optical power region or an optic. It should be pointed out that within the optical industry a lens can be referred to as a lens even if it has zero optical power.
[0047] Lens Blank: A device made of optical material that may be shaped into a lens. A lens blank may be finished meaning that the lens blank has been shaped to have an optical power on both external surfaces. A lens blank may be semi-finished meaning that the lens blank has been shaped to have an optical power on only one external surface. A lens blank rnay be unfinished meaning that the lens blank has not been shaped to have an optical power on either. external = surface. A surface of an unfinished or semi-finished lens blank may be finished by means of a fabrication process known as fi ee-for ming or by more traditional surfacing and polishing.
[0048] Low Add Power PAL: A Progressive Addition Lens that has less than the necessary near add power for the wearer to see clearly at a near distance [0049] Multifocal Lens: A lens having more than one focal point or optical power . Such lenses may be static or dynamic. Examples of static multifocal lenses include a bifocal lens, trifocal lens or a Progressive Addition Lens Examples of dynamic multifocal lenses include electro-active lenses whereby various optical powers may be cleated in the lens depending. on the types of electrodes used, voltages applied to the electrodes and index of refiaction altered within a thin layer of liquid crystal.. Multifocal lenses may also be a combination of static and dynamic. For example, an electro-active element may be used in optical communication with a static spherical lens, static single vision lens, static multifocal lens such as, by way of example only, a Progressive Addition Lens. In most, but not all, cases, multifocal lenses are refia.ctive lenses.
[0050] Near Distance Viewing Zone: The portion of a lens containing an optical power which allows a use: to see correctly at a near viewing distance.
[0051] Near Viewing Distance: The distance to which one looks, by way of' example only, when reading a book, when threading a needle, or when reading instructions on a pill bottle.
This distance is usually, but not always, considered to be between approximately 12 inches and approximately 16 inches from the eye. The neat viewing distance may also be referred to as a near distance and a near distance point.
[0052] Office Lens/ Office PAL: A specially designed Progressive Addition Lens that provides intetmediate distance vision above the fitting CIOSS, a wide' channel width and also a wider leading width.. This is accomplished by means of an optical design which spreads the unwanted astigmatism above the fitting cross and which replaces the far distance vision zone with that of a mostly intermediate distance vision zone. Because of these features, this type of PAL is well-suited for desk woilc, but one cannot drive his or her car or use it for walking around the office or home since the lens contains no fax distance viewing area [0053] Ophthalmic Lens: A lens suitable for vision cotrection which includes a spectacle lens, a contact lens, an inn a-oculat lens, a corneal in-lay, and a corneal on-lay.
[0054] Optical Communication: The condition whereby two or more optics of given optical powet are aligned in a manner such that light passing through the aligned optics expeliences a combined optical power equal to the sum ofthe optical poweis of the individual elements.
[0055] Patterned Electrodes: Electrodes utilized in an electto-active lens such that with the application of appropriate voltages to the electrodes, the optical power cleated by the liquid crystal is created difflactively regardless of' the size, shape, and artangement of the electrodes.

For example, a diffractive optical effect can be dynamically produced within the liquid crystal by using concentric ring shaped electrodes.
[0056] Pixilated Electrodes: Electrodes utilized in an electto-active lens that are individually addressable regardless of the size, shape, and arrangement of the electrodes Futtherrnore, because the electrodes are individually addressable, any arbitrary pattern of voltages may be applied to the electrodes. Fot example, pixilated electrodes may be squares or rectangles arranged in a Cartesian attay et hexagons arranged in a hexagonal array..
Pixilated electrodes need not be regular shapes that fit to a grid. For example, pixilated electrodes may be concentric rings if every ring is individually addressable.. Concentric pixilated electrodes can be individually addressed to create a difftactive optical effect [0057] Progressive Addition Region: A region ola lens having a first optical *power in a first portion of the region and a second optical powet in a second portion of' the region wherein a continuous change in optical power exists therebetween. For example, a region of a lens may have a far viewing distance optical power at one end of the region. The optical powet may continuously increase in plus power across the region, to an intermediate viewing distance optical power and then to a neat. viewing distance optical power at the opposite end of the region. After the optical power has reached a neat viewing distance optical power, the optical power may decrease in such a way that the optical power of this progressive addition region transitions back into the far viewing distance optical power. A progressive addition region may be on a surface of a lens or embedded within a lens. When a progressive addition region is on the sur Face and comprises a surface topography it is known as a progressive addition surface.
[00581 Reading Width: The narrowest horizontal width within the near distance viewing portion of the Iens which provides clear, mostly distortion free correction with an optical power within 0 25D ofthe wearer's neat distance viewing optical power correction.
[0059] Short Channel Length: Due to aesthetic concerns or trends in eyewear fashion, it may be desirable to have a lens that is foreshortened vertically. In such a lens the channel is naturally also shorter . Short channel length refers to the length of a channel in a foreshortened PAL lens.
These channel lengths are usually, but not always between approximately 11 min and approximately 15 mm. Genetally, a shorter channel length means a narrower channel width and more unwanted astigmatism. Shorter channel designs are often associated with "hard"
progressives, since the transition between far distance correction and near distance correction is harder due to the steeper increase in optical power%

[0060] Soft Progressive Addition Lens: A Progressive Addition Lens with a more gradual transition between the far distance correction and the near distance correction. In a soft PAL the unwanted distortion may be above the fitting point and spread out into the periphery of'the lens.
A soft PAL may also have a longer channel length and a wider channel width. A
"modified soft Progressive Addition Lens" is a soft PAL which is modified to have a limited number of characteristics of a hard PAL such as a steeper optical power transition, a shorter channel, a narrower channel, more unwanted astigmatism pushed into the viewing portion of the lens, and more unwanted astigmatism below the fitting point.
[0061] Static Lens: A lens having an optical power which is not altetable with the application of electrical energy, mechanical energy or force. Examples of static lenses include spherical lenses, cylindrical lenses, Progressive Addition Lenses, bifocals, and trifocals. A static lens may also be referred to as a fixed lens.
[0062] Unwanted Astigmatism: Unwanted aberrations, distortions ot astigmatism found within a Progressive Addition Lens that are not part of the patient's prescribed vision correction, but rather are inherent in the optical design of a PAL- due to the smooth gradient ofoptical power between the viewing zones.. Although, a lens may have unwanted astigmatism across different areas of the lens of various dioptric powers, the unwanted astigmatism in the lens generally refers to the maximum unwanted astigmatism that is found in the lens,.
Unwanted astigmatism may also refer to the unwanted astigmatism located within a specific portion of a lens as opposed to the lens as a whole.. En such a case qualiing language is used to indicate that only the unwanted astigmatism within the specific portion of' the lens is being considered.
[0063] When describing dynamic lenses, the invention contemplates, by way of example only, electro-active lenses, fluid lenses, gas lenses, membrane lenses, and mechanical movable lenses, etc. Examples of such lenses can be found in Blum et al.. U.S. Patent Numbers 6,517,203, 6,491,394, 6,619,799, Epstein and Kurtin U..S. Patent Numbers 7,008,054, 6,040,947, 5,668,620, 5,999,328, 5,956,183, 6,893,124, Silver U.S.. Patent Numbers 4,890,903, 6,069,742, 7,085,065, 6,188,525, 6,618,208, Stoner U.S. Patent Number 5,182,585, and Quaglia U.S
Patent Number.
' 5,229,885.
[0064] It is well known and accepted within the optical industry that as long as the unwanted astigmatism and distortion of a lens is approximately 1.00D or less, the user of the lens, in rnost cases, will barely notimit. The invention disclosed herein relates to embodiments of an optical design, lens, and eyewear system that solve many, if not most, of the problems associated with PALs. In addition, the invention disclosed herein significantly removes most of the vision compromises associated with PALs. The invention provides a means of achieving the proper far, intermediate and neat distance optical powers for the wearer while providing continuous focusing ability for various distances, similar to that of a PAL. But the invention at the same time keeps the unwanted astigmatism to a maximum of approximately 1_50D for certain high add power prescriptions such as a +3.00D, +3.25D and +3.50D. However, in most cases, the invention keeps the unwanted astigmatism to a maximum of approximately 1.00D
or less.
[0065] The invention is based upon aligning a low add power PAL with a dynamic lens such that the dynamic lens and the low add power PAL are iri optical communication, whereby the dynamic lens provides the additional needed optical powet for the wearer to see clearly at a near distance.. This combination leads to the unexpected result that not only does the wearer have the ability to see clearly at intermediate and near- distances, but the level of unwanted astigmatism, distortion, and vision compromise are reduced significantly [0066] The dynamic lens may be an electro-active element. In an electro-active lens, an electto-active optic may be embedded within or attached to a surface of an optical substrate The optical substrate may be a finished, semi-finished or unfinished lens blank. When a semi-finished 01.
unfinished lens blank is used, the lens blank may be finished during manufacturing of the lens to have one or more optical powers_ An electio-active optic may also be embedded within or attached to a surface of a conventional optical lens. The conventional optical lens may be a single focus lens or a xnultifocal lens such as a Progressive Addition Lens or a bifocal or trifocal lens. The electro-active optic may be located in the entire viewing area of the dee-no-active lens or in just a portion thereof. The elecno-active optic may be spaced from the peripheral edge of the optical substrate for edging the electro-active lens for spectacles. The electro-active element may be located near the top, middle or bottom portion of the lens.. When substantially no voltage is applied, the electro-active optic may be in a deactivated state in which it provides substantially no optical power.. In other words, when substantially no voltage is applied, the electro-active optic may have substantially the same refractive index as the optical substrate or conventional lens in which it is embedded or attached. When voltage is applied, the electro-active optic may be in an activated state in which it provides optical add power. In other words, when voltage is applied, the electro-active optic may have a different refractive index than the optical substrate or conventional lens in which it is embedded or attached_ [0067} Electro-active lenses may be used to correct for conventional or non-conventional errors of the eye_ The correction may be created by the electro-active element, the optical substrate or conventional optical lens or by a combination of the two. Conventional errors of the eye include low order aberrations such as near-sightedness, far-sightedness, presbyopia, and astigmatism.
Non-conventional errors ofthe eye include higher-order aberrations that can be caused by ocular layer iiregulax ities..
[0068} Liquid crystal may be used as a portion of the electro-active optic as the refractive index of a liquid crystal can be changed by generating an electric field across the liquid crystal. Such.
an electric field may be generated by applying one or more voltages to electrodes located on both sides of the liquid crystal. The electrodes may be substantially transparent and manufactured from substantially ti ansparent conductive materials such as Indium Tin Oxide (ITO) or other such materials which are well-known in the art. Liquid crystal based electro-active optics may be particularly well suited for use as a portion of the electro-active optic since the liquid crystal can provide the required range of index change so as to provide optical add powers of piano to +3.00D. This range of optical add powers may be capable of correcting presbyopia in the majority of patients .
[0069] A thin layer- of liquid crystal (less than 10 um) may be used to construct the electro-active optic. The thin layer of liquid crystal may be sandwiched between two transparent substrates The two substrates may also be sealed along their peripheral edge such that the liquid crystal is sealed within the substrates in an substantially airtight manner. Layers of a transparent, conductive material may be deposited on the inner surfaces of the two, mostly planar, transparent substrates. The conductive material may then be used as electrodes. When a thin layer is employed, the shape and size of the electrode(s) may be used to induce certain optical effects within the lens. The required operating voltages to be applied to these electrodes for such thin layers of liquid crystal may be quite low, typically less than 5 volts. Electrodes may be patterned. Fox example, a diffractive optical effect can be dynamically produced 'within the liquid crystal by using concentric ring shaped electrodes deposited on at least one of the substrates. Such an optical effect can produce an optical add power based upon the radii of tbe rings, the widths of the t ings, and the range of'voltages separately applied to the different r ings.
Electrodes may be pixilated. For example, pixilated electrodes may be squares or rectangles arranged in a Cartesian array or hexagons arranged in a hexagonal array. Such an array of pixilated electrodes may be used to generate optical add powers by emulating a diffiactivc, concentric ring electrode structure.. Pixilated electrodes may also be used to correct for higher-order aberrations of the eye in a manner similar to that used for correcting atmospheric tui bulence effects in ground-based astronomy.

[0070] Current manufacturing processes limit the minimum pixel size, and as such limit the maximum dynamic electro-active optic diameter. By way of example only, when using a concentric pixilated approach that creates a diffiactive pattern the maximum dynamic electio-active optic diameters are estimated to be 20 rnm for + 1. 50D, 24 mm for +
1.25D, and 30 mm for + 1.50D. Current manufacturing processes limit the maximum dynamic elecno-active optic diameter when using a pixilated diffractive approach. As such, embodiments of the invention can possess dynamic electro-active optics with mallet optical powers at much larger diameters [0071) Alternately, the electro-active optic is comprised of' two transparent substrates and a layer of liquid crystal, where the first substrate is mostly planar and coated with a transparent, conductive layer while the second substrates has a patterned surface that is of a surface relief diffractive pattern and is also coated with a transparent, conductive layer. A
surface relief diffractive optic is a physical substrate which has a diffiactive grating etched or created thereon.
Surface relief diffractive patterns can be created by way of diamond timing, injection molding, casting, thermoforming, and stamping. Such an optic may be designed to have a fixed optical power and/ or aberration correction. By applying voltage to the liquid crystal through the electrode, the optical power/ aberration correction can be switched on and off by means of refractive index mismatching and matching, respectively. When substantially no voltage is applied, the liquid crystal may have substantially the same refiactive index as the surface relief diffiactive optic. This cancels out the optical power that would normally be provided by the surface relief diffractive element. When voltage is applied, the liquid crystal may have a different refractive index than the sur face relief diffractive element such that the surface relief diffiactive element now provides optical add power By using a surface relief diffractive pattern approach dynamic electro-active optics having a large diameter or horizontal width can be made.
The widths of these optics can be made up to or greater than 40 rm..
[0072] A thicker layer of liquid crystal (typically > 50 .r.m) may also be used to construct the electro-active multifocal optic. For example, a modal lens may be employed to create a refractive optic Known in the art, modal lenses incorporate a single, continuous low conductivity circular electrode surrounded by, and in electrical contact with, a single high conductivity ring-shaped electrode. Upon application of a single voltage to the high conductivity ring electrode, the low conductivity electrode, essentially a radially symmetric, electrically resistive network, produces a voltage gradient across the layer of' liquid crystal, which subsequently induces a refractive index gradient in the liquid crystal.
A layer of liquid crystal with a refi active index gradient will function as an electro-active lens and will focus light incident upon it.
[0073] In an embodiment of the invention, a dynamic optic is used in combination with a Progressive Addition Lens to form a combined lens. The Progressive Addition Lens may be a low add power Progressive Addition Lens. The Progressive Addition Lens comprises a progressive addition region. The dynamic optic may be located such that it is in optical communication with the progressive addition region. The dynamic optic is spaced apart from the progressive addition region, but is in optical communication therewith.
[0074] In an embodiment of the invention, the progressive addition region may have an add powers of one of +0.50D, +0.75D, +1.00D, +1.12D, +1..25D, +1 37D, and +1.50D.
In an embodiment of'the invention, the dynamic optic may have an optical power of one ot +0.50D, +0.75D, +1,00D, +1..12D, +1.25D, +1..37D, +1.50D, +1.62D, +1.75D; +2.00D, and :I-2 25D in an activated state. The add power of the progressive addition region and the optical power of the dynamic optic may be manufactured or prescribed to a patient in either +0.125D
(which is rounded to either +.12D or +.I3D) steps or in +0.25D steps [0075] It should be pointed out that the invention contemplates any and all possible power combinations, both static and dynamic, needed to correct the wearer's vision proper ly at far, intermediate and near viewing distances.. The inventive examples and embodiments provided within this disclosure .are merely illustrative and are not intended to be limiting in any way..
Rather they are intended to show additive optical power relationship when a low add power progressive addition region is in optical communication with a dynamic optic.
[0076] The dynamic optic may have a blend zone such that the optical power along the element's peripheral edge is blended so as to reduce the visibility of the peripheral edge when =
the element is activated. n most, but not all cases, the dynamic optic's optical power may transition in the blend zone from a maximum optical power contributed by the dynamic optic when activated to an optical power found in the Progressive Addition Lens. In an embodiment of the invention, the blend zone may be I nun ¨ 4 mm in width along the peripheral edge of the dynamic optic. In another embodiment of'the invention, the blend zone may be I
mm ¨ 2 mm in width along the per ipher al edge of the dynamic optic.
[0077] When the dynamic optic is deactivated, the dynamic optic will provide substantially no optical add power.. Thus, when the dynamic optic is deactivated, the Progressive Addition Lens may provide all of the add power for the combined lens (i.e.. the total add power of the combined optic is equal to the add power of the PAL). If a dynamic optic includes a blend zone, in the deactivated state the blend zone contributes substantially no optical power and substantially no unwanted astigmatism due to refractive index matching in the deactivated state. Tn an embodiment of the invention, when the dynamic optic is deactivated, the total unwanted astigmatism within the combined lens is substantially equal to that conttibuted by the Progressive Addition Lens. In an embodiment. of the invention, when the dynamic optic is deactivated, the total add power of the combined optic may be approximately +1.00D and the total unwanted astigmatism within the combined lens may be approximately LOOD
or less. In another embodiment of the invention, when the dynamic optic is deactivated, the total add power ofthe combined optic may be approximately +1_25D and the total unwanted astigmatism within the combined lens may be approximately 1 25D or less.. In another embodiment of the invention, when the dynamic optic is deactivated, the total add power of the combined optic may = be approximately +1_50D and the total unwanted astigmatism within the combined lens may be approximately 1.50D or less [00781 When the dynamic optic is activated, the dynamic optic will provide additional optical power.. Since the dynamic optic is in optical communication with the Progressive Addition Lens, the total add power of' the combined optic is equal to the add power of the PAL and the additive optical power of the dynamic optic.. If a dynamic optic includes a blend zone, in the activated state the blend zone contributes optical power and unwanted astigmatism due to refiactive index mismatching in the activated state and is largely not usable for vision focus.
Thus, when the dynamic optic includes a blend zone, the unwanted astigmatism of the combined optic is measured only within the usable poition of the dynamic optic which does not include the blend zone In an embodiment of the invention, when the dynamic optic is activated, the total unwanted astigmatism within the combined lens as measured through the usable pcntion of the lens may be substantially equal to the unwanted astigmatism within the Progressive Addition Lens.. In an embodiment ofthe invention, when the dynamic optic is activated and the total add power of the combined optic is between approximately +0.75D and approximately +2.25D, the total unwanted astigmatism within the usable portion of the combined lens may be 1.00D or less,. In another embodiment of the invention, when the dynamic optic is activated and the total add powet of the combined optic is between approximately +2..50D and approximately +2..75D, the total unwanted astigmatism within the usable portion of the combined lens may be 125D or less. in another embodiment of the invention, when the dynamic optic is activated and the total add power of the combined optic is between appioximately +3.00D and approximately +3.50D, the total unwanted astigmatism within the usable portion of the combined lens may be 1_50D or less. Ihus, the invention allows for the creation of a lens with a total add power significantly higher than the lens's unwanted astigmatism as measured through the usable portion of' the lens Or said another way, for a given total add power of the inventive combined lens, the degree of unwanted astigmatism is reduced substantially. This is a significant degree of' improvement as to what is taught in the literature or what is commercially available. This improvement translates into a higher adaptation rate, less distortion, less tripping or .disotientation of the wearer and a much wider clear field of view for intermediate and near distance viewing by the wearer.
[00791 In an embodiment of the invention the dynamic optic. may contribute between approximately 30% and approximately 70% of the total add power required for a user's near distance vision prescription.. The progressive addition region of the low add power PAL may contribute the remainder of'the add power required for a user's near distance vision prescription, namely, between approximately 70% and approximately 30%, respectively. In another embodiment of the invention, the dynamic optic .and the progressive addition region may each contr ibute approximately 50% of the total add power required fot a user's near distance vision prescription. If the dynamic optic contributes too much of the total add power; when the dynamic lens is deactivated the user may not be able to see clearly at an intermediate distance.
Additionally, when the dynamic optic is activated, the user may have too much optical power in the intermediate distance viewing zone and as such may not be able to see clearly at an intermediate distance If the dynamic optic contributes too little of the total add power, the combined lens may have too much unwanted astigmatism.
[0080] When the dynamic optic includes a blend zone, it may be necessary for the dynamic optic to be wide enough to ensure that at least a portion of the blend zone is located in the periphery of the combined optic. In an embodiment of the invention; the hor izontal width of the dynamic optic may be approximately 26 mm ox greater.. In another embodiment of the invention, the horizontal width of the dynamic optic rnay be between approximately 24 mm and approximately 40 mm. In another embodiment of the invention, the hotizontal width of the dynamic optic is between approximately 30 mm and approximately 34 mm. the dynamic optic is less than approximately 24 mm in width, it is possible that the blend zone may interfere with a user's vision and create too much distortion and swim for the user when the dynamic optic is activated. Tf the dynarnic optic is greater than approximately 40 mm in width, it may be difficult to edge the combined lens into the shape of an eyeglass frame_ In most, but not all cases, when the dynamic optic is located with its blend zone at or below the fitting point of the cornbined lens, the dynamic optic may have an oval shape with a horizontal width dimension larger than its vertical height dimension.. When the dynamic optic is located with its blend zone = above the fitting point the dynamic optic is usually, but not always, located such that a top peripheral edge ofthe dynamic optic is a minimum of 8 ram above the fitting point It should be noted that dynamic optics that are not electro-active may be placed to the peripheral edge of the combined lens. Additionally, such non-eleano-active dynamic optics may be less than 24 mm wide..
[0081] In an embodirnent of the invention, the dynamic optic is located at or above the fitting point. A top peripheral edge of the dynamic optic may be between approximately 0 mm and 15 mm above the fitting point. The dynamic optic is able to provide, when activated, the needed optical power when the wearer is looking at an intermediate distance, a near distance or somewhere between the intermediate and near distance (nem-intelmediate distance).. This .
results from the dynamic optic being located at or above the fitting point.
This will allow the user to have a correct interrnediate distance prescription when looking straight ahead_ Additionally, because of the progressive addition region, the optical power continuously increases from the fitting point downwaid through the channel. The user will have a correct near-intermediate distance and near distance prescription correction when looking through the channel. Thus, the user may, in many circumstances, not need to look downward as fai or- have to raise their chin as far to see through the intermediate distance viewing zone of the lens. If the dynamic optic is spaced vertically from the top of the combined lens, the user may also be able =
to see at a far distance by utilizing a portion of the combined lens above the activated dynamic . optic. When the dynamic optic is deactivated, the area of the lens at or near the fitting point will return to the far distance optical power. ofthe lens [00821 In embodiments in which the dynamic optic has a blend zone, it may be preferable to locate the dynamic optic above the fitting point, In such an embodiment, when the dynamic optic is activated, a user may look straight ahead through the fitting point and downward though the channel without looking through the blend zone. As mentioned above, the blend zone may intioduce a high degree of unwanted astigmatism which may be uncomfortable to look through, Thus, the user may make use of the combined optic in the activated state without experiencing a high degree of unwanted astigmatism as the user will not have to pass over. the edge or. blend zone ofthe dynamic optic, =

[0083] In an embodiment of the invention, the dynamic optic is located below the fitting point.
A top peripheral edge of the dynamic optic may be between approximately 0 mm and 15 mm below the fitting point. When the user looks straight ahead thiough the fitting point, a far distance presciiption correction is provided by the combined optic as the dynamic optic is not in optical communication with this portion of the combined lens. However, when the user shifts his or her gaze fiom the fitting pOint downward through the channel, the user may experience a high degree of unwanted astigmatism as the usei's eyes pass ovei the blend zone ofthe dynamic optic. This may be rectified in a variety ofways which are detailed below = [0084] The inventive combined ophthalmic lens comprises an optical design that takeS into .
consideration:
1.) The total near distance add power. required of the inventive ophthalmic lens -0 satisfy the near vision 'correction of a wearer;
2) The level of= unwanted astigmatism or distortion in the usable portion of the combined lens;
3) The amount of optical add power contributed in part by the progressive addition region;
4) The amount of optical powei contributed by the dynamic optic when activated;
5) The channel length of the progressive addition region;
6) The design of the progressive addition region in terms of whether it is, by Way of' example only, a soft PAL design, a hard PAL design, a modified soft PAL design or a modified hard PAL design;
7) The width and height ofthe dynamic optic; and =
8) The location of the dynamic optic with respect to the progressive addition region..
[0085] Figure lA shows an embodiment of a Progressive Addition Lens 100 having a fitting point 110 and a progressive addition region 120.. The Progressive Addition Lens in Figure 1A is a low add power Progressive Addition Lens designed to provide a wearer with a desired optical power less. than the wearer 's needed near distance optical power correction.
For example, the add power of the PAL may be 50% of the near distance optical power correction.
The distance along axis line AA of the lens.firom the fitting point to the point on the lens wheie the optical powei is within 85% of' the desired add optical powei is known as the channel length. The channel length is designated in Figure 1A as distance D. The value of distance D may be vaiied clepending upon many factors, such as the style of fiame the lens will be edged to fit, how much optical power is required, and hovv wide a channel width is required. In an embodiment of the invention, the distance D is between approximately 11 mm and approximately 20 mm, In another embodiment of the invention the distance D is between approximately 14 mm and approximately 18 rnm.. =
Nosoi Figure 1B shows a graph of optical power 130 taken along a cross section of the lens of Figure IA, along axis line AA. The x-axis of the giaph represents distance along axis line AA
in the lens. The y-axis of the graph represents the amount of optiCal power within the lens. The optical power shown in the graph begins at the fitting point. The optical power before or at the fitting point may be approximately +0.00D to approximately +0.12D (i e., approximately no optical power) or may have a positive or negative dioptric power depending on the far distance prescriptive needs of a user. Figure 1B shows the lens as having no optical power befoie or. at the fitting point After the fitting point,, the optical power continuously incieases to a maximum power.. The maximum power may persist for some length of the lens along axis line AA.. Figure 1B Shows the maximum power persisting, which appeals as a plateau of optical power. Figure =
113 also shows that the distance D occurs before the maximum power.. After the maximum power plateau, the optical power may then continuously decrease until a desired optical power.
The desired optical power may be any power less than the maximum power and may be equal to the optical power at the fitting point. Figure 1B shows the optical power continuously decreasing after the maximum power.
[00871 In an embodiment ofthe invention, the progressive addition region may be a progressive addition surface located on the front surface of the lens and the dynamic optic may be buried inside the lens. In another embodiment ofthe invention, the progressive addition region may be a progressive addition surface located on the back surface ofthe lens and the dynamic optic may be buried inside the lens.. In anothei embodiment of the invention, the progressive addition region may bc two progressive addition surfaces with one surface located on.
the fiont surface of the lens and the second surface located on the back surface of the lens (as that of'a dual surface Progressive Addition Lens) and the dynamic optic may be buried inside the lens.. In still other inventive embodiments, the progressive addition region may not be produced by a geometric surface, but instead may be produced by a refractive index gradient. Such an embodiment would allow both surfaces of the.lens to be similar to surfaces used on single focus lenses. Such a refiactive index gradient providing.a progressive addition region may be located inside the lens or on a surface ofthe lens.

[0088] One important advantage of the present invention, as described above, is that even when the dynamic optic is in a deactivated state, the wearer will always have the correct intermediate distance and far distance vision optical power. Therefore, the only control mechanism that may be required is a means for selectively activating the dynamic optic when a proper near distance optical power is needed for the wearer. This effect is provided by the low add power PAL
having an add power that provides less optical power at a near distance than a user's prescriptive near distance needs, and further that this lower add power approximates the correct prescriptive optical power for the wearer's intermediate distance.viewing needs. When the dynamic optic is activated, the wearer 's near distance optical power focusing needs will be satisfied.
[0089] This may greatly simplify the sensor suite required to control the lens.. In fact, all that may be required is a sensing device that can detect if a usei is focusing beyond an intermediate distance. If the user is focusing closer than a far distance, the dynamic optic may be activated.
Ifthe user is not focusing closer than afar distance, the dynamic optic may be deactivated. Such a device may be a simple tilt switch, a manual switch, or a range finder..
[0090] In embodiments of the invention, a small amount oftemporal delay may be placed in the control system so that the patient's eye passes past the point of the peripheral edge of the dynamic optic before the dynamic optic is activated. This allows the wearer to avoid any unpleasant unwanted distortion effects that might be caused by looking through the peripheral edge of' the dynamic optic Such an embodiment may be beneficial when the dynamic optic includes a blend zone. By way of example only, when a line of' sight of the wearer i to move from viewing a fat distance object to a neat distance object, the wearer's eye will translate over the peripheral edge of the d,ynamic optic into the near distance viewing zone In such a case, the dynamic optic will not be activated until the wearer's line of sight has already transitioned past the peripheral edge of the dynamic optic and into the near distance viewing zone. Ibis occurs by delaying the time to activate the dynamic optic in order to allow the line of sight of the wearer to pass, over the peripheral edge. If the activation of the dynamic optic was not temporally delayed and was instead activated before the wearer's line of sight transitioned ovei the peripheral edge, the wearer might experience a high degree of unwanted astigmatism while looking through the peripheral edge. This inventive embodiment may be utilized mostly when the dynamic optic's peripheral edge is located at or below the fitting point a the combined lens.
In other inventive embodiments the dynamic optic's peripheral edge may be located above the fitting point of' the combined lens and thus, in most cases, the delay may not be needed as the line of' sight of the wearer never passes over the peripheral edge of the dynamic optic when looking between an intermediate distance and a neat distance.
[00911 In still other inventive embodiments, the Progressive Addition Lens and the blend zone of the dynamic optic may be designed such that in the area where the two overlap the unwanted astigmatism in the blend zone at least partially cancels out some of the unwanted astigmatism in the PAL. This effect is comparable to a dual-sided PAL in which one surface's unwanted astigrnatism is designed to cancel out some of the other surface's unwanted astigmatism.
[0092] In an embodiment of'the invention, it may be desirable to increase the size of a dynamic optic and locate the dynamic optic so that a top per ipheral edge of the dynamic optic is above a' fitting point of the lens. Figure 2A shows an embodiment of a low add power Progressive Addition Lens 200 combined with a much larger dynamic optic 220 placed such that a top peripheral edge 250 of the dynamic optic lies above the fitting point 210 of' the lens. In an embodiment of the invention, the diameter of the larger dynamic optic is between approximately 24 mm and approximately 40 mm.. The vertical displacement of the dynamic optic relative to the fitting point of' the lens is designated by the distance d. In an embodiment of the invention, distance d is in a range of approximately 0 mm to a distance equal to approximately one half the diameter of the dynamic optic. In another embodiment of the invention, the distance d is a distance between approximately one eighth the diameter of the dynamic optic and three eighths the diameter of the dynamic optic. Figure IB shows an embodiment having a combined optical power 230 that is created bebause the dynamic optic is in optical communication with a progressive addition region 240.. The lens 200 may have a reduced channel length In an embodiment of the invention, the channel length is between approximately 11 mm and approximately 20 mm.. In another embodiment of the invention, the channel length is between approximately 14 mm and approximately 18 mm [0093] In the inventive embodiments illustrated in Figures 2A and 2B, when the dynamic optic is activated, because the lens is a low add power PAL and the dynamic optic is located above the fitting point, the wearer has correct intermediate distance vision while looking straight ahead..
The wearer also has correct near-intermediate distance as the wearer's eye moves down the channel. Finally, the wearer has correct near distance vision within the area of the combined lens where the power of the dynamic optic and the progressive addition region combine to form the required neat viewing distance correction,. This is an advantageous method of' combining the dynamic optic with the progressive addition region, since computer use is largely an intermediate viewing distance task and is one in which many people view the domputer screen in a straight ahead or very slightly downward viewing posture_ in the deactivated state, the area of the lens above and near the fitting point allows for distance vision viewing correction with a weak progressive power below the fitting point The maximum optical power ofthe progressive addition region contributes approximately one halfthe required near distance optical power for a wearer and the dynamic optic contr ibutes the remainder of the optical power needed for clear neat distance vision [0094] F igures 3A ¨ 3C illustrate an embodiment of the invention, in which the dynamic optic 320 is placed within the lens 300, and the progressive addition region 310 is placed on the back surface of the lens. This back progressive addition surface can be placed on the lens during the processing of a semi-finished lens blank having an integrated dynarnic optic by means of' a fabrication approach known as free forming. In another embodiment of the invention, the progressive addition region is located on the front surface of the semi-finished lens blank. The semi-finished lens blank incorporates the dynamic optic such that the dynamic optic is in proper alignment with the progressive addition surface curvature. The semi-finished lens blank is then processed by conventional surfacing, polishing, edging, and mounting into an eyeglass flame [0095] As illustiated in Figure 3A, when the dynamic optic is deactivated, the optical power taken along a line of sight flour a wearei's eye 340 through the fitting point provides the wearer with correct far distance vision 330. As illustrated in Figuie 3B, when the dynamic optic is activated, the optical power taken along a line of sight fiern the wearer's eye through the fitting point provides the wearer with a correct intermediate distance focusing power 331., As the wearer moves his or her gaze down the channel as shown in Figures 3B ¨ 3C, the combined optics of the dynamic optic and the progressive addition swface provides a mostly continuous power transition fiom intermediate distance focus to near distance focus.
Thus, as illustrated in Figure 3C, when the dynamic optic is activated, the optical power taken along a line of sight from the wearer's eye through the near distance viewing zone provides the wearer with a correct near distance focusing power 332.. One major advantage of this embodiment of the invention may be that the control system only needs to decide if the wearer is looking to a far distance. In such a case of' distance viewing the dynamic optic may remain in the deactivated state. Tn embodiments where a range finding device is used, the ranging system only needs to decide if' an object is closer to the eye than one's intermediate distance. In such a case the dynamic optic would be activated to provide a combined optical power allowing for simultaneous inteimediate distance and near distance optical power collection Another major advantage of this einbodiment of the invention is that the eye does not have to pass over oi cross the upper edge of the dynamic optic when it is turned on such as when a user looks from a far distance portion of the lens to a near distance portion of the lens and vice versa. If the dynamic optic hai its upper most edge located below the fitting point the eye must pass over or cross this upper edge when looking from far distance to near distance or from near distance to far distance.. However, embodiments of the invention may allow the positioning of the dynamic optic below the fitting point such that the eye does not pass over the upper most edge of the dynamic optic. Such embodiments may allow for other advantages with regard to visual performance and ergonomics_ [0096] While Figures 3A ¨ 3C illustrate the progressive addition surface region on the back surface, it may also be placed on the front surface of the lens or located on both the front and .
back surfaces of the lens while the dynamic optic may be located within the lens. Additionally, while the dynamic optic is illustrated as located inside the lens, it may also be placed on the surface of the lens if it were made from curved substrates and covered by an ophthalmic covering material. By using one dynamic optic having a known optical power in combination with different PAL lenses each having a different add power, it may be possible to reduce the .
number. of dynamic optic semi-finished blank SKU's substantial]y.. F01 example. a +0õ75D
dynamic optic could be combined with a +0.50D, +0_75D or +1.00D progressive addition region or surface, to produce add powers of' +1.25D, +1.50D or +1.15D respectively.
Or a +1 OOD
dynamic optic could be combined with a +0.75D or +1..00D, progressive addition region or surface, to produce add powers of +1.75 or +2.00D, Moreover the progressive addition region can be optimized to account for characteristics of the wearer, such as the patient's far distance power, and eye path through the lens, as well as the fact that the progressive addition region is being added to an dynamic electro-active optic that is providing approximately half the required reading correction. Likewise the reverse also works well. .For example, a +1.00D progressive addition region or surface may be combined with a +0.75D, +1.00D, +1.25D or +I..50D
dynamic optic to produce a combined add power of +1.75D, +2.00D, +2.25D or +2.50D..
[0097] Figure 4A illustrates another. embodiment of the invention whereby a low add power Progressive Addition Lens 400 is combined with a dynamic optic 420 that is *larger than the progressive addition region and/ or channel 430. In this embodiment, the unwanted distortion 450 from the blend zone of the dynamic optic is well outside both the fitting point 410 and the progressive addition channel 430 and reading zones 440. Figures 4B ¨ 41) show graphs of optical power taken along a cross section of the lens of Figure 4A, along axis line AA. The x-axis of each graph represents distance along axis line AA in the lens. The y-axis of each graph represents the amount otoptical power within the lens.. The optical power before or at the fitting point may be approximately +0.00D to approximately +0.12D (i e, approximately no optical power) or may have a positive or negative dioptric power depending on the fat distance prescriptive needs of a user. Figure 4D shows the lens as having no optical power before or at the fitting point. F igure 4B shows the optical power 460 that is provided by the fixed .
progressive addition surface or region taken along axis line AA of Figure 4A
Figure 4C shows the optical power 470 that is provided by the dynamic optic when activated taken along axis line AA ofFigure 4A. Finally, Figure 4D shows the combined powers of the dynamic elect' o-active optic and the fixed progiessive addition region taken along axis line AA ofF
igure 4A. From the figure it is clear. that the top and bottom distorted blend area 450 of the dynamic electro-active optic are outside both the fitting point 410 and the progressive addition reading area 440 and channel 430.
[0098] Figures 5A and 5B are illustrative of embodiments in which a dynamic optic 520 is located below a fitting point 510 of a low add power Progressive Addition Lens 500. In Figure 5A, the location of the blend zone of' the dynarnic. electro-active optic results in significant overall distortion 550 as the wearer's eye tracks down the progressive corridor 530. In certain inventive embodiments of' the invention this is solved by delaying the activation of the dynamic optic until the wearer's eye has passed over the upper edge of the blend zone of the dynamic optic. F ignite 5B shows optical power along axis line AA of F igure 5A The region of distortion 550 is seen to overlap with the add power of the lens just below the fitting point and further shows the need to delay the activation of the dynamic optic until the eye passes over this area.
Once the eye passes over this area and enters, for example, the reading zone 540 there is no longer significant optical distortion. In an embodiment of the invention, a very narrow blend zone of' lmm ¨ 2 mm may be provided to allow for the eye to quickly pass over this area. In an embodiment of' the invention, a horizontal .width of the dynamic optic may be between approximately 24 trim and approximately 40 mm In another embodiment of the invention, a horizontal width of' the dynamic optic may be between approximately 30 mm and approximately 34 mm.. In another embodiment of' the invention, a hoxizontal width of the dynamic optic may be approximately 32mm. Thus, in certain inventive embodiments the dynamic optic is shaped more like an oval with the horizontal measurement being wider than the vertical measur ement..
[0099] Figures 6A ¨ 6C show embodiments of' a dynamic optic. In the embodiments shown, the dynamic optic has an oval shape and is between approximately 26 mrn and approximately 32 mm wide. Various heights of the dynamic optic are shown F igur e 6A shows a dynamic optic with a height a apptoximately 14 mm. Figure 6B shows a dynamic optic with a height of approximately 19 rum.. Figure 6C shows a dynamic optic with a height of approximately 24 mm. =
[00100] Figures 7A ¨7K show unwanted astigmatic contour maps comparing an existing state-of-the-art Progressive Addition Lens and embodiments of the invention which include a low add power Progressive Addition Lens and a dynamic optic. The unwanted astigmatic power maps were measured and generated by a Visionix State of the Art PowerMapVM
20001m "High Precision Lens Analyzer" which is the, same equipment used by lens manufacturers when fabricating or designing PALs to measure and inspect their own PALs for both quality control and marketing specificatiOn purposes. Embodiments of' the invention are simulated using the low add power PAL and a spherical lens. The spherical lens has an optical power equal to that of an activated dynamic optic of a given optical power which extends to the periphery of the lens.
[00101] Figure 7A compares an Essilor Varilux Physiolm +]..25D PAL and an inventive embodiment including an Essilor Varilux Ph sioTM +1.00D PAL and a +025D
dynamic optic to create a total add power of +125D Figure 7B compares an Essilor Varilux Physioim +1.50D
PAL and an inventive embodiment including an Essilor Varilux PhysioTM +0 75D
PAL and a +0..75D dynamic optic to create a total add power of +1 50D. Figure 7C
compares an Essilor Varilux ?hysioTM +1 75D PAT and an inventive embodiment including an Essilor Varilux PhysioTM +1..00D PAL and 4 +0.75D dynamic optic to create a total add power of +1..75D.
Figure 7D compares an Essilor Var ilux Physiolm +2.00D PAL and an inventive embodiment including an Essilox Varilux Physiolm +1.00D PAL and a +1.00D dynamic optic to create a total add power of +2.00D. Figure 7E compares an Essilor Varilux PhysioTM +2.00D
'PAL and an inventive embodiment including an Essilor Varilux PhysioTm +0..75D PAL and a +1.25D
dynamic optic to create a total add power of +2.00D_ Figure 7F compares an Essilor Varilux Physionvi +2.25D PAL and an inventive embodiment including an Essilor Varilux Physiolm +1.00D PAL and a +1...25D dynamic optic to create a total add power of' +2..25D. F igure 7G
compares an Essilor Varilux P.hysiolm +2.25D PAL and an inventive embodiment including an Essilox Varilux physioTM +0..75D PAL and a +1.50D dynamic optic to create a total add power of' +2.25D. Figure 7I1 compares an Essilor Varilux PhysioTm +2.50D PAL and' an inventive embodiment including an Essilor Varilux Physioim +1.25D PAL and a +1.25D
dynamic optic to create a total add power of +2.50D. Figure 71 compares an Essilor Varilux Physiolm +2..50D
PAL and an inventive embodiment including' an Essilor Varilux Physion4 +1.00D
PAL and a +1.50D dynamic optic to create a total add power of +2 50D.. Figure 7J
compares an Essilor Vatilux Physidm +2.75D PAL and an inventive embodiment including an Essilor Varilux Physiorm +1.25D PAL and a +1 50D dynamic optic to create a total add power of +2.75D..
Figure 7K compares an Essilor Vaiilux Physiorm +3_00D PAL and an inventive embodiment including an Essiloz Vazilux Physio M +1..50D PAL and a +1.50D dynamic optic to create a total add power of+.3 00D.
[00102] Figures 7A ¨ 7K clearly show the remarkable improvement the inventive approach makes ovet the current state-of-the art Progressive Addition Lenses.
The inventive embodiments shown in Figures 7A ¨ 7K have significantly less distortion, significantly less unwanted astigmatism, a much wider channel width, and slightly shorter channel length for both lower add powers and higher add powers when compared to the current state-of-the-art PAL
lenses. The inventive approach is able to provide these remarkable imptovements while allowing a uset to see clearly at a far distance, an inteimediate distance, and a neat distance as with a conventional PAL lens.
[00103] It is Blither contemplated within the invention that the dynamic optic may need to be off-centei vertically and in some cases horizontally relative to the .progressive addition region depending upon the wearer's pupillaiy distance, fitting point, and dimensions of' the flame eye-wire cut out. However, in all cases when the dynamic optic is off-center relative to the progressive addition region it remains in optical communication with the region when the -dynamic optic is activated.. It should be noted that the vertical dimension of' the frame's eye-wire or rim will in many, but not all cases, determine this amount of off-centeredness [00104] The inventive ophthalmic lens allows for an optical nansmission of 88% or more. If an antireflection coating is utilized on both sinfaces of the ophthalmic lens the optieal transmission will be in excess of 90%. The optical efficiency ofthe inventive ophthalmic tens is 90% or better. The inventive ophthalmic lens is capable of being coated with a variety of well-known lens treatments such as, by way of example only, an antireflection coating, a scratch resistant coating, a cushion coating, a hydrophobic coating, and an ulna-violet coating. The ultra-violet coating may be applied to the ophthalmic lens oz to the dynamic optic In embodiments in which the dynamic optic is a liquid-crystal based electro-active optic, the ultra-violet coating may protect the liquid crystal from ultra-violet light that could damage the liquid crystal over time.. The inventive ophthalmic lens is also capable of being edged into the shape needed for an eyeglass frame, or drilled in its per iphery so as to be mounted, by way ofexample only, in a rimless flame.

[00105] = It should be further noted that the invention contemplates all ophthalmic lenses;
contact lenses, intra-oculaz lenses, corneal on-lays, corneal Ýn-lays, and spectacle lenses.

Claims (41)

What is claimed is:
1. An ophthalmic lens for a user, comprising:
an optical substrate having a progressive addition region, wherein said progressive addition region has an add power therein that is less than the user's near viewing distance add power vision correction; and a tunable dynamic optic in optical communication with the progressive addition region and having a non-zero optical power when activated;
wherein said dynamic optic is off-center relative to said progressive addition region;
said dynamic optic has a peripheral edge located away from a peripheral edge of the optical substrate;
a top of said peripheral edge of said dynamic optic located within approximately 15 mm above a fitting point of the lens;
said dynamic optic comprises a blend zone that continuously transitions the optical power within and adjacent the dynamic optic's peripheral edge to reduce visibility of the dynamic optic's peripheral edge when the dynamic optic is activated;
said tunable dynamic optic is tuned with the application of electrical energy, mechanical energy or force; and said optical power of said tunable dynamic optic, when added to said add power of said progressive addition region, is substantially equal to the user's near distance add power vision correction.
2. The ophthalmic lens of claim 1, wherein said add power is approximately 50%
of the user's near distance add power vision correction.
3. The ophthalmic lens of claim 1, wherein said add power is between approximately 30% and approximately 70% of the user's near distance add power vision correction.
4. The ophthalmic lens of claim 1, wherein said progressive addition region is located on a front surface of the lens.
5. The ophthalmic lens of claim 1, wherein said progressive addition region is located on a back surface of the lens.
6. The ophthalmic lens of claim 1, wherein said progressive addition region is embedded within the lens.
7. The ophthalmic lens of claim 1, wherein said dynamic optic is located on a front surface of the lens.
8. The ophthalmic lens of claim 1, wherein said dynamic optic is located on a back surface of the lens.
9. The ophthalmic lens of claim 1, wherein said dynamic optic is embedded within the lens.
10. The ophthalmic lens of claim 1, wherein said dynamic optic is an electro-active optic.
11. The ophthalmic lens of claim 1, wherein said dynamic optic is a meniscus lens.
12. The ophthalmic lens of claim 1, wherein said dynamic optic is a fluid lens.
13. The ophthalmic lens of claim 1, wherein said dynamic optic is a movable dynamic optic having at least one moving component.
14. The ophthalmic lens of claim 1, wherein said dynamic optic is a gas lens.
15. The ophthalmic lens of claim 1, wherein said dynamic optic is a membrane lens having a membrane capable of being deformed.
16. The ophthalmic lens of claim 1, wherein said add power is between approximately +0.50 diopters and approximately +1.50 diopters.
17. The ophthalmic lens of claim 1, wherein said optical power is between approximately +0.50 diopters and approximately +2.25 diopters.
18. The ophthalmic lens of claim 1, wherein said dynamic optic has a width between approximately 24 mm and approximately 40 mm.
19. The ophthalmic lens of claim 1, wherein said progressive addition region has a channel having a length between approximately 11 and approximately 20 mm.
20. The ophthalmic lens of claim 1, wherein the top peripheral edge of said dynamic optic is located between approximately 0 mm and approximately half of the vertical length of said dynamic optic above the fitting point the lens.
21. The ophthalmic lens of claim 1, wherein the top peripheral edge of said dynamic optic is located between approximately one eighth of the vertical length of said dynamic optic and approximately three eighth of the vertical length of said dynamic optic above the fitting point the lens.
22. The ophthalmic lens of claim 1, wherein:
said dynamic optic is not activated until the user's eye passes over a top peripheral edge of said dynamic optic.
23. The ophthalmic lens of claim 1, wherein the blend zone is from 1 mm to 4 mm in width.
24. The ophthalmic lens of claim 1, wherein said optical power is tunable between two or more nonzero optical powers.
25. The ophthalmic lens of claim 1, wherein said dynamic optic can be activated and deactivated.
26. The ophthalmic lens of claim 1, wherein said dynamic optic is spaced apart from said progressive addition region.
27. The ophthalmic lens of claim 1, further comprising a sensor for detecting if the user is focusing closer than a far distance and for controlling said optical power, wherein said sensor is configured to activate said dynamic optic when the user looks closer than the far distance.
28. The ophthalmic lens of claim 27, wherein said sensor deactivates said dynamic optic when the user looks beyond an intermediate distance.
29. The ophthalmic lens of claim 27, wherein said sensor activates said dynamic optic when the user looks closer than a far distance.
30. The ophthalmic lens of claim 1, wherein an intermediate distance vision correction is provided for the user when the user looks through the fitting point when said dynamic optic is activated.
31. The ophthalmic lens of claim 1, wherein a far distance vision correction is provided for the user when the user looks through the fitting point when said dynamic optic is deactivated.
32. The ophthalmic lens of claim 1, wherein the dynamic optic is vertically off-center relative to said progressive addition region.
33. The ophthalmic lens of claim 1, wherein the lens is formed from a semi-finished blank.
34. The ophthalmic lens of claim 1, wherein a top peripheral edge of said dynamic optic is located above the start of said progressive addition optical power region.
35. The ophthalmic lens of claim 10, wherein said electro-active optic comprises a surface relief diffractive element.
36. The ophthalmic lens of claim 10, wherein said electro-active optic comprises pixilated electrodes.
37. The ophthalmic lens of claim 10, wherein said electro-active optic comprises patterned electrodes.
38. The ophthalmic lens of claim 10, wherein said electro-active optic has an oval shape.
39. The ophthalmic lens of claim 1, wherein:
said tunable dynamic optic comprises liquid crystal having a thickness of less than 10 m.
40. The ophthalmic lens of claim 1, wherein:
the dynamic optic is horizontally off center relative to said progressive addition region.
41. The ophthalmic lens of claim 1, wherein:
the blend zone is from 1 mm to 2 mm in width.
CA2655349A 2006-06-12 2007-06-12 Static progressive surface region in optical communication with a dynamic optic Active CA2655349C (en)

Applications Claiming Priority (9)

Application Number Priority Date Filing Date Title
US81262506P 2006-06-12 2006-06-12
US60/812,625 2006-06-12
US81295206P 2006-06-13 2006-06-13
US60/812,952 2006-06-13
US85470706P 2006-10-27 2006-10-27
US60/854,707 2006-10-27
US87646406P 2006-12-22 2006-12-22
US60/876,464 2006-12-22
PCT/US2007/013743 WO2007146265A2 (en) 2006-06-12 2007-06-12 Static progressive surface region in optical communication with a dynamic optic

Publications (2)

Publication Number Publication Date
CA2655349A1 CA2655349A1 (en) 2007-12-21
CA2655349C true CA2655349C (en) 2016-01-05

Family

ID=38832479

Family Applications (1)

Application Number Title Priority Date Filing Date
CA2655349A Active CA2655349C (en) 2006-06-12 2007-06-12 Static progressive surface region in optical communication with a dynamic optic

Country Status (13)

Country Link
EP (1) EP2030074A4 (en)
JP (1) JP2009540386A (en)
KR (1) KR101454672B1 (en)
CN (1) CN101501552B (en)
AR (1) AR061449A1 (en)
AU (1) AU2007258383B2 (en)
BR (1) BRPI0713008A2 (en)
CA (1) CA2655349C (en)
HK (1) HK1137056A1 (en)
IL (1) IL195879A0 (en)
MX (1) MX2008015905A (en)
TW (2) TWI494637B (en)
WO (1) WO2007146265A2 (en)

Families Citing this family (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8523354B2 (en) 2008-04-11 2013-09-03 Pixeloptics Inc. Electro-active diffractive lens and method for making the same
EP2577387A1 (en) * 2010-05-24 2013-04-10 Pixeloptics, Inc. Reduction of image jump
US9256077B2 (en) 2010-06-30 2016-02-09 Panasonic Intellectual Property Management Co., Ltd. Optical device
CN102959972B (en) 2010-06-30 2015-12-02 松下知识产权经营株式会社 Optical device
JP2012103312A (en) * 2010-11-08 2012-05-31 Seiko Epson Corp Progressive refractive power lens and design method thereof
DE102010055185B4 (en) 2010-12-20 2019-09-05 Carl Zeiss Vision International Gmbh Device with a spectacle lens with variable action and method for adjusting the effect of a spectacle lens
US20120212696A1 (en) * 2011-01-27 2012-08-23 Pixeloptics, Inc. Variable optical element comprising a liquid crystal alignment layer
US9588396B2 (en) 2012-02-07 2017-03-07 Mitsui Chemicals, Inc. Laser patterning of conductive films for electro-active lenses
EP2642332B1 (en) * 2012-03-23 2015-05-06 Essilor International (Compagnie Générale d'Optique) A progressive addition lens for a wearer
CN106030382B (en) * 2014-02-18 2021-01-19 依视路国际公司 Method for optimizing an optical lens apparatus of a wearer
DE102015219482B4 (en) * 2015-10-08 2017-07-13 Carl Zeiss Vision International Gmbh Spectacles with a spectacle lens with a movable lens segment
JPWO2018061902A1 (en) * 2016-09-29 2019-02-21 三井化学株式会社 Lens, lens blank and eyewear
JP2023529241A (en) 2020-06-01 2023-07-07 アイケアーズ メディカス インコーポレイテッド Double-sided aspherical diffractive multifocal lens, its manufacture and use
WO2022138060A1 (en) * 2020-12-25 2022-06-30 株式会社ニコン・エシロール Spectacle lens, method for designing spectacle lens, method for manufacturing spectacle lens, and device for designing spectacle lens
TWI813083B (en) * 2021-12-01 2023-08-21 長庚醫療財團法人基隆長庚紀念醫院 Method and lens for enhancing myopia control and method of manufacturing lens

Family Cites Families (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2146791B (en) * 1983-09-16 1987-01-28 Suwa Seikosha Kk Progressive multifocal ophthalmic lens
JPS6338915A (en) * 1986-08-05 1988-02-19 Canon Inc Auto-focusing spectacles
US5124734A (en) * 1987-07-14 1992-06-23 Daniel Barnea Opthalmic lens
JP2665341B2 (en) * 1988-01-11 1997-10-22 オリンパス光学工業株式会社 Liquid crystal lens
JP2998233B2 (en) * 1991-02-28 2000-01-11 トヨタ自動車株式会社 Variable focus glasses
US5644374A (en) * 1992-02-03 1997-07-01 Seiko Epson Corporation Variable focus type eyesight correcting apparatus
US5359444A (en) * 1992-12-24 1994-10-25 Motorola, Inc. Auto-focusing optical apparatus
JP3196877B2 (en) * 1995-04-18 2001-08-06 ホーヤ株式会社 Progressive multifocal lens
US5774274A (en) * 1995-05-12 1998-06-30 Schachar; Ronald A. Variable focus lens by small changes of the equatorial lens diameter
US6540354B2 (en) * 1997-10-16 2003-04-01 Essilor International Multifocal ophthalmic lens
US6871951B2 (en) * 2000-06-23 2005-03-29 E-Vision, Llc Electro-optic lens with integrated components
US6619799B1 (en) * 1999-07-02 2003-09-16 E-Vision, Llc Optical lens system with electro-active lens having alterably different focal lengths
FR2807169B1 (en) * 2000-03-31 2002-06-07 Essilor Int METHOD OF MOUNTING OPHTHALMIC LENSES
US7019890B2 (en) * 2001-10-05 2006-03-28 E-Vision, Llc Hybrid electro-active lens
EP1485749A4 (en) * 2002-03-13 2006-02-08 E Vision Llc Electro-optic lens with integrated components
BR0313063A (en) * 2002-08-09 2005-06-28 E Vision Llc Contact Lens Electroactive System
CA2535905A1 (en) * 2003-08-15 2005-02-24 E-Vision, Llc Enhanced electro-active lens system
US7090348B2 (en) * 2003-10-28 2006-08-15 Essilor International (Compagnie Generale D'optique) Method for designing spectacle lenses taking into account an individual's head and eye movement
JP2007531912A (en) * 2004-03-31 2007-11-08 ザ・リージェンツ・オブ・ザ・ユニバーシティー・オブ・カリフォルニア Fluid adaptive lens

Also Published As

Publication number Publication date
CA2655349A1 (en) 2007-12-21
CN101501552A (en) 2009-08-05
TWI435139B (en) 2014-04-21
EP2030074A4 (en) 2011-07-06
CN101501552B (en) 2010-12-01
AR061449A1 (en) 2008-08-27
JP2009540386A (en) 2009-11-19
WO2007146265A2 (en) 2007-12-21
HK1137056A1 (en) 2010-07-16
AU2007258383A1 (en) 2007-12-21
WO2007146265A3 (en) 2008-02-28
IL195879A0 (en) 2009-09-01
BRPI0713008A2 (en) 2012-10-09
KR20090012370A (en) 2009-02-03
MX2008015905A (en) 2009-04-01
AU2007258383B2 (en) 2014-02-27
EP2030074A2 (en) 2009-03-04
TW200807055A (en) 2008-02-01
TWI494637B (en) 2015-08-01
TW201418822A (en) 2014-05-16
KR101454672B1 (en) 2014-10-27

Similar Documents

Publication Publication Date Title
CA2655349C (en) Static progressive surface region in optical communication with a dynamic optic
US7604349B2 (en) Static progressive surface region in optical communication with a dynamic optic
US20160070117A1 (en) Electro-active ophthalmic lenses comprising low viscosity liquid crystalline mixtures
US8641191B2 (en) Static progressive surface region in optical communication with a dynamic optic
US7883206B2 (en) Multifocal lens having a progressive optical power region and a discontinuity
US8092016B2 (en) Multifocal lens having a progressive optical power region and a discontinuity
KR20130116872A (en) Electroactive ophthalmic glasses and method of making the same
US20110285959A1 (en) Reduction of image jump
CA2680870C (en) Multifocal lens having a progressive optical power region and a discontinuity
FR2536180A1 (en) OPHTHALMIC LENS WITH PROGRESSIVELY VARIABLE FOCAL POWER, DETERMINED IN ACCORDANCE WITH CONVERGENCE
JP2002323680A (en) Variable refraction control spectacles
CN109991758A (en) Progressive multi-focus lens and progressive multi-focal lenses
KR20090059282A (en) Glasses established visible area of naked eye

Legal Events

Date Code Title Description
EEER Examination request