Light scattering lens for treating myopia and eyeglasses containing the same
The ophthalmic lens with a light-scattering region and transparent openings addresses myopia progression by reducing peripheral vision contrast, effectively slowing eye lengthening while maintaining clear vision for distance and near tasks.
Patent Information
- Application Number
- JP2025132500
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2018-11-30
- Filing Date
- 2025-08-07
- Publication Date
- 2025-11-28
AI Technical Summary
Myopia progression is influenced by environmental and genetic factors, and existing treatments fail to effectively address the eye lengthening associated with this condition.
An ophthalmic lens with a light-scattering region and transparent openings designed to reduce contrast in peripheral vision, featuring scattering centers that scatter light to minimize image contrast and slow myopia progression, while maintaining clear apertures for distance and near vision tasks.
The lens reduces the eye lengthening associated with myopia progression without significantly affecting the user's vision, providing clear vision for both distance and near tasks while minimizing contrast in peripheral vision.
Smart Images

Figure 2025174968000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention features an ophthalmic lens for treating myopia and slowing the progression of myopia. [Background technology]
[0002] The eye is an optical sensor in which light from an external source is focused by a lens onto the surface of the retina, which is an array of wavelength-dependent photosensors. The eye's lens can adjust by changing shape so that external light is optimally or near-optimally focused at a focal distance, creating an inverted image on the surface of the retina that corresponds to the external image observed by the eye. The eye's lens optimally or near-optimally focuses light emitted by or reflected from external objects within a certain range of distances from the eye, and suboptimally focuses or fails to focus objects outside that range of distances.
[0003] In people with normal vision, the axial length of the eye, or the distance from the front of the cornea to the fovea of the retina, corresponds to the focal length for approximately optimal focusing of distant objects. The eye of a person with normal vision focuses on distant objects without neural input to muscles that apply forces to change the shape of the eye's lens, a process called "accommodation." Nearer, immediate objects are focused by normal people as a result of accommodation.
[0004] However, many people suffer from eye-length-related disorders such as myopia (nearsightedness). In a myopic person, the axial length of the eye is longer than the axial length required to focus distant objects without accommodation. As a result, a myopic person can see close objects clearly at a certain distance, but objects much further away are blurred.
[0005] Typically, infants are born hyperopic, with eye lengths shorter than those required for optimal or near-optimal focusing of distant objects without accommodation. During normal eye development, known as "emmetropization," the axial length of the eye increases relative to other eye dimensions to a length that provides near-optimal focusing of distant objects without accommodation. Ideally, biological processes maintain a near-optimal relative eye length (e.g., axial length) relative to eye size as the eye grows to its final adult size. However, in myopic individuals, the axial length of the eye relative to overall eye size continues to increase during development past the length that provides near-optimal focusing of distant objects, resulting in increasingly severe myopia.
[0006] Myopia is thought to be influenced by environmental factors as well as genetic factors. Therefore, myopia can be alleviated by a treatment device that addresses environmental factors. For example, a treatment device for treating eye length-related disorders, including myopia, is described in U.S. Patent No. 5,949,999. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] U.S. Patent Publication No. 2011 / 0313058A1 [Patent Document 2] International Publication No. 2018 / 026697 [Patent Document 3] U.S. Provisional Application No. 62 / 671,992 [Patent Document 4] U.S. Patent Publication No. 2019 / 0235279A1 [Patent Document 5] U.S. Patent No. 7,025,460 [Patent Document 6] U.S. Patent No. 10,268,050 [Patent Document 7] International Publication No. 2019 / 166653 [Non-patent literature]
[0008] [Non-Patent Document 1] ASTM D1003 [Non-patent document 2] BS EN ISO 13468 [Non-patent document 3] http: / / www.montana.edu / jshaw / documents / 18%20EELE582_S15_OTFMTF.pdf Summary of the Invention [Means for solving the problem]
[0009] Various aspects of the present invention are summarized below.
[0010] In general, in a first aspect, the invention features an ophthalmic lens that includes a lens material having two opposing curved surfaces, a light-scattering region, a first opening (e.g., transparent or having a low scattering density / power compared to the light-scattering region) surrounded by the light-scattering region, and a second opening (e.g., transparent or having a low scattering density / power compared to the light-scattering region) separated from the first transparent opening by a portion of the light-scattering region.
[0011] Embodiments of the ophthalmic lens may have one or more of the following features and / or features of other aspects: For example, the ophthalmic lens may have a refractive power.
[0012] The separation of the transparent and light scattering regions can be tuned through a gradual change in scattering concentration / power.
[0013] The ophthalmic lens may be a single vision lens or a multifocal lens (e.g., a bifocal lens such as a progressive lens, a freeform lens, or a prismatic bifocal lens). The lens may have a first refractive power in the first transparent opening and a second refractive power in the second transparent opening, the first and second refractive powers being different. The first refractive power may be selected to correct a user's refractive error for distance vision. The second refractive power may be selected to correct a user's refractive error for near vision or to provide magnification to aid in near vision tasks. The second refractive power may be positive to allow myopic peripheral defocus during distance vision through the first transparent opening.
[0014] The first opening may be approximately centered on the lens optical axis.
[0015] The second opening may be offset from the lens optical axis.
[0016] The area of the light-scattering region separating the first opening from the second opening has different (e.g., reduced) light-scattering properties compared to other areas of the light-scattering region, and the area of the light-scattering region separating the first opening from the second opening defines a reduced-scattering path between the first and second openings that follows the user's natural vergence.
[0017] The second opening may be surrounded by a light scattering region.
[0018] The ophthalmic lens may include a transparent area surrounding the light scattering region, with a second transparent opening contiguous with the transparent area.
[0019] The light scattering region can include optical structures sized and positioned to reduce the contrast of an image viewed through the light scattering region compared to the first transparent opening or the second transparent opening.
[0020] In general, in another aspect, the invention features an ophthalmic lens including a multifocal lens having a first zone having a refractive power for distance vision and a second zone having a different refractive power for near vision, a light-scattering region, and a first transparent region surrounded by the light-scattering region, the first transparent region at least partially overlapping the first zone of the multifocal lens, and the second transparent region at least partially overlapping the second zone of the multifocal lens.
[0021] Embodiments of the ophthalmic lens may include one or more of the following features and / or features of other aspects: For example, the multifocal lens may be a bifocal lens (e.g., a prismatic bifocal lens), a progressive lens, or a freeform lens.
[0022] The first transparent region and the second transparent region may be in the region of a common opening. The common opening may be surrounded by a light scattering region. The common opening may extend to an edge of the light scattering region.
[0023] The first transparent region and the second transparent region may each define a separate opening.
[0024] In general, in another aspect, the invention features an ophthalmic lens that includes a lens material having two opposing surfaces, the surfaces being curved and defining a lens axis; a light-scattering region; and an opening extending from the lens axis to a periphery of the light-scattering region.
[0025] Embodiments of the ophthalmic lens may include one or more of the following features and / or features of other aspects: The aperture may be clear or may have reduced scattering compared to the light scattering region.
[0026] The lens can have a region at the lens axis having a first refractive power and a region having a second refractive power different from the first refractive power, with the transparent opening overlapping both regions. The first refractive power can be selected to correct a user's refractive error for distance vision. The second refractive power can be selected to correct a user's refractive error for near vision or to provide magnification to assist in near vision tasks.
[0027] The ophthalmic lens may be a progressive lens or a freeform lens. In some embodiments, the ophthalmic lens is a bifocal lens.
[0028] In a further aspect, the invention features an ophthalmic lens including a first zone having a refractive power for distance vision and a second zone having a different refractive power for near vision, a contrast reduction region including scattering centers and / or one or more lenslets to reduce image contrast for a user of the ophthalmic lens, and a first transparent region surrounded by the contrast reduction region, the first transparent region at least partially overlapping the first zone of the multifocal lens, and the second transparent region at least partially overlapping the second zone of the multifocal lens. Embodiments of the ophthalmic lens can include one or more of the features of other aspects.
[0029] In yet a further aspect, the invention features an ophthalmic lens including a lens material having two opposing curved surfaces, the curved surfaces defining a lens axis, a contrast reduction region for reducing image contrast for a user of the ophthalmic lens, and a transparent opening extending from the lens axis to a periphery of the defocus region. The contrast reduction region includes one or more lenslets and a plurality of scattering centers. Embodiments of the ophthalmic lens can include one or more of the features of other aspects.
[0030] In another aspect, the invention features eyeglasses including the ophthalmic lens of any of the previous aspects.
[0031] The second opening can be offset from the first opening along an axis that defines a non-zero angle α with a vertical axis of the eyeglass frame. The angle α can correspond to a path of the user's eyes as the user's gaze transitions from the first transparent opening to the second transparent opening. The angle α can correspond to a natural vergence path of the user's eyes as they switch from far-distance vision to near-distance vision. α can be in the range of 5° to 20°.
[0032] At least one transparent opening in the ophthalmic lens may be elongated in the vertical direction of the spectacles.
[0033] At least one transparent opening in the ophthalmic lens may be elongated in the horizontal direction of the spectacles.
[0034] At least one horizontally elongated transparent opening is positioned for near-distance vision while the eyeglasses are in use.
[0035] Among other advantages, the disclosed embodiments include eyeglasses that can reduce the eye lengthening associated with the progression of myopia without significantly affecting the user's vision. For example, embodiments feature lenses with clear apertures for distance vision and for near vision tasks, such as reading, while having light scattering areas to reduce contrast in the user's peripheral vision. Bifocal or multifocal lenses can be used.
[0036] Other advantages will become apparent from the drawings, detailed description, and claims. [Brief explanation of the drawings]
[0037] [Figure 1] 1 is a plan view of an embodiment of an ophthalmic lens for treating myopia. [Figure 2A] 2 is a diagram of a pair of eyeglasses including ophthalmic lenses as shown in FIG. 1. [Figure 2B] FIG. 1 illustrates the horizontal field of view of a typical person. [Figure 2C]FIG. 1 illustrates the vertical field of view of a typical person. [Figure 3] FIG. 1 is a plan view of another embodiment of an ophthalmic lens for treating myopia. [Figure 4] 1 is a plan view of a further embodiment of an ophthalmic lens for treating myopia. [Figure 5] FIG. 10 is a plan view of yet another embodiment of an ophthalmic lens for treating myopia. [Figure 6] FIG. 1 is a plan view of another embodiment of an ophthalmic lens for treating myopia. [Figure 7] 1 is a plan view of a further embodiment of an ophthalmic lens for treating myopia. [Figure 8] FIG. 1 is a plan view of another embodiment of an ophthalmic lens for treating myopia. [Figure 9] FIG. 1 is a plan view of another embodiment of an ophthalmic lens for treating myopia. [Figure 10] FIG. 1 is a plan view of another embodiment of an ophthalmic lens for treating myopia. [Figure 11] FIG. 1 is a plan view of another embodiment of an ophthalmic lens for treating myopia. [Figure 12] FIG. 1 is a plan view of another embodiment of an ophthalmic lens for treating myopia. [Figure 13] 1A-1C are diagrams of examples of scattering center patterns for ophthalmic lenses for treating myopia. DETAILED DESCRIPTION OF THE INVENTION
[0038] Referring to Figure 1, an ophthalmic lens 100 includes a first transparent opening 110 and an annular scattering region 130 surrounding the transparent opening. In this case, the lens 100 is a single-vision lens having uniform optical properties, such as a spherical lens or a compound lens or a toric lens (i.e., having a spherical component and a cylindrical component), or a plano lens (i.e., a lens with no optical power). Figure 1 also shows vertical and horizontal axes for ease of reference. It will be understood that the lens 100 is depicted as a circular blank, and thus, while a spherical lens is rotationally symmetric, the horizontal and vertical directions refer to how the lens is oriented when mounted in an eyeglass frame.
[0039] The first transparent opening 110 is positioned approximately near the center of the lens 100. The scattering region 130 is also centered with respect to the lens center. The scattering region 130 is also surrounded by a transparent region 140. The second transparent opening 120 is also provided in the light scattering region 130 that is separated from the transparent opening 110 along an axis 132 that is offset from the normal axis of the lens by an angle α.
[0040] The horizontal and vertical axes refer to how the lens 100 will ultimately be oriented in a pair of eyeglass frames. In unmounted eyeglass lenses 100, where the lens is flat or spherical, before being molded for mounting in a frame, such lenses are generally radially symmetric, and angle α is arbitrary until the lens is molded for mounting. However, in lenses that do not have rotational symmetry, such as toric lenses, angle α can instead be defined relative to the orientation of the second opening 120 compared to the axis of the cylindrical component. Of course, if the cylindrical axis is parallel to the vertical axis, α will be the same regardless of how it is defined.
[0041] 1, transparent opening 110 is a far-distance viewing opening that can function for far-distance viewing activities such as reading road signs, etc. Second transparent opening 120 is a near-distance viewing opening that can function for near-distance viewing activities such as reading a book.
[0042] In general, α can be varied: the offset angle α, when compared to the axis of the cylinder, can be varied between 0 and 180 degrees.
[0043] When α refers to an offset angle from a vertical meridian once installed, α can be selected to adjust the path of the user's eyes when focusing on a near object. When a person accommodates to focus on a near object, this also causes a horizontal inward eye movement called convergence, or vergence. Therefore, the angle can be selected to match the user's vergence for near objects so that the near-distance viewing object can be viewed with the accommodated eye through the second opening. In some embodiments, α is 45° or less, e.g., about 30° or less, about 25° or less, about 20° or less, about 15° or less, about 10° or less, about 8° or less, e.g., 1° or more, 2° or more, 3° or more, 4° or more, 5° or more, or 0°. For example, the near-distance viewing transparent opening 120 can be offset toward the user's nose from a vertical axis passing through the center of the transparent opening 110 to adjust for the wearer's vergence when focusing on a near object. This offset can be 1 mm or more (e.g., 2 mm or more, 3 mm or more, 4 mm or more, 5 mm or more, 6 mm or more, 7 mm or more, 10 mm or less, 9 mm or less, 8 mm or less, etc.), where the distance is measured from the horizontal center point of transparent opening 120 to the horizontal center point of transparent opening 110 (which, in some embodiments, may correspond to the center of the lens). Both transparent opening 110 and transparent opening 120 are circular in shape, with opening 120 having a slightly larger diameter than opening 110. In general, the size of the openings can vary and is set to provide the user with adequate on-axis vision (through opening 110) and adequate near-distance vision (through opening 120), while not being so large as to significantly interfere with the effects of reduced contrast in peripheral vision due to the scattering area. Typically, both transparent openings have a diameter of 2 mm or more (e.g., 3 mm or more, 4 mm or more, 5 mm or more, 10 mm or less, etc.).
[0044] Non-circular openings are also possible (see below for specific examples). For example, the horizontal width of an opening may differ from the vertical height of the opening. In FIG. 1, openings 110 and 120 each have a horizontal width of w 110and w 120 In general, the horizontal widths of the openings may be the same or different. In some embodiments, as illustrated in FIG. 120 Ha w 110 It can be larger. For example, w 120 Ha, w 110 w120 may be 10% or more (e.g., 20% or more, 30% or more, 40% or more, 50% or more, 75% or more, 100% or more, 200% or less, 150% or less, 120% or less, etc.) greater than w120. In some embodiments, for near vision, w120 is selected such that the user's visual axis remains within transparent opening 120 while the user engages in a particular task while the user's eyes scan the field of view horizontally (e.g., when reading). This may be advantageous as it allows the user to scan the field of view through the transparent opening without having to move the user's head.
[0045] The distance between the openings can also vary and is typically set so that the openings accommodate comfortable on-axis viewing and comfortable near-distance viewing for the user. The distance between the nearest edges of the transparent openings can be 1 mm or more (e.g., 2 mm or more, 5 mm or more, 10 mm or less, etc.).
[0046] In Figure 1, δ NF The distance between the centers of aperture 110 and aperture 120, denoted δ, can be varied so that aperture 120 corresponds to the user's line of sight when focused on a near object. NF may be in the range of 0.5 mm to 20 mm (e.g., 0.6 mm or more, 0.7 mm or more, 0.8 mm or more, 0.9 mm or more, 10 mm or more, 11 mm or more, 12 mm or more, 13 mm or more, 14 mm or more, e.g., 19 mm or less, 18 mm or less, 17 mm or less, 16 mm or less, 15 mm or less).
[0047] The spacing between openings 110 and 120 depends on the size of each opening and the distance between the centers of the openings. In some embodiments, the spacing can be 0.5 mm or more (e.g., 1 mm or more, 2 mm or more, 3 mm or more). The spacing can be less than 10 mm (e.g., 9 mm or less, 8 mm or less, 7 mm or less, 6 mm or less, 5 mm or less).
[0048] The light-scattering region 130 includes scattering centers that scatter at least a portion of the light incident on the lens in the region. The light-scattering region 130 can reduce contrast in the user's peripheral vision, which is believed to reduce the progression of the user's myopia. Typically, the scattering centers can include features on the surface of the lens (e.g., protrusions or depressions) or inclusions in the bulk lens material. Suitable patterns of scattering centers for the light-scattering region are described, for example, in U.S. Patent No. 6,233,999, filed July 31, 2017, entitled "OPHTHALMIC LENSES FOR TREATING MYOPIA," U.S. Patent No. 6,233,999, filed May 15, 2018, entitled "OPHTHALMIC LENSES WITH LIGHT SCATTERING FOR TREATING MYOPIA," and U.S. Patent No. 6,233,999, published August 1, 2019, entitled "OPHTHALMIC LENSES WITH LIGHT SCATTERING FOR TREATING MYOPIA." The contents of each of these applications are incorporated herein by reference in their entirety.
[0049] Generally, the properties of the scattering centers can be selected based on various design parameters to achieve a desired degree of light scattering on the user's retina. These design parameters typically include, for example, scattering center concentration, their size and shape, and their refractive index, which are discussed in more detail below. Ideally, scattering centers are selected to provide high visual acuity on the fovea and reduced image contrast on other parts of the retina with sufficiently low discomfort to the wearer to allow extended continuous wear. For example, it may be desirable for children to wear glasses comfortably for most, if not all, of the day. Alternatively or additionally, scattering centers can be designed for certain tasks, particularly those that are thought to strongly stimulate eye growth, such as video games, reading, or other exposure to wide-angle, high-contrast images. For example, in such situations (e.g., when the user experiences high contrast in the user's peripheral vision and / or situations where the wearer does not need to move or orient themselves using peripheral vision), the scattering intensity and scattering angle in the periphery may be increased while considerations of awareness and self-esteem may be less important. This can have a greater effect on reducing peripheral contrast in such high contrast environments.
[0050] Reducing image contrast on the fovea of a user's eye is believed to be less effective in controlling eye growth than reducing image contrast on other portions of the user's retina. Thus, the scattering centers can be adjusted to reduce (e.g., minimize) light scattered toward the user's fovea, while relatively more of the light on other portions of the retina is scattered light. The amount of scattered light on the fovea is affected by the size of the clear opening, but may also be affected by the properties of the scattering centers, particularly those closest to the clear opening. In some embodiments, for example, scattering centers closest to the clear opening can be designed for less effective light scattering than those further away. Alternatively or additionally, in some embodiments, scattering centers closest to the clear opening can be designed for smaller angle forward scattering than those further away from the opening.
[0051] In certain embodiments, the scattering center can be designed to deliver reduced narrow-angle scattering and increased wide-angle scattering through the scattering center's geometry, creating a uniform light distribution / low-contrast signal on the retina while preserving visual acuity. For example, the scattering center can be designed to generate fairly wide forward angle scattering (e.g., greater than 10%, 20% or more, 30% or more, 40% or more, 50% or more, greater than 2.5 degrees deflected). Narrow angle, i.e., forward scattering within 2.5 degrees, can be kept relatively low (e.g., 50% or less, 40% or less, 30% or less, 20% or less, 10% or less).
[0052] Generally, various different metrics can be used to evaluate the performance of scattering centers in order to optimize them for use in myopia-reducing eyewear. For example, scattering centers can be empirically optimized, for example, based on physical measurements of lenses with different scattering center shapes, sizes, and layouts. For example, light scattering can be characterized based on haze measurements, such as the International Test Standard for Haze (e.g., Non-Patent Documents 1 and 2). Conventional haze meters can be used, such as the BYK-Gardner haze meter (e.g., the Haze-Gard Plus instrument), which measures how much light is transmitted through the lens overall, how much light is transmitted unimpeded (e.g., within 0.5 degrees), how much is deflected by more than 2.5 degrees, and clarity (the amount within 2.5 degrees), which can be considered a measure of narrow-angle scattering. Other devices can also be used to characterize light scattering for the purpose of empirically optimizing scattering patterns. For example, a device that measures light diffusion by measuring light in an annular ring around 2.5 degrees can be used (e.g., the Hornell device described in Standard EN167).
[0053] Alternatively or additionally, the scattering centers can be optimized by computer modeling software (eg, Zemax or Code V).
[0054] In some embodiments, the scattering centers can be designed based on optimizing a point spread function, where the point spread function represents the image of the scattering centers on the retina. For example, the size, shape, composition, spacing, and / or refractive index of the scattering centers can be altered to uniformly spread illumination of the retina such that the retina outside the fovea is homogeneously covered with scattered light, reducing (e.g., minimizing) contrast in this region of the retina.
[0055] In some embodiments, optimizing light scattering over the peripheral retina emphasizes the intensity of scattered light versus unobstructed light in certain areas of the retina to more strongly suppress high-contrast images. High-contrast images, such as reading black and white text, tend to originate more from the lower half of the visual field. Therefore, more scattering over the upper retinal field may be beneficial to reduce the signal for axial growth while reducing visual effects, such as glare or halos, on the upper visual field.
[0056] Alternatively or additionally, the scattering centers can be designed based on optimizing the modulation transfer function, which refers to the spatial frequency response of the human visual system. For example, the size, shape, and spacing of the scattering centers can be varied to smooth the attenuation of a range of spatial frequencies. The design parameters of the scattering centers can be varied to increase or decrease certain spatial frequencies as desired. Typically, spatial frequencies of interest for vision are 18 cycles per degree on the fine side and 1.5 cycles per degree on the coarse side. The scattering centers can be designed to enable increased signal at a subset of spatial frequencies within this range.
[0057] The above-described metrics can be used to evaluate scattering centers based on their size and / or shape, and both size and shape can be varied as desired. For example, scattering centers can be approximately circular (e.g., spherical), elongated (e.g., ellipsoidal), or irregularly shaped. Generally, if the scattering centers are protruding portions on the surface of the lens, the protrusions should have a dimension (e.g., diameter) large enough to scatter visible light, yet small enough so that they are not resolved by the wearer during normal use. For example, the scattering centers can have dimensions ranging from about 0.001 mm or more (e.g., about 0.005 mm or more, about 0.01 mm or more, about 0.015 mm or more, about 0.02 mm or more, about 0.025 mm or more, about 0.03 mm or more, about 0.035 mm or more, about 0.04 mm or more, about 0.045 mm or more, about 0.05 mm or more, about 0.055 mm or more, about 0.06 mm or more, about 0.07 mm or more, about 0.08 mm or more, about 0.09 mm or more, about 0.1 mm) to about 1 mm or less (e.g., about 0.9 mm or less, about 0.8 mm or less, about 0.7 mm or less, about 0.6 mm or less, about 0.5 mm or less, about 0.4 mm or less, about 0.3 mm or less, about 0.2 mm or less, about 0.1 mm).
[0058] It should be noted that for smaller scattering centers, having dimensions comparable to the wavelength of light (e.g., 0.001 mm to about 0.05 mm), the scattering of light can be considered Rayleigh or Mie scattering. For larger scattering centers, e.g., about 0.1 mm or larger, the scattering of light can be primarily due to geometric scattering.
[0059] In general, the dimensions of the scattering centers may be the same across each lens or may vary. For example, the dimensions may increase or decrease as a function of the position of the scattering centers, e.g., as measured through the transparent aperture, and / or as a function of distance from the edge of the lens. In some embodiments, the dimensions of the scattering centers vary monotonically (e.g., monotonically increase or decrease) with increasing distance from the center of the lens. In some cases, a monotonically increasing / decreasing dimension includes linearly varying the diameter of the scattering centers as a function of distance from the center of the lens.
[0060] The shape of the scattering centers can be selected to achieve a suitable light scattering profile. For example, the scattering centers can be approximately spherical or aspherical. In some embodiments, the scattering centers can be elongated in one direction (e.g., horizontally or vertically), such as in the case of elliptical centers. In some embodiments, the centers are irregular in shape.
[0061] In general, the distribution of scattering centers within scattering region 130 can be varied to achieve a suitable level of light scattering. In some embodiments, the scattering centers are arranged in a regular array, e.g., on a square grid, spaced a uniform amount in each direction. Generally, the scattering centers are spaced so that they collectively provide sufficient contrast reduction at the viewer's periphery to reduce myopia. Typically, the smaller the spacing between scattering centers, the greater the contrast reduction (provided that adjacent scattering centers do not overlap or merge). Generally, the scattering centers can be separated from their nearest neighbors by an amount ranging from about 0.05 mm (e.g., about 0.1 mm or more, about 0.15 mm or more, about 0.2 mm or more, about 0.25 mm or more, about 0.3 mm or more, about 0.35 mm or more, about 0.4 mm or more, about 0.45 mm or more, about 0.5 mm or more, about 0.55 mm or more, about 0.6 mm or more, about 0.65 mm or more, about 0.7 mm or more, about 0.75 mm or more) to about 2 mm (e.g., about 1.9 mm or less, about 1.8 mm or less, about 1.7 mm or less, about 1.6 mm or less, about 1.5 mm or less, about 1.4 mm or less, about 1.3 mm or less, about 1.2 mm or less, about 1.1 mm or less, about 1 mm or less, about 0.9 mm or less, about 0.8 mm or less). By way of example, the spacing may be 0.55 mm, 0.365 mm, or 0.240 mm.
[0062] The scattering centers can be arranged in a non-square lattice, for example, a hexagonal (e.g., hexagonal close-packed) lattice can be used. Irregular arrangements are also possible, for example, random or semi-random placement can be used.
[0063] Generally, the coverage of the lens by scattering centers can be varied as desired. Here, coverage refers to the percentage of the total area of the lens as projected onto the plane shown in FIG. 1 that corresponds to the scattering center. Typically, lower scattering center coverage will result in less scattering than higher coverage (assuming the individual scattering centers are separate, i.e., do not merge to form larger scattering centers). Scattering center coverage can vary from 5% or more to about 75%. For example, coverage can be 10% or more, 15% or more, 20% or more, 25% or more, 30% or more, 35% or more, 40% or more, 45% or more, 50%, or 55%, etc. Coverage can be selected, for example, according to a user's comfort level that provides a level of peripheral vision that is comfortable enough for the wearer to voluntarily wear the eyeglasses for extended periods of time (e.g., all day) and / or according to a desired strength at which axial eye length growth signals are suppressed.
[0064] It is believed that light from the scene that enters the lens in the scattering zone 130 between the scattering centers contributes to a discernible image of the scene on the user's retina, while light from the scene that enters the scattering centers does not. Furthermore, at least a portion of the light that enters the scattering centers is transmitted to the retina, thereby having the effect of reducing image contrast without substantially reducing light intensity at the retina. Thus, it is believed that the amount of contrast reduction in the user's peripheral vision is correlated (e.g., approximately proportional) to the proportion of the surface area of the contrast-reducing zone that is covered by the scattering centers.
[0065] Generally, the scattering center is intended to reduce the contrast of the image of an object in the wearer's peripheral vision without significantly degrading the viewer's visual acuity in this region. For example, the scattering center may be primarily wide-angle scattering. Here, peripheral vision refers to the visual field outside the area of the transparent aperture. Image contrast in these regions can be reduced by 40% or more (e.g., 45% or more, 50% or more, 60% or more, 70% or more, 80% or more) compared to the image contrast viewed using the lens's transparent aperture, as determined. Contrast reduction can be set according to the needs of each individual case. Typical contrast reductions are expected to be in the range of approximately 50% to 55%. Contrast reductions below 50% can be used in very mild cases, while more predisposed subjects may require more than 55% contrast reduction. Peripheral vision can be corrected to 20 / 30 or better (e.g., 20 / 25 or better, 20 / 20 or better) as determined by subjective ophthalmology, while meaningful contrast reduction can be achieved. In embodiments, the contrast reduction may result in a reduction of 2 or fewer Snellen lines (e.g., 1.5 or fewer lines, 1 or fewer lines), where a reduction of 1 line corresponds to a decrease in visual acuity from 20 / 20 to 20 / 25.
[0066] Here, contrast refers to the difference in brightness between two objects in the same field of view, and contrast reduction therefore refers to a change in this difference.
[0067] Contrast and contrast reduction can be measured in a variety of ways: In some embodiments, contrast can be measured based on the difference in brightness between different parts of a standard pattern, such as a checkerboard of black and white squares, obtained under controlled conditions through a clear aperture and scattering center pattern in a lens.
[0068] Alternatively or additionally, contrast reduction can be determined based on the optical transfer function (OTF) of the lens (see, for example, Non-Patent Document 3). In OTF, contrast is defined for the transmission of stimuli in which light and dark regions are sinusoidally modulated at different "spatial frequencies." These stimuli appear as alternating light and dark bars, with the spacing between the bars varying over a range. In all optical systems, contrast transmission is lowest for sinusoidally varying stimuli with the highest spatial frequency. The relationship describing contrast transmission for all spatial frequencies is the OTF. The OTF can be obtained by taking the Fourier transform of the point spread function. The point spread function can be obtained by imaging a point source through a lens onto a detector array and determining how the light from the point is distributed across the detectors.
[0069] In the event of conflicting measurements, OTF is the preferred technique. In some embodiments, contrast can be estimated based on the ratio of the area of the lens covered by the scattering centers compared to the area of the transparent aperture. This approximation assumes that all light that strikes the scattering centers is uniformly dispersed across the entire retinal area, thereby reducing the amount of light available in the brighter areas of the image and adding light to the darker areas. Therefore, contrast reduction can be calculated based on light transmission measurements made through the transparent aperture and scattering areas of the lens.
[0070] The light scattering region 130 has a circular shape, although other shapes are possible (e.g., elliptical, polygonal, or other shapes). The size of the light scattering region is typically selected so that contrast reduction in the user's peripheral vision is experienced over a significant portion of the user's field of view, even when not looking directly through the on-axis aperture. The light scattering region 130 can have a diameter (or maximum dimension for non-circular regions) of 30 mm or more (e.g., 40 mm or more, 50 mm or more, 60 mm or more, 70 mm or more, 80 mm or more, e.g., 100 mm or less, 90 mm or less, 80 mm or less, 70 mm or less, 60 mm or less). In some embodiments, the light scattering region extends to the edge of the lens.
[0071] In some embodiments, the periphery of the light scattering zone can be blended with the clear zone by gradually decreasing the amount, concentration, or power of light scattering.
[0072] In some embodiments, the transparent region can exhibit a smaller amount of light scattering compared to the light scattering region.
[0073] Referring to FIG. 2A , eyeglasses 101 include two lenses 100a and 100b within eyeglass frame 150. Each lens corresponds to lens 100 shown in FIG. 1 and is shaped and sized to fit within frame 150, with second transparent opening 120 aligned below transparent opening 110, along axis 132, at an angle α from the vertical axis. In each case, offset angle α is in the direction of the user's nose. While this angle is the same for lenses 100a and 100b, in some embodiments, the offset angle may be different. For example, different offset angles can be used to accommodate variance between vergence for each eye.
[0074] 2B and 2C , the transparent openings 110 and 120 can be sized, shaped, and positioned in the eyeglasses 101 to provide a line of sight through the opening 110 along the user's standard line of sight (e.g., for distance vision) and a line of sight through the opening 120 along the user's normal line of sight in a seated position (e.g., for close-distance vision, such as for reading). The transparent openings 110 can be sized and positioned to provide a line of sight through the transparent openings between ±2° or more (e.g., ±3° or more, ±4° or more, ±5° or more, ±10° or less, ±9° or less, ±8° or less, ±7° or less, ±6° or less, etc.) in the vertical and / or horizontal directions. The horizontal and vertical angular ranges can be the same or different. The angular range of the upper field of view can be the same or different from the angular range of the lower field of view.
[0075] The transparent opening 120 can be sized and positioned to provide a line of sight through the transparent opening between ±2° or more (e.g., ±3° or more, ±4° or more, ±5° or more, ±10° or less, ±9° or less, ±8° or less, ±7° or less, ±6° or less, etc.) in the vertical and / or horizontal directions about the normal line of sight axis in a seated position. The horizontal and vertical angular ranges can be the same or different. In some embodiments, the transparent opening 120 can have a horizontal width sufficient to provide a user with a line of sight through the opening in the code recognition area at, for example, 15° below the standard line of sight. For example, the horizontal width of the transparent opening 120 can be sized to provide a line of sight through the transparent opening between up to ±30° (e.g., up to ±25°, up to ±20°, up to ±15°, up to ±12°).
[0076] While the ophthalmic lens 100 features a circular distance vision opening and a circular near vision opening, more typically, one or both of these openings can have a non-circular shape to achieve a desired side of vision, for example, along the standard line of sight and the normal line of sight in a seated position. For example, either or both clear openings can be elliptical, polygonal, or have an irregular shape.
[0077] In some embodiments, an ophthalmic lens may include a single elongated aperture extending from the far distance vision region to the near distance vision region of the lens. For example, referring to Figure 3, an ophthalmic lens 300 includes a clear elliptical aperture 310 and a circular light scattering region 330 surrounding the clear aperture 310. The circular light scattering region 330 is also approximately centered with respect to the lens center. The scattering region 330 is also surrounded by a clear region 340.
[0078] The transparent opening 310 is an elliptical opening with one end positioned near the center of the lens and extends radially within the circular light scattering area 330 toward the transparent area 340. Thus, the opening extends from the far-distance viewing area near the center of the lens to the near-distance viewing area of the lens near the edge of the circular light scattering area 330. The major axis of the elliptical opening extends along an axis 332 that is offset from the normal axis of the lens by an angle α. Generally, α can be varied. In some embodiments, α is 45° or less, e.g., about 30° or less, about 25° or less, about 20° or less, about 15° or less, about 10° or less, about 8° or less, e.g., 1° or more, 2° or more, 3° or more, 4° or more, 5° or more, or 0°. Generally, the offset angle can be selected to adjust the path of the user's eyes when focusing on a close object. Generally, the offset angle can be selected to adjust the path of the user's eyes when focusing on a close object.
[0079] While the transparent opening 310 is elliptical in shape, other shapes are possible (e.g., polygonal or any other shape such as a dipole or peanut). In general, the size of the opening can be varied and set to provide the user with adequate on-axis viewing (through the first end of the opening 310) and adequate near-distance viewing (through the second end of the opening 320). The opening should not be so large as to significantly interfere with the effects of reduced contrast in the peripheral vision due to the scattering zone in far-distance, near-distance, or intermediate-distance viewing scenarios.
[0080] The opening 310 has a height h along the vertical direction. Generally, h can be selected so that the opening spans from the far-distance viewing area to the near-distance viewing area. In some embodiments, h may be large enough to accommodate variations in the position of the eyeglasses, for example, via rotation of the eyeglasses around the bridge of the wearer's nose, or if the eyeglasses slip down the wearer's nose. In other words, the opening is tall enough that the wearer can still see through the transparent opening 310 if the position or orientation of the eyeglasses shifts on the wearer during normal use. Generally, h may range from 10 mm to 25 mm (e.g., 12 mm or more, 15 mm or more, 18 mm or more, e.g., 22 mm or less, 20 mm or less).
[0081] 4, an ophthalmic lens 400 includes a first transparent opening 410 and a circular light scattering area 430 surrounding the first transparent opening 410. The first transparent opening 410 is positioned approximately near the center of the lens 400. The scattering area 430 is also approximately centered with respect to the lens center. The scattering area 430 is also surrounded by a transparent area 440.
[0082] A second transparent aperture 420 is also provided in a circular light scattering area 430. The second transparent aperture 420 is circular and aligned along an axis 432 that is offset from the normal axis of the lens by an angle α.
[0083] Lens 400 also includes a transition region 460 having different scattering properties than scattering region 430 for contrast reduction in the user's peripheral vision. For example, transition region 460 may have reduced scattering compared to scattering region 430 (e.g., by having a lower concentration of scattering centers, different size of scatterers, while still achieving some contrast reduction for peripheral vision when the user engages in looking through either transparent opening 410 or transparent opening 420). Transition region 460 may coincide with the natural vergence path of the user's eyes when transitioning from far-distance vision to near-distance vision.
[0084] Both transparent aperture 410 and transparent aperture 420 are circular in shape, with aperture 420 having a slightly larger diameter than aperture 410. In some embodiments, the second aperture can have a diameter the same size as the first aperture, or a smaller diameter. More generally, as previously described, other shapes (e.g., polygonal or any other shape) are possible, and the size of the apertures can be varied and set to provide the user with an appropriate on-axis field of view (through aperture 410) and an appropriate near-field field of view (through aperture 420).
[0085] As previously mentioned, the shape of the transparent opening can vary. Referring to Figure 5, an ophthalmic lens 500 includes a first transparent teardrop-shaped opening 510 and a circular light scattering area 530 surrounding the first transparent opening 510. The first transparent opening 510 is positioned approximately near the center of the lens 500. The scattering area 530 is also approximately centered with respect to the lens center. The scattering area 530 is also surrounded by a transparent area 540.
[0086] A second teardrop-shaped transparent aperture 520 is also provided in the circular light scattering area 530. The second transparent aperture 520 is aligned along an axis 532 that is offset from the normal axis of the lens by an angle α. The transparent aperture 510 is a far-distance viewing aperture, which can function for far-distance viewing activities, such as reading road signs. The second transparent aperture 520 is a near-distance viewing aperture, which can function for near-distance viewing activities.
[0087] While the above example includes transparent openings (i.e., scattering-free openings) for both near and far vision, other implementations are also possible. For example, referring to FIG. 6, an ophthalmic lens 600 includes a first transparent opening 610 and a circular light-scattering area 630 surrounding the first transparent opening 610. The first transparent opening 610 is positioned approximately near the center of the lens 600 for far vision. The scattering area 630 is also approximately centered with respect to the lens center. The scattering area 630 is also surrounded by a transparent area 640.
[0088] Rather than a second transparent aperture, lens 600 includes region 620 having different scattering properties compared to light-scattering region 630 positioned for near-distance viewing. For example, region 620 may provide less light scattering compared to region 630, such that the contrast reduction of an image viewed through region 620 is not as significant as that of an image viewed through region 630. In some embodiments, region 620 may have a lower concentration of light-scattering centers compared to region 630. Alternatively or additionally, the size and / or shape of the light-scattering centers in region 620 may differ from the size and / or shape of the light-scattering centers in region 630. Region 620 is aligned along axis 632, which is offset from the normal axis of the lens by angle α.
[0089] The light scattering area 630 includes scattering centers that scatter at least a portion of the light.
[0090] In some embodiments, the near vision opening may extend to the edge of the scattering area of the lens. For example, referring to Figure 7, an ophthalmic lens 700 includes a clear elliptical opening 710 and a circular light scattering area 730 surrounding the clear opening 710. The circular light scattering area 730 is approximately centered with respect to the lens center. The scattering area 730 is also surrounded by a clear area 740.
[0091] One end of the transparent opening 710 is positioned near the center of the lens, while the opening 710 extends radially to the edge of the light scattering region 730 into the transparent region 740 to encompass both the far distance viewing region near the center of the lens and the near distance viewing region of the lens near the edge of the circular light scattering region 730. The transparent opening 710 extends along an axis 732 that is offset from the normal axis of the lens by an angle α.
[0092] As previously mentioned, while the transparent opening 710 is elliptical in shape, other shapes are possible (eg, polygonal or any other shape).
[0093] In the above embodiments, the ophthalmic lens is a monofocal lens, a toric lens, an aspheric lens, or an optically neutral or plano (i.e., no refractive power) lens. More generally, other embodiments are also possible. For example, multifocal lenses can be used, such as bifocal lenses (prismatic bifocal lenses), trifocal lenses, multifocal lenses, freeform lenses, or progressive lenses.
[0094] By way of example, and referring to FIG. 8 , a bifocal lens 800 has two zones of different refractive power. The bifocal ophthalmic lens 800 includes a first transparent opening 810 for distance vision and a circular light-scattering zone 830 surrounding the first transparent opening 810. The scattering zone 830 is also surrounded by a transparent zone 840. A second transparent opening 820 for near vision is also provided within the light-scattering zone 830, aligned along an axis 832, offset by an angle α from the vertical axis of the lens. The near vision zone 870 occupies the lower zone of the lens (relative to the vertical axis) and has a refractive power selected to facilitate near vision tasks. The near vision opening 820 is located in this zone of the lens. The near distance vision lens section 870 overlaps the near distance vision opening 820 and may be larger than the opening (as shown in FIG. 8), about the same size as the near distance vision opening 820, or smaller than the near distance vision opening 820. The near distance vision section 870 may have an additional optical power of +0.25D or more (e.g., +0.5D or more, +0.75D or more, +1.0D or more, +1.25D or more, +1.5D or more, +2D or more, +2.5D or more, +3D or more, up to +5D, etc.) over the base curve.
[0095] When a multifocal lens is used, the near vision lens section serves two functions: When the viewer is looking through the distance vision aperture, the near vision section provides peripheral defocus. Peripheral defocus is known to slow the progression of myopia, as described, for example, in U.S. Patent No. 5,629,999. When the viewer is looking through the near vision aperture, the near vision lens section typically contains a positive lens power (i.e., provides more refractive focusing accommodation compared to the distance vision portion of the lens) to help the user focus for near vision tasks.
[0096] The remaining areas of the lens have different refractive powers selected for distance vision tasks. An opening 810 is located in the distance vision lens area.
[0097] In some embodiments, a prismatic bifocal lens can be used. For example, one or more deltas of base-in prism (e.g., two or more deltas, three or more deltas, four or more deltas, up to five deltas, etc.) can be added to the near distance viewing area 870. The use of a prismatic bifocal lens can slow the progression of myopia in children compared to the use of regular bifocal lenses, and the inclusion of a scattering area of base-in prism can provide additional benefits in this regard.
[0098] Referring to FIG. 9, a progressive lens 900 can also be used. Progressive lenses are typically characterized by gradually increasing lens power that is added to the wearer's correction for other refractive errors. The gradient begins with the wearer's distance prescription at the top of the lens and reaches full add power, or full reading add, at the bottom of the lens to match the eye's natural path when focusing on near objects. The length of the progressive power gradient on the lens surface generally depends on the lens design, with the final add power usually being between 0.75 and 3.50 diopters.
[0099] As shown, lens 900 includes five distinct zones, divided in the diagram by dotted lines 922, 923, 924, and 925. These include a near vision zone 911, an intermediate zone 912, and a distance vision zone 913. Such a lens may also include peripheral distortion zones 914 and 915. Although defined by the dotted lines, the change in optical power from one zone to the next is typically gradual.
[0100] With regard to the scattering / transparency properties of the lens, the progressive ophthalmic lens 900 includes a transparent outer region 940, a light-scattering zone 930, and a first transparent aperture 910 for distance vision and a second transparent aperture 920 for near vision. The second transparent aperture 920 is aligned along an axis 932, which is offset from the normal axis of the lens by an angle α. The distance vision clear aperture 910 overlaps (in this case partially) with the distance viewing zone 913 of the progressive lens, while the near vision aperture 920 overlaps with the near vision zone 911.
[0101] Generally, any of the disclosed transparent aperture arrangements can be used with multifocal lenses (e.g., bifocal or progressive lenses). Furthermore, in some embodiments, when a multifocal lens is used, the second transparent aperture (e.g., aperture 920 of lens 900) is aligned specifically over an area of the lens having add power for near vision. For example, the location of the second aperture can have an optical power of +0.25D or more (e.g., +0.5D or more, +0.75D or more, +1.0D or more, +1.25D or more, +1.5D or more, +1.75D or more, +2.0D or more) compared to the optical power of the lens at the first transparent aperture (i.e., the aperture for far vision).
[0102] FIG. 10 illustrates an on-axis transparent aperture 1010 and a distance δ along a direction 1032. NF 1 shows a further example of an ophthalmic lens 1000 having a second transparent aperture 1020 offset from the axis by . The apertures 1010 and 1020 are linked by a transparent neck 1022 to achieve a combined transparent aperture with a dumbbell shape within a scattering region 1030. The scattering region 1030 is surrounded by a transparent region 1040. The aperture 1020 is aligned for near vision activities such as reading, and its vertical height h 1020 A horizontal width substantially larger than w 1020 For example, w 1020 is 1.5 x h 1020 or more (for example, 1.8 x h 1020 That's it, 2 x h 1020That's it, 2.5 x h 1020 That's it, 3 x h 1020 or more, for example, up to 5 × h 1020 In some embodiments, w 1020 may correspond to the solid angle subtended by a user's eyes when reading a page of standard text at a typical reading distance. The solid angle may be ±10° or greater (e.g., ±12° or greater, ±15° or greater).
[0103] All of the example lenses described above typically include a clear aperture for distance vision that is located at the center of the lens. However, other embodiments are also possible. For example, with reference to FIG. 11, in some embodiments, the lens may include a clear aperture located only at the near vision axis, but not at the distance vision axis. Here, an ophthalmic lens 1100 may include a single clear aperture 1120, the center of which is 1 / 2 inch away from the central lens axis 1101 (e.g., by the amount δ, as discussed above). NF offset).
[0104] Furthermore, while the above-described embodiments feature scattering regions having characteristics (i.e., scattering centers) that scatter rather than focus incident light, other implementations are also possible. For example, a lens can include one or more lenslets having a different refractive power than the base lens in the region identified as the "scattering region" in the above-described embodiments. Examples of such lenslets are disclosed, for example, in U.S. Patent Application Publication No. 2019 / 0129999, entitled "Spectacle Lens," and U.S. Patent Application Publication No. 2019 / 0129 ...
[0105] In general, the optical properties of the lenslets can vary depending on the degree of defocus that is deemed suitable for the user. For example, the lenslets can be spherical or aspherical. The lenslets can have positive or negative refractive power. In some embodiments, the lenslet power is zero (e.g., where the base power of the lens is strongly negative). The lenslets can each have the same refractive power, or different lenslets can have different refractive powers. In some embodiments, the lenslets can have an add power of +0.25D or more (e.g., +0.5D or more, +0.75D or more, +1.0D or more, +1.25D or more, +1.5D or more, +1.75D or more, +2.0D or more, +3.0D or more, +4.0D or more, up to +5.0D, etc.) relative to the base power of the lens. In some embodiments, the lenslet can have an add power of −0.25D or less (eg, −0.5D or less, −0.75D or less, −1.0D or less, −1.25D or less, −1.5D or less) compared to the base power of the lens.
[0106] The size of the lenslets can also be varied accordingly: the lenslets can have a diameter of 0.5 mm or greater (e.g., 0.8 mm or greater, 1 mm or greater, 1.5 mm or greater, 2 mm or greater, 3 mm or greater, up to 5 mm, etc.).
[0107] The scattering region 1230 includes scattering centers as described above. In addition, the scattering region 1235 includes lenslets 1235 arranged annularly around the aperture 1210. The lenslets cause defocusing of portions of the wavefront that would otherwise be focused on the user's retina. Scattering centers are contained at the locations of the lenslets 1235. For example, a scattering center may be formed on the surface of each lenslet 1235, formed on an opposing lens surface but overlapping the same lateral position as the lenslet 1235, and / or contained within the bulk of the lens 1200 that laterally overlaps the lenslet 1235. In some embodiments, the scattering centers are contained between the lenslets 1235 but do not laterally overlap the lenslet. In certain embodiments, the scattering region of the lens includes only lenslets but does not include additional scattering centers.
[0108] In some embodiments, the lenses may be digitally surfaced lenses. Such lenses are manufactured based on the wearer's prescription with computer-controlled surface processing equipment that is tailored to each individual wearer and more accurate than traditional tools. Digital lens manufacturing techniques can enable lenses to be surfaced in 0.01 diopter power increments, compared to the 0.125-0.25 diopter increments typically possible with traditional eyeglass lens tools. Digital lens manufacturing can be customized to account for various factors, including (i) the lens position in front of the wearer's eyes in the eyeglass frame to provide the most accurate lens power; (ii) the angle between the eye and the back surface of the lens at different gaze positions (e.g., when the wearer looks to the side rather than straight through the center of the lens); (iii) frame size; and / or (iv) the position of the wearer's pupil within the frame contour. Generally, digital lenses may be single-vision, freeform, or multifocal lenses.
[0109] While the previous examples utilizing multifocal lenses each include two separate circular apertures, more generally, the principles and aperture arrangements described above with respect to monofocal lenses (e.g., as shown in Figures 3, 5, 7, 10 and other irregular shapes) can be applied to multifocal lenses as well.
[0110] Additionally, for the lenses described above generally, suitable patterns of scattering centers for light scattering regions are described, for example, in U.S. Patent Application Publication No. 2017 / 012999, entitled "OPHTHALMIC LENSES FOR TREATING MYOPIA," filed July 31, 2017, and U.S. Patent Application Publication No. 2018 / 012999, entitled "OPHTHALMIC LENSES WITH LIGHT SCATTERING FOR TREATING MYOPIA," filed May 15, 2018. The contents of both of these applications are incorporated herein by reference in their entirety.
[0111] Generally, the lenses described herein can be formed in a variety of ways, such as using the methods disclosed in U.S. Patent No. 6,213,629, entitled "OPHTHALMIC LENSES FOR TREATING MYOPIA," filed July 31, 2017; U.S. Patent No. 6,213,629, entitled "OPHTHALMIC LENSES WITH LIGHT SCATTERING FOR TREATING MYOPIA," filed May 15, 2018; and U.S. Patent No. 6,213,629, entitled "OPHTHALMIC LENSES WITH LIGHT SCATTERING FOR TREATING MYOPIA," published August 1, 2019.
[0112] Also, while the openings described above are typically clear openings (i.e., lacking scattering centers), more typically, the openings can correspond to areas that have scattering centers but are sized and positioned such that the amount of light scattering is low compared to the scattering region.
[0113] (Example) Referring to Figure 13, an example pattern for scattering centers is shown for lens 1300, including a transparent aperture 1310 and a scattering area 1330 surrounding the transparent aperture. Transparent aperture 1310 is composed of two circles 1310a and 1310b whose centers are offset by 6.5 mm along an angle α of 14°. Circle 1310a is centered on the lens axis corresponding to the far-distance viewing direction and has a diameter of 7 mm. Circle 1310b has a diameter of 5 mm. The perimeter of transparent aperture 1310 is followed by circles 1310a and 1310b on either side of the aperture, with a tangent line 1310c connecting the two circles between them.
[0114] The scattering area 1330 is composed of inkjet printed scattering centers printed according to the pattern shown and described in FIG. 5B of US Pat. No. 6,449,999.
[0115] Other embodiments are within the scope of the following claims. [Explanation of symbols]
[0116] 100 Ophthalmic lenses, eyeglass lenses 100a lens 100b lens 101 Glasses 110 first transparent opening 120 Second transparent opening 130 Circular scattering area, light scattering area 132 axes 140 Transparent Area 150 eyeglass frames 300 Ophthalmic Lenses 310 Clear oval opening 320 Opening 330 Light scattering area 332 axes 340 Transparent Area 400 Ophthalmic Lenses 410 first transparent opening 420 Second transparent opening 430 Light scattering area 432 shafts 440 Transparent Area 460 Transition Zone 500 ophthalmic lenses 510 First transparent teardrop-shaped opening 520 Second teardrop-shaped transparent opening 530 Light scattering area 532 axes 540 Transparent Area 600 Ophthalmic Lenses 610 first transparent opening 620 area 630 Light scattering area 632 shafts 640 Transparent Area 700 Ophthalmic Lenses 710 Clear Oval Opening 730 Light scattering area 732 shafts 740 Transparent Area 800 Bifocal Lenses, Bifocal Ophthalmic Lenses 810 first transparent opening 820 Second transparent aperture, near field of view aperture 830 Light scattering area 832 shafts 840 Transparent Area 870 Near field of view, near field of view lens area 900 Progressive Lenses, Progressive Ophthalmic Lenses 910 First transparent opening 911 Short-distance visibility zone 912 Intermediate Zone 913 Long-distance Vision Zone 914 Peripheral Distortion Zone 915 Peripheral Distortion Zone 920 Second transparent opening 922 dotted line 923 dotted line 924 dotted line 925 dotted line 930 Light scattering area 932 axes 940 transparent outer area 1000 Ophthalmic Lenses 1010 Transparent opening 1020 Second transparent opening 1022 Transparent neck 1030 Scatter area 1032 directions 1040 Transparent Area 1100 Ophthalmic Lenses 1101 Lens axis 1120 Transparent opening 1200 lens 1210 First transparent opening 1220 Second transparent opening 1230 Light scattering area 1232 axes 1235 Scattering area, lenslet 1240 transparent outer area 1300 lens 1310 Transparent opening 1310a yen 1310b yen 1310c tangent 1330 Scatter area
Claims
1. An ophthalmic lens, a lens material whose curved surface defines the lens optical axis; a light scattering region; a transparent area surrounding the light scattering region; a transparent aperture extending radially from the lens optical axis to an edge of the light scattering region, the transparent aperture being continuous with the transparent zone region; Equipped with An ophthalmic lens, wherein the light scattering region includes optical structures sized and positioned to reduce the contrast of an image viewed through the light scattering region compared to a clear aperture.
2. 2. The ophthalmic lens of claim 1, wherein the ophthalmic lens has a region at the lens optical axis having a first refractive power and a region having a second refractive power different from the first refractive power, and the transparent opening overlaps both regions.
3. The ophthalmic lens of claim 2 , wherein the first refractive power is selected to correct the user's refractive error for distance vision.
4. 3. The ophthalmic lens of claim 2, wherein the second refractive power is selected to correct a user's refractive error for near vision or to provide magnification to assist in near vision tasks.
5. The ophthalmic lens of claim 2 , wherein the ophthalmic lens is a progressive lens or a freeform lens.
6. The ophthalmic lens of claim 2 , wherein the ophthalmic lens is a bifocal lens.
7. The ophthalmic lens of claim 6 , wherein the bifocal lens is a prismatic bifocal lens.
8. A pair of spectacles comprising an ophthalmic lens according to any one of claims 1 to 7.
9. A pair of ophthalmic lenses according to any one of claims 1 to 7, wherein the transparent opening extends along an axis that defines a non-zero angle α with a vertical axis of the spectacle frame.
10. The eyeglasses of claim 9 , wherein the angle α corresponds to the natural vergence path of a user's eyes when switching from far-distance vision to near-distance vision.
11. The eyeglasses of claim 9, wherein the angle α is in the range of 5° to 20°.
12. The eyeglasses of claim 9 , wherein the opening in the ophthalmic lens is elongated in the vertical direction of the eyeglasses.
13. 10. The eyeglasses of claim 9, wherein the opening of the ophthalmic lens is elongated in the horizontal direction of the eyeglasses.
14. The eyeglasses of claim 13, wherein the horizontally elongated transparent opening is positioned for near distance vision while the eyeglasses are in use.
15. An ophthalmic lens, a lens material whose curved surface defines the lens optical axis; a light scattering region; an elongated opening extending radially from the lens optical axis toward an edge of the light scattering region, the elongated opening being transparent or having a low scattering density or power compared to the light scattering region; Equipped with An ophthalmic lens, wherein the light scattering region comprises a plurality of scattering centers that scatter light incident on the ophthalmic lens within the light scattering region, thereby reducing the contrast of an image formed through the light scattering region compared to an image formed through the elongated opening.
16. 16. The ophthalmic lens of claim 15, wherein the plurality of scattering centers comprise at least one light-scattering feature selected from the group consisting of depressions on the surface of the ophthalmic lens, protrusions on the surface of the ophthalmic lens, and inclusions within the lens material.
17. The ophthalmic lens of claim 15 , wherein the elongated opening is elliptical.
18. 16. The ophthalmic lens of claim 15, wherein the elongated opening extends along a first axis that defines an angle relative to a second axis of the ophthalmic lens, the second axis corresponding to at least one of: (i) a vertical axis of the ophthalmic lens defined by the orientation in which the ophthalmic lens is mounted in an eyeglass frame; or (ii) a cylindrical axis of the ophthalmic lens.
19. 19. The ophthalmic lens of claim 18, wherein the height of the elongated opening is between 10 millimeters and 25 millimeters.
20. 19. The ophthalmic lens of claim 18, wherein the angle is 45 degrees or less.
21. 19. The ophthalmic lens of claim 18, wherein the angle defines a path of the elongated opening that a user of the ophthalmic lens would like to follow for natural binocular vergence between a first end of the elongated opening and a second end of the elongated opening.
22. 16. The ophthalmic lens of claim 15, wherein the light scattering region extends to the edge of the ophthalmic lens.
23. The ophthalmic lens of claim 15 further comprising a transparent area surrounding the light scattering region.
24. 24. The ophthalmic lens of claim 23, wherein the elongated opening extends radially around the periphery of the light scattering region and is continuous with the transparent area.
25. 16. The ophthalmic lens of claim 15, wherein the light scattering region is circular and centered about the lens optical axis.
26. A myopia region; A farsighted area; Furthermore, 16. The ophthalmic lens of claim 15, wherein the elongated opening extends from the far vision region to the near vision region.
27. The ophthalmic lens of claim 15, wherein the ophthalmic lens is a multifocal lens.
28. 28. The ophthalmic lens of claim 27, wherein the multifocal lens is a progressive lens or a freeform lens.
29. 28. The ophthalmic lens of claim 27, wherein the multifocal lens is a bifocal lens.
30. 28. The ophthalmic lens of claim 27, wherein the ophthalmic lens has a first refractive power at a first end of the elongated opening and a second refractive power at a second end of the elongated opening, the first refractive power and the second refractive power being different from each other.
31. 31. The ophthalmic lens of claim 30, wherein the first refractive power is selected to correct the user's refractive error for distance vision.
32. 32. The ophthalmic lens of claim 31, wherein the second refractive power is selected to correct a user's refractive error for near vision or to provide magnification to assist in near vision tasks.
33. 33. The ophthalmic lens of claim 32, wherein the second refractive power is positive.
34. The ophthalmic lens of claim 15 , wherein the light scattering region surrounds the elongated opening.
35. 16. The ophthalmic lens of claim 15, comprising a single elongated aperture corresponding to said elongated aperture.
36. The ophthalmic lens of claim 15 , wherein the elongated opening is polygonal.
37. 16. The ophthalmic lens of claim 15, wherein the elongated opening comprises a first end defined by a first circle and a second end defined by a second circle, the first circle being larger than the second circle.
38. 16. The ophthalmic lens of claim 15, wherein the light-scattering region comprises a plurality of lenslets having one or more refractive powers different from a base refractive power of the ophthalmic lens.
39. An ophthalmic lens, a lens material having two curved surfaces facing each other; a light-scattering region having a first opening therein, the first opening being transparent or having a reduced scattering density or scattering power compared to the light-scattering region; and a second opening separated from the first opening, the second opening being transparent or having a reduced scattering density or scattering power compared to the light scattering region; a transparent neck extending between the first opening and the second opening; Equipped with An ophthalmic lens, wherein the light scattering region comprises a plurality of scattering centers that scatter light incident on the ophthalmic lens within the light scattering region, thereby reducing the contrast of an image formed through the light scattering region compared to an image formed through the first opening or the second opening.
40. 40. The ophthalmic lens of claim 39, wherein the second opening is offset from the first opening along a first axis that defines an angle with respect to a second axis of the ophthalmic lens, the second axis corresponding to at least one of: (i) a vertical axis of the ophthalmic lens defined by the direction in which the ophthalmic lens is mounted in an eyeglass frame; or (ii) a cylindrical axis of the ophthalmic lens.
41. 41. The ophthalmic lens of claim 40, wherein a transparent neck extends along said axis.
42. 42. The ophthalmic lens of claim 41, wherein the angle corresponds to a path between the first opening and the second opening that follows the natural vergence of a user of the ophthalmic lens.
43. 41. The ophthalmic lens of claim 40, wherein the angle is between 5 degrees and 20 degrees.
44. a first portion of the transparent neck extending from the first opening toward the second opening narrows in width as it extends from the first opening toward the second opening; 40. The ophthalmic lens of claim 39, wherein the second portion of the transparent neck extending from the second opening toward the first opening decreases in width as the second portion extends from the second opening toward the first opening.
45. 40. The ophthalmic lens of claim 39, wherein the second opening has a horizontal dimension greater than a vertical dimension.
46. 46. The ophthalmic lens of claim 45, wherein the horizontal dimension of said second opening is at least 1.5 times the vertical dimension of said second opening.
47. 46. The ophthalmic lens of claim 45, wherein the first opening is circular.
48. 40. The ophthalmic lens of claim 39, wherein the ophthalmic lens is a single vision lens.
49. 40. The ophthalmic lens of claim 39, wherein the ophthalmic lens is a multifocal lens.
50. 50. The ophthalmic lens of claim 49, wherein the multifocal lens is a progressive lens or a freeform lens.
51. 50. The ophthalmic lens of claim 49, wherein the multifocal lens is a bifocal lens.
52. 50. The ophthalmic lens of claim 49, wherein the ophthalmic lens has a first refractive power at the first opening and a second refractive power at the second opening, the first refractive power and the second refractive power being different from each other.
53. 53. The ophthalmic lens of claim 52, wherein the first refractive power is selected to correct the user's refractive error for distance vision.
54. 54. An ophthalmic lens according to claim 53, wherein the second refractive power is selected to correct the user's refractive error for near vision or to provide magnification to assist in near vision tasks.
55. 54. The ophthalmic lens of claim 53, wherein said second optical power is positive to allow myopic peripheral defocus during distance viewing through said clear first opening.
56. 40. The ophthalmic lens of claim 39, wherein the first opening is approximately centered on the lens optical axis.
57. 57. The ophthalmic lens of claim 56, wherein the second opening is offset from the lens optical axis.
58. 40. The ophthalmic lens of claim 39, wherein the first opening is clear.
59. 59. The ophthalmic lens of claim 58, wherein the second opening is clear.
60. 40. The ophthalmic lens of claim 39, wherein the plurality of scattering centers comprises at least one light-scattering feature selected from the group consisting of depressions on the surface of the ophthalmic lens, protrusions on the surface of the ophthalmic lens, and inclusions within the lens material.
61. 40. The ophthalmic lens of claim 39, wherein the light-scattering region comprises a plurality of lenslets having one or more refractive powers different from a base refractive power of the ophthalmic lens.
62. 40. The ophthalmic lens of claim 39, wherein the first aperture, the second aperture, and the transparent neck form a compound aperture surrounded by the light scattering region.
63. An ophthalmic lens, a lens material having two curved surfaces facing each other; a contrast reduction region comprising a plurality of scattering centers and one or more lenslets, wherein the scattering centers scatter light incident on the Ophthalmic Lens within the contrast reduction region, the lenslets defocus a portion of a wavefront that would be focused onto the user's retina by the Ophthalmic Lens, and the contrast reduction region reduces image contrast for a user of the Ophthalmic Lens; an opening in the contrast reduction region; Equipped with An ophthalmic lens, wherein the contrast reduction region reduces the contrast of an image formed through the contrast reduction region compared to an image formed through the aperture by the scattering centers and the lenslets within the contrast reduction region.
64. 64. The ophthalmic lens of claim 63, wherein the lenslet has a refractive power different from the base refractive power of the ophthalmic lens.
65. 64. An ophthalmic lens according to claim 63, wherein the refractive power of the lenslets is positive to allow myopic peripheral defocus during distance viewing through said aperture.
66. 64. The ophthalmic lens of claim 63, wherein at least some of the lenslets are concentrically arranged around the periphery of the opening.
67. 67. The ophthalmic lens of any one of claims 1 to 66, wherein the plurality of scattering centers comprises at least one light-scattering feature selected from the group consisting of depressions on the surface of the ophthalmic lens, protrusions on the surface of the ophthalmic lens, and inclusions within the lens material.
68. An ophthalmic lens according to any one of claims 1 to 67, wherein image contrast is reduced by 40% or more compared to an image formed through a transparent portion of the ophthalmic lens.
69. 36. The ophthalmic lens of claim 35, wherein the image contrast is reduced by 50% to 55%.
70. 70. An ophthalmic lens according to any one of claims 1 to 69, wherein the separation of the transparent and light scattering regions of the ophthalmic lens is blended by a gradual change in scattering density / optical power.
71. An ophthalmic lens according to any one of claims 1 to 70, wherein the ophthalmic lens has a refractive power.
72. An ophthalmic lens according to any one of claims 1 to 71, wherein the ophthalmic lens is a single vision lens.
73. An ophthalmic lens according to any one of claims 1 to 72, wherein the ophthalmic lens is a multifocal lens.
74. 74. An ophthalmic lens according to claim 73, wherein the multifocal lens is a progressive lens or a freeform lens.
75. 74. The ophthalmic lens of claim 73, wherein the multifocal lens is a bifocal lens.
76. 74. The ophthalmic lens of claim 73, wherein the ophthalmic lens has a region at the lens axis having a first refractive power and a region having a second refractive power different from the first refractive power, and at least one of the first opening and the second opening overlaps both regions.
77. 77. The ophthalmic lens of claim 76, wherein the first refractive power is selected to correct the user's refractive error for distance vision.
78. 77. The ophthalmic lens of claim 76, wherein the second refractive power is selected to correct a user's refractive error for near vision or to provide magnification to assist in near vision tasks.
79. An ophthalmic lens, a lens body having two curved surfaces facing each other; a contrast reduction region including a scattering center and a plurality of lenslets, the scattering centers being sized and shaped to scatter light incident on the Ophthalmic Lens within the contrast reduction region, the lenslets causing defocusing of a portion of a wavefront that would be focused onto the user's retina by the Ophthalmic Lens, and the contrast reduction region reducing the contrast of an image to a user of the Ophthalmic Lens; An ophthalmic lens comprising:
80. 80. The ophthalmic lens of claim 79, wherein the scattering center is located on the first curved surface.
81. 80. The ophthalmic lens of claim 79, wherein the plurality of lenslets are disposed on a first curved surface.
82. 80. The ophthalmic lens of claim 79, wherein the scattering centers are located between adjacent lenslets within the contrast reduction region.
83. 80. The ophthalmic lens of claim 79, wherein the contrast-reducing region reduces image contrast to the user by 40% or more.
84. 84. An ophthalmic lens according to claim 83, wherein the contrast-reducing region reduces the contrast of the image to the user by between 50% and 55%.
85. 84. The ophthalmic lens of claim 83, wherein the scattering centres have dimensions in the range of 0.01 mm to 1 mm.
86. 84. The ophthalmic lens of claim 83, further comprising at least one opening within said contrast-reduction region, said opening being free of said scattering centers and said lenslets.
87. An ophthalmic lens, a lens body having two curved surfaces facing each other; a light scattering region surrounding the center of the ophthalmic lens; Equipped with an aperture located away from the center of the lens, the aperture being transparent or having a reduced scattering density or scattering power compared to the light scattering region; An ophthalmic lens, wherein the contrast of an image formed through said light scattering region is reduced compared to an image formed through said aperture.
88. 88. The ophthalmic lens of claim 87, wherein the center of the lens corresponds to the far vision axis of the lens.
89. 88. The ophthalmic lens of claim 87, wherein the light scattering region reduces image contrast to a user of the ophthalmic lens by 40% or more.
90. 90. The ophthalmic lens of claim 89, wherein the light scattering region reduces image contrast for the user by 50% to 55%.
91. 88. An ophthalmic lens according to claim 87, wherein the size of said scattering centre is in the range of 0.01 mm to 1 mm.
92. 88. The ophthalmic lens of claim 87, wherein the opening is surrounded by the light scattering region.
93. A pair of spectacles comprising an ophthalmic lens according to any one of claims 1 to 92.
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