Diffractive eye lenses

A diffractive ophthalmic lens with a high percentage of main subzones and optimized optical path length differences addresses halo and chromatic aberration issues, enhancing visual clarity and contrast.

JP7738000B2Active Publication Date: 2025-09-11CARL ZEISS MEDITEC AG
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Patent Information

Application Number
JP2022548209
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-02-13
Filing Date
2021-02-08
Publication Date
2025-09-11
Estimated Expiration
2041-02-08

AI Technical Summary

Technical Problem

Diffractive ophthalmic lenses with multifocal capabilities suffer from significant halo-like stray light and reduced contrast sensitivity due to longitudinal chromatic aberration, particularly in multifocal lenses using MOD optical units with phase shifts, which amplify the eye's natural chromatic aberration.

Method used

Designing a diffractive ophthalmic lens with a diffractive optical structure that ensures a high percentage of main subzones occupy at least 94% of the diffractive zones, minimizing diffraction efficiency in negative orders and optimizing optical path length differences to reduce secondary halos and chromatic aberration.

Benefits of technology

The lens effectively reduces secondary halos and improves visual properties by compensating for longitudinal chromatic aberration, maintaining clear imaging and contrast sensitivity across different focal distances.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a diffractive ophthalmic lens (1) comprising an anterior surface (10), a posterior surface (15), and an optical principal axis (A), wherein the anterior surface (10) and / or the posterior surface (15) have a spherical, aspherical, sphero-toric, or asphero-toric basic shape, and the anterior surface (10) and / or the posterior surface (15) have a diffractive optical structure, which includes a first lens region (30) having a plurality of first annular diffractive zones (32), each having a main subzone (34) and a phase subzone (36), centered on the optical principal axis (A) of the ophthalmic lens (1). The object of the present invention is to provide a diffractive ophthalmic lens that enables color correction while simultaneously improving the visual properties of the ophthalmic lens by reducing halo. This object is achieved by a diffractive ophthalmic lens in which the diffractive optical structure in the first lens region (30) is designed such that at the design wavelength there is significant diffraction efficiency for phase deviations between the first main sub-zones (34) of two or more wavelengths, and the ratio of main sub-zones (34) to diffractive zones (32) is at least 94% (particularly at least 95%), averaged over all diffractive zones (32) for the first lens region (30).
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Description

[Technical Field]

[0001] The present invention relates to a diffractive ophthalmic lens having a front surface, a rear surface, and a main optical axis, wherein the front and / or rear surface has a spherical, aspherical, spherical-toroidal, aspherical-toroidal, or free-form basic shape, and the front and / or rear surface has a diffractive optical structure, the diffractive optical structure including a first lens region having a plurality of first ring-shaped diffractive zones around the main optical axis of the ophthalmic lens, each diffractive zone having a main sub-zone and a phase sub-zone. [Background technology]

[0002] The use of diffractive structures to obtain refractive power in ophthalmic lenses has been established for many years and is implemented in commercial products. This is particularly true for multifocal ophthalmic lenses, or ophthalmic lenses that provide extended depth of focus, so-called EDOF lenses. Bifocal ophthalmic lenses generally have two main refractive powers, allowing for sharp vision at distance (a distance focus for distance vision) and at reading distance (a near focus for close vision). For example, multifocal ophthalmic lenses with three or more main refractive powers allow for additional sharp vision at intermediate distances (intermediate vision). Bifocal or trifocal ophthalmic lenses are realized, for example, by diffractive structures that operate with a combination of different diffraction orders.

[0003] A multifocal lens with refractive and diffractive powers is known from US Pat. No. 5,629,499. The lens disclosed therein has annular or ring-shaped zones, which are in each case subdivided into primary and phase subzones. The system of primary subzones constitutes a diffractive lens, which in this prior art has two primary or main refractive powers. The refractive powers in the phase subzones are selected so that the average refractive power of the entire zone or lens corresponds to one of the two primary diffractive powers. The diffractive lens described is a bifocal lens.

[0004] Patent Document 1 further describes a trifocal lens in which the mean refractive power is equal to the central refractive power (intermediate distance), the maximum principal refractive power is provided by a +1st order diffractive power (reading distance, near vision), and the minimum principal refractive power is provided by a -1st order diffractive power (distance, far vision). Such trifocal lenses may have longitudinal chromatic aberration, also known as axial chromatic aberration, at both the minimum and maximum of the three principal or main refractive powers. When such lenses are intended for use as ophthalmic lenses (e.g., contact lenses, intraocular lenses), this longitudinal chromatic aberration is particularly detrimental with respect to the minimum principal refractive power, which is used for viewing distant objects. The longitudinal chromatic aberration associated with -1st order diffraction is particularly troublesome for such uses because it further amplifies the eye's natural longitudinal chromatic aberration.

[0005] To avoid the amplification of longitudinal chromatic aberration, multifocal lenses are used that operate on a combination of zeroth, first, and optionally second-order diffraction. In these lenses, the zeroth diffraction order is used for distance focus, while positive diffraction orders (n>0) generate add power for near and / or intermediate vision. The zeroth diffraction order has the property of not introducing diffractive chromatic aberration into the ocular optical system. This means that distance vision is impaired by pure refractive chromatic aberrations due to material dispersion of the optical media in the eye and (artificial) ophthalmic lenses. These chromatic aberrations can reduce the patient's perceptible contrast in polychromatic illumination. To reduce this contrast loss, multifocal diffractive lenses have been developed that allow correction of longitudinal chromatic aberration even at distance focus. For example, Patent Document 2 discloses a diffractive lens that operates on higher diffraction orders (n>0), such as +1st diffraction order for distance, +2nd diffraction order for intermediate range, and +3rd diffraction order for near vision. These are known as multi-order phase plates or MOD (Multi Order Diffraction) optical units. The use of higher diffraction orders allows for the individual refractive indices upstream and downstream of the interface between the annular diffractive zones of the MOD optical unit. More than one wavelength This is made possible by a phase shift (hereinafter also referred to as a path length difference or optical path length difference).

[0006] however, More than one wavelength It has been found that multifocal diffractive lenses embodied as MOD optical units with phase shifts generate significantly more "halo-like" stray light than multifocal lenses that achieve long-distance focus using the zeroth diffraction order. In this case, halo should be understood to mean the halation that appears on the overexposed background around a (point-like) light source. In the radial direction, the unavoidable primary halo, resulting from the overlap of the circles of confusion of the diffraction orders used, is flanked by a secondary halo (also called "deep halo" or "glow"). The secondary halo can lead to visual impairments in users of the described diffractive lenses, for example, reducing contrast sensitivity. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] European Patent No. 1194797 [Patent Document 2] International Publication No. 2014 / 033543 Summary of the Invention [Problem to be solved by the invention]

[0008] It is therefore an object of the present invention to characterize a diffractive ophthalmic lens that allows for color correction while at the same time improving the visual properties of the ophthalmic lens by reducing halo. [Means for solving the problem]

[0009] According to the invention, this object is achieved by the features of the independent claims. Preferred developments and embodiments are the subject of the dependent claims. A first aspect of the present invention relates to a diffractive ophthalmic lens having a front surface, a rear surface, and a main optical axis. In this case, the front and / or rear surface has a spherical, aspherical, spherical-toroidal, aspherical-toroidal, or free-form basic shape. In this case, the free-form surface corresponds to a free-form surface described, for example, by a polynomial or piecewise by a polynomial. Furthermore, the front and / or rear surface has a diffractive optical structure, which includes a first lens region having a plurality of first ring-shaped diffractive zones around the main optical axis of the ophthalmic lens, each diffractive zone having a main subzone and a phase subzone. The diffractive ophthalmic lens according to the present invention is characterized in that the diffractive optical structure in the first lens region is configured to produce a diffractive optical structure at a design wavelength. , th Between the main subzones of 1 More than one wavelength The diffractive optical structure is characterized in that it is designed so that there is a significant diffraction efficiency with respect to the optical path length difference. In the first lens region, the diffractive optical structure is further designed so that, on average across all diffractive zones, the primary subzones occupy at least 94% (particularly at least 95%) of the diffractive zones for the first lens region.

[0010] The front and rear surfaces of the diffractive ophthalmic lens according to the present invention are responsible for the optical imaging properties. Light can pass through the front surface of the ophthalmic lens and exit it again from the rear surface. The main optical axis is perpendicular to an imaginary plane located between the front and rear surfaces of the ophthalmic lens.

[0011] A diffractive optical structure should be understood to mean an interface between two media of different refractive indices (e.g., lens material and aqueous humor) that is designed to diffract and actively interfere light as it passes through the interface. Typically, the surfaces have edges, and as a result, at these edges, there are discontinuities in the slope of the interface (within manufacturing tolerances and tooling used).

[0012] When considering the refractive power of an interface having a diffractive optical structure for light guided to the zeroth diffraction order, the same refractive power can also be generated by an interface without a diffractive optical structure. Such a (virtual) interface without a diffractive optical structure is called a basic shape. The basic shape can correspond to a virtual connection of the maxima (in the height profile) of the diffractive optical structure.

[0013] If the base shape has a boundary surface without a diffractive optical structure, the base shape is the shape of the surface itself. Therefore, the basic shapes of the front and rear surfaces determine the refractive power that the diffractive ophthalmic lens exhibits for light that is irradiated in the zeroth diffraction order of the diffractive optical structure.

[0014] The surfaces (front and rear surfaces) of an ophthalmic lens having a diffractive optical structure can have one of the basic shapes described above, so that the diffractive optical structure is superimposed on the basic shape. Light irradiated with a diffraction order different from zero (n≠0) experiences a refractive power that deviates from the refractive power of the basic shape, as described below. This refractive power (produced by the diffractive optical structure) is typically called an add power, also called an "add power."

[0015] The diffractive optical structure has a first lens region including a plurality of first diffractive zones arranged in a ring shape around the primary optical axis of the ophthalmic lens. In this configuration, the lens region should be understood to mean a circular region or a circular ring-shaped (annular) region of the lens. The lens region may have a plurality of discontinuous circular regions or circular ring-shaped regions or diffractive zones of the lens.

[0016] The plurality of ring-shaped first diffractive zones of the first lens region may all be formed on the anterior surface or all be formed on the posterior surface, but the plurality of first diffractive zones may be disposed on both the anterior and posterior surfaces.

[0017] The first lens region has a plurality of first diffractive zones. This means that there are at least two first diffractive zones. When light of wavelength λ is incident on at least two diffractive zones, optical interference can occur between these diffractive zones. In this case, positive interference can occur when a phase shift of a multiple of wavelength λ occurs between the diffractive zones. These are diffractive orders. Positive diffractive orders exist when the optical path length difference between the outermost diffractive zone and the innermost diffractive zone is positive. The ring-shaped arrangement of the diffractive zones around the main optical axis allows individual refractive powers to be assigned to various diffractive orders. The area or size of the multiple diffractive zones determines the distance between the diffractive orders, and therefore the distance between the refractive powers of the lens. In this case, these distances increase as the area of ​​the multiple diffractive zones decreases. The diffractive zones generate additional refractive power in addition to the refractive power of the basic shape of the diffractive lens.

[0018] The main subzones (or echelette zones) of each first diffractive zone typically have a curvature (the second spatial derivative of the boundary surface that is different from zero). The curvature is preferably constant, and the main subzones have, for example, a spherical shape. The curvature may also vary spatially, for example, the main subzones have an aspherical shape. The main subzones always have a continuous (stable) curvature. The term phase subzone includes regions of the diffractive zone that deviate from the continuous (stable) curvature profile of the main subzone, including the effect of the tool on the topography. In the height profile, the main subzones and the phase subzones are continuously connected to each other. However, by definition, the curvature is discontinuous at the transition between the main subzone and the phase subzone. If there is an edge in the height profile, the gradient may likewise be discontinuous at the transition. This may occur in particular at the transition from the phase subzone of one diffractive zone to the main subzone of another diffractive zone.

[0019] The purpose of the phase subzone is to generate an optical path length difference between two main subzones. This means that the phase subzone and the main subzone are designed such that an optical path length difference t occurs between the main subzones of two adjacent diffraction zones. As a result, the optical path length difference is associated with the profile depth of the phase subzone (range in the direction of the main optical axis) and the refractive indices upstream and downstream of the boundary surface. The optical path length difference t determines the relative maximum intensity (or the assigned additional refractive power) at each individual diffraction order. For example, when the phase shift is half a wavelength (t = λ / 2), for a regular zone plate profile, for the 0th order diffraction and the +1st order diffraction, (2 / π) 2 = 40.5% of the maximum intensity occurs. In this case, 100% corresponds to the maximum intensity of a diffraction-limited "normal" refractive lens (same refractive power, same diameter). As an example, for a normal zone plate profile, the refractive power of the 0th order diffraction is dominant for a phase shift whose absolute value is less than half of the wavelength λ. When the optical path length difference is greater than half a wavelength and less than three times half a wavelength (λ / 2 < t < λ·3 / 2), the refractive power of the +1st order diffraction has the maximum relative intensity. The design of the main subzone and the phase subzone, and the accompanying optical path length difference between adjacent main subzones determine how much light is irradiated at which diffraction order, and thus, what intensity the additional refractive powers have.

[0020] According to the present invention, the diffractive optical structure of the first lens region, with respect to the design wavelength, between the first main subzones More than one wavelength λThe diffractive ophthalmic lens is designed so that there is significant diffraction efficiency relative to the optical path length difference. In this case, design wavelength should be understood to mean the wavelength of light for which the diffractive ophthalmic lens is intended to be optimized, so that for the design wavelength, it can work with the eye to generate a clear image on the retina. Significant diffraction efficiency exists when at least 8% of the maximum intensity of a diffraction-limited "normal" refractive lens, preferably at least 10% of the maximum intensity, particularly preferably at least 15% of the maximum intensity, is obtained for the relevant diffraction order. Therefore, according to the present invention, the diffractive ophthalmic lens ultimately has significant intensity for the refractive power corresponding to the first diffraction order or higher. This can advantageously compensate for longitudinal chromatic aberration.

[0021] As an example, the size or area of ​​a diffractive zone can be determined by projecting the diffractive zone onto a plane perpendicular to the primary optical axis. The area of ​​the diffractive zone in this projection plane corresponds to the area or size of the diffractive zone. The areas of the primary and phase subzones can be similarly defined. Zone size is a comprehensive term for the sizes of the diffractive zone, primary subzone, and phase subzone. For an annular zone (i.e., diffractive zone, primary subzone, or phase subzone), the area A zone is derived from the difference between the squares of the maximum and minimum radii of the zone multiplied by π.

[0022] A Zone =π (r max,Zone 2 -r min,Zone 2 ) Therefore, A BZ,i =π (r max,BZ,i 2 -r min,BZ,i 2 ), A HUZ,i =π (r max,HUZ,i 2 -r min,HUZ,i 2 ), A PUZ,i =π (r max,PUZ,i 2 -r min,PUZ,i 2) applies to the i-th diffractive zone (BZ), main subzone (HUZ), and phase subzone (PUZ), respectively, where i=1, 2, ...N, where N is the number of zones in the lens region and N≧2.

[0023] For a circular zone, the minimum radius corresponds to a value of zero in the above formula. The percentage of the area of ​​the first diffractive zone occupied by the primary subzone can be averaged across all first diffractive zones in the first lens region. For example, the average can be a mean value of the zone size relationship.

[0024]

number

[0025] Optical simulations have shown a causal relationship between the intensity of the secondary halo ("deep halo") and the percentage of the area of ​​the diffractive zone occupied by the primary subzone. The proportion of light that can be assigned to each refractive power was calculated. To do this, an algorithm was used to calculate the diffraction efficiency for any defocus position according to the Fraunhofer diffraction integral. It was found that the numerically large negative orders of diffraction in the diffractive ophthalmic lens can be assigned to the Fourier transform of the negative blaze angle and phase subzone. As a result, the refractive power can be assigned to the negative orders of diffraction. Surprisingly, these (negative) refractive powers are comparable in magnitude to the (positive) refractive power contribution of the eye implanted with the diffractive ophthalmic lens (also known as the "implanted eye"). As a result, the negative add power of extraneous light is largely compensated for by the corneal power and the refractive power of the diffractive ophthalmic lens at the far focus. This results in the formation of a relatively large, low-intensity, unfocused circle of confusion on the retina. Due to the logarithmic retinal luminance sensitivity, the circle of confusion is perceived as a secondary halo. Surprisingly, the low intensity in the high negative diffraction orders is the cause of this disturbing effect. By reducing the proportion of the area of ​​the diffraction zone occupied by the phase subzones, the efficiency of diffracting the high negative orders is reduced. Therefore, the first lens region is designed in accordance with the present invention so that, on average across all diffraction zones, the main subzones occupy at least 94% (in particular at least 95%) of the diffraction zone.

[0026] The manufacturing method for a diffractive ophthalmic lens needs to be adapted to obtain such a value for the area percentage of the primary subzone (or phase subzone) that occupies the diffractive zone. In particular, the tools used need to be selected accordingly. Typically, the diffractive optical structure of a diffractive ophthalmic lens is manufactured by turning. In this case, a diamond tool moves relative to a rotating diffractive ophthalmic lens blank, and in the process, material is removed from the ophthalmic lens blank in order to manufacture the ophthalmic lens. The larger the radius of the diamond tool, the more material can be removed from the ophthalmic lens at one time (or per rotation of the ophthalmic lens blank). The smaller the radius of the diamond tool, the less material can be removed from the ophthalmic lens at one time (or per rotation of the ophthalmic lens blank). This means that more rotations are required to manufacture a diffractive ophthalmic lens using a tool with a small radius compared to using a tool with a large radius. However, using a diamond tool with a large tool radius sets an upper limit on the area percentage occupied by the primary subzone, and this limit arises from the geometric shape, topography, or height profile of the diffractive zone (or the primary subzone and phase subzone). Since the phase subzone comprises an area of ​​the diffractive zone that deviates from the continuous (constant) curvature profile of the main subzone, in this case the influence on the tool topography is also included. Therefore, the choice of tool radius is related to the size of the phase subzone.

[0027] Optical simulations show that increasing the proportion of the primary subzones occupying the diffractive zone from 89% to 94% reduces the integrated diffraction efficiency of the negative diffraction orders by more than 50%, thus reducing the secondary halo.

[0028] Therefore, the diffractive ophthalmic lens according to the present invention allows for improved visual properties of the ophthalmic lens by reducing halo. According to a particularly advantageous configuration of the diffractive ophthalmic lens, the diffractive structure includes at least one second lens region having a second ring-shaped diffractive zone around the main optical axis of the ophthalmic lens. This may be a single second diffractive zone or multiple second diffractive zones. Each second diffractive zone has an additional main subzone and an additional phase subzone. Furthermore, on average across all second diffractive zones, the additional main subzone occupies at least 94% (particularly at least 95%) of the second diffractive zone relative to the second lens region. Finally, the first lens region and the second lens region differ from each other in at least one optical parameter of the optical path length difference and the zone size.

[0029] The second lens region (or additional, distinct lens region) may be located on the same side or on the opposite side of the diffractive ophthalmic lens as the first lens region. Furthermore, both lens regions (or additional, distinct lens regions) may in any case be located on both sides of the ophthalmic lens.

[0030] The proportion of additional primary sub-zones occupying at least 94% of the second diffractive zones on average across all second diffractive zones ensures that the visual properties of the ophthalmic lens are improved by reducing halo in at least one second lens region as well.

[0031] The optical parameters of the lens regions mentioned above affect the diffraction efficiency and add power, and therefore the use of two or more lens regions advantageously allows the diffractive ophthalmic lens to generate additional focal points.

[0032] In an advantageous embodiment of the diffractive ophthalmic lens having at least two lens regions, the first lens region has at least two first diffractive zones, and at least one second diffractive zone of the second lens region is arranged between the at least two first diffractive zones when viewed in a radial direction about the main optical axis, in particular, the first diffractive zones and the second diffractive zones are arranged alternately when viewed in a radial direction.

[0033] When the diffractive ophthalmic lens has three or more lens regions, at least one diffractive zone of each additional lens region can be located radially between at least two of the first diffractive zones.

[0034] The described configuration advantageously ensures that the refractive power of two (or more) lens regions can be obtained for variable pupil diameters of the eye. For example, if the pupil contracts in bright ambient light and, as a result, has a small diameter, the diffractive zones of all lens regions can still be located within this diameter. The same applies to dark ambient light, where the pupil of the eye is large. In this way, the refractive power of the diffractive ophthalmic lens is advantageously maintained regardless of the eye's adaptation.

[0035] In an advantageous embodiment of the diffractive ophthalmic lens, the individual main subzones occupy at least 94% of the individual diffractive zones for all first diffractive zones. If the diffractive ophthalmic lens has a second lens region, the individual main subzones additionally or alternatively occupy at least 94% of the individual diffractive zones for all second diffractive zones. In other words, this means that for all i=1, 2, ...N of the N first and / or second diffractive zones of the first and / or second lens region, the components A HUZ,i / A BZ,i ≧94%. Preferably, the individual ratios are in each case at least 95%.

[0036] A diffractive ophthalmic lens designed in this way further reduces the diffraction of light into negative orders of diffraction, thereby further reducing secondary halos. According to a particularly advantageous embodiment of the diffractive ophthalmic lens, the diffractive optical structure is designed in such a way that, in the first lens region and / or the second lens region, there is no significant diffraction efficiency in negative orders of diffraction for the design wavelength. In particular, there is no significant diffraction efficiency in orders of diffraction below zero. This means that there is no significant diffraction efficiency in all diffraction orders below the +1 order of diffraction.

[0037] Therefore, since the intensity of the zeroth diffraction order is small, the diffractive ophthalmic lens is advantageously a pure diffractive lens. In this case, the term "no significant diffraction efficiency" or "insignificant diffraction efficiency" should be understood to mean that at most 8% of the maximum intensity of a diffraction-limited "normal" refractive lens, preferably at most 5% of the maximum intensity, particularly preferably 1% of the maximum intensity, is obtained for the relevant diffraction order. Between the significant diffraction efficiency as defined further above and the insignificant diffraction efficiency as defined herein, there may be an intermediate range in which the diffraction efficiency is neither significant nor insignificant.

[0038] As a result of the characteristic that diffractive ophthalmic lenses have no significant diffraction efficiency for negative or zero-order diffraction, compensation can reduce the overall longitudinal chromatic aberration of the combination of the ophthalmic lens, cornea, and refractive medium. The primary refractive powers, with diffraction efficiencies greater than the insignificant diffraction efficiency, occur in diffraction orders zero and above. As a result, it is ensured that the longitudinal chromatic aberration caused by negative-order diffraction does not amplify the eye's natural longitudinal chromatic aberration, and no perceptible reduction in contrast occurs in polychromatic illumination. Rather, only the +1st order of diffraction, for example, may have significant diffraction efficiency (in addition to higher orders of diffraction). In this way, diffractive ophthalmic lenses enable the correction of chromatic aberration in the eye, since their longitudinal chromatic aberration in positive-order diffraction can reduce or completely compensate for the eye's natural longitudinal chromatic aberration. In this way, the reduction in contrast perceived by the patient in polychromatic illumination can be reduced.

[0039] In an advantageous embodiment, the diffractive ophthalmic lens is designed such that there is significant diffraction efficiency for at least two orders of diffraction (particularly at least three orders of diffraction) at the design wavelength.

[0040] In this way, it is possible to realize bifocal, trifocal (or multifocal) ophthalmic lenses. Furthermore, it is particularly advantageous if there is no significant diffraction efficiency for negative diffraction orders or diffraction orders below zero. In this case, this relates to bifocal (trifocal, multifocal) ophthalmic lenses that simultaneously enable reduction of longitudinal chromatic aberration. In this case, the far focus can be assigned to the lowest diffraction order with significant diffraction efficiency, for example, the +1 diffraction order.

[0041] Therefore, the diffractive ophthalmic lens according to the present invention can reduce halo while simultaneously providing multiple focal positions as a bifocal or trifocal multifocal lens. According to a further particularly advantageous configuration, the diffractive ophthalmic lens is distinguished by a maximum diffraction efficiency of less than 0.3% (in particular less than 0.15%) in a defocus range, where the defocus range is at least -45 dpt to -15 dpt (in particular at least -60 dpt to -10 dpt) in relation to the refractive power of the far focus.

[0042] The smallest refractive power with significant diffraction efficiency can be assigned to the far focus. Light guided with a lower add power will not be imaged sharply on the retina, but will be imaged in a defocused form. This range of refractive powers is called the defocus range. As an example, if the far focus has an add power of +2 dpt (relative to the power of the basic shape of the diffractive ophthalmic lens), the defocus range will range from an add power of at least -43 dpt to an add power of -13 dpt (in particular, from an add power of at least -58 dpt to an add power of -8 dpt).

[0043] In particular, secondary halos are caused by light being directed towards the retina with such a (low) refractive power that it just compensates for the refractive power of the implanted eye, the positive contribution of the implanted eye (in particular the cornea) being of the same order of magnitude as the negative contribution due to the negative refractive power (due to the diffractive ophthalmic lens).

[0044] To reduce or avoid the secondary halo, the diffraction efficiency in the defocus range must not exceed a limit, which may be the maximum diffraction efficiency mentioned above that occurs in the defocus range.

[0045] According to a further particularly advantageous configuration, the diffractive ophthalmic lens is distinguished by the fact that the integrated diffraction efficiency is less than 6% (in particular less than 2%) over the defocus range, where the defocus range is at least -45 dpt to -15 dpt (in particular at least -60 dpt to -10 dpt) with respect to the refractive power of the far focus. The above-mentioned limit therefore relates the integrated diffraction efficiency over the defocus range to the integrated diffraction efficiency over all occurring add refractive powers.

[0046] According to the present invention, the maximum and integral limits introduced for the defocus range ensure that the secondary halo resulting from the diffractive ophthalmic lens is reduced, even when taking into account the logarithmic retinal luminance sensitivity. It is particularly advantageous that limits for both the maximum and the integral diffraction efficiency are observed within the defocus range for this purpose.

[0047] In a further advantageous embodiment of the diffractive ophthalmic lens, the design wavelength is in the central spectral range of the luminous efficiency function, in particular the design wavelength is between 530 nm and 570 nm, preferably 550 nm or 546 nm.

[0048] Luminous efficiency function represents the sensitivity of the human eye as a function of the wavelength of light. Preferably, photopic luminous efficiency function (daytime vision) is used. Alternatively, mesopic luminous efficiency function (twilight vision) or scotopic luminous efficiency function (night vision) can be used. The central spectral range of luminous efficiency function should be understood to mean the wavelength at which luminance sensitivity is at least 30%, preferably at least 50%, particularly preferably at least 70% of the maximum luminance sensitivity.

[0049] Design wavelengths between 530 nm and 570 nm are particularly advantageous in this case, since the luminance sensitivity in daylight exceeds 80%. Values ​​of over 99% and 98% are achieved for design wavelengths of 550 nm and 546 nm, respectively. Therefore, the use of design wavelengths selected in this way is particularly suitable for daylight.

[0050] Optimization of a diffractive ophthalmic lens for a design wavelength corresponding to the above specifications advantageously leads to the refractive power (or refractive power in the case of bifocal or multifocal ophthalmic lenses) being optimized according to the high spectral luminance sensitivity of the eye. Furthermore, secondary halos are reduced particularly efficiently for wavelengths to which the human eye is sensitive. This further improves the visual properties of the ophthalmic lens under everyday environmental conditions.

[0051] According to a further advantageous embodiment of the diffractive ophthalmic lens, all diffractive zones of the lens region have the same zone size. Additionally or alternatively, all diffractive zones of the lens region have the same optical path length difference.

[0052] Thus, when an ophthalmic lens includes two or more lens regions, the diffractive zones of each lens region have the same zone size or the same optical path length difference, however, the zone size or optical path length difference of a first lens region can deviate from the zone size or optical path length difference of additional lens regions.

[0053] In a particularly advantageous embodiment, the diffractive ophthalmic lens is made of a biocompatible material and is suitable for implantation into the eye. The use of biocompatible materials ensures that the diffractive ophthalmic lens will not cause ocular rejection when implanted in the eye.

[0054] According to further embodiments, the diffractive ophthalmic lens is a contact lens, an intraocular lens, or an intracorneal lens. A second aspect of the present invention relates to a method for manufacturing a diffractive ophthalmic lens according to any one of the above-mentioned embodiments. As already explained above, the size of the tool used in manufacturing the diffractive ophthalmic lens affects the proportion of the area that the main subzones occupy within the diffractive zone. If the tool radius is too large, it will not be possible to manufacture the diffractive ophthalmic lens with the required proportion p of 94% to 95%. When viewed in the radial direction around the main optical axis, for a phase subzone (PUZ) of the ith diffractive zone (BZ) adjacent to a main subzone (HUZ), the width of the phase subzone is δ i =r max,PUZ,i -r min,PUZ,i =r max,PUZ,i -r max,HUZ,i The width of the ith diffraction zone is given by Δ i =r max,PUZ,i -r min,HUZ,i For the required fraction p of the area of ​​the ith diffractive zone, the following applies:

[0055]

number

[0056]

number

[0057]

number

[0058] Phase subzone δ i The width of i typically does not exceed the radius of the tool used to generate the i-th diffraction zone. A method according to the present invention for manufacturing a diffractive ophthalmic lens includes the method step of preparing an ophthalmic lens blank. Furthermore, the method includes the step of removing material from the ophthalmic lens blank using a tool to create a diffractive zone. Turning is typically used for the processing. In this case, the tool moves relative to the ophthalmic lens blank, removing material from the ophthalmic lens blank in the process. Typically, the ophthalmic lens blank rotates during the process. According to the present invention, the tool used has a radius corresponding to a maximum of 6%, preferably a maximum of 5%, of the width of the diffractive zone.

[0059] This ensures that the tool used (intermittently to create the diffractive zone) is suitable for producing the required 94% (or 95%) fraction of the area of ​​the diffractive zone occupied by the primary subzone. Tools of other radii can be used to produce other portions of the diffractive ophthalmic lens. Thus, tools can be changed during the production of the diffractive ophthalmic lens.

[0060] Preferably, the material to create each diffractive zone is removed using a tool that meets the requirements for the maximum radius of the corresponding diffractive zone. The absolute width of the phase subzones decreases as the radial distance between the diffractive zones and the main optical axis increases. To enable the diffractive structures of the diffractive ophthalmic lens to be manufactured using only one tool, the material for creating all of the diffractive zones is preferably removed using a tool having a radius corresponding to no more than 6% (or 5%) of the width of the outermost diffractive zone when viewed radially about the main optical axis (A).

[0061] It will be understood that the features mentioned above and those to be described below can be used not only in the particular combination but also in other combinations or alone without departing from the scope of the invention. The invention will be explained in more detail below, for example, with reference to the accompanying drawings, in which also the essential features of the invention are disclosed. [Brief explanation of the drawings]

[0062] [Figure 1a] 1 shows a perspective view of a first exemplary embodiment of a diffractive ophthalmic lens according to the present invention. [Figure 1b] 1 shows a perspective view of a further exemplary embodiment of a diffractive ophthalmic lens according to the present invention. [Figure 2] 1 shows a schematic diagram of a halo of a diffractive ophthalmic lens. [Figure 3] 1 shows a schematic diagram of a portion of a lens cross section of a diffractive ophthalmic lens according to a further exemplary embodiment; [Figure 4] 1 shows a schematic diagram of a portion of a lens cross section of a diffractive ophthalmic lens according to a further exemplary embodiment having two lens regions. [Figures 5a-5c] 1 shows a schematic diagram of a portion of a lens cross section of a diffractive ophthalmic lens, taking into account different sizes of tools used in its manufacture. [Figure 6] 1 shows a diagram of simulated radial curves of the phase profile of a trifocal diffractive ophthalmic lens. [Figure 7] 1 shows a diagram of simulated diffraction efficiency as a function of add power for a range of uses for a trifocal diffractive ophthalmic lens. [Figure 8a] 1 shows a diagram of simulated diffraction efficiency as a function of add power for use ranges and defocus ranges of a trifocal diffractive ophthalmic lens according to the prior art. [Figure 8b] 1 shows diagrams of simulated diffraction efficiency as a function of add power for use ranges and defocus ranges of a trifocal diffractive ophthalmic lens according to the present invention. [Figure 8c]1 shows diagrams of simulated diffraction efficiency as a function of add power for use ranges and defocus ranges of a further trifocal diffractive ophthalmic lens according to the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0063] FIG. 1a shows a perspective view of a first exemplary embodiment of a diffractive ophthalmic lens 1 according to the present invention in the form of an intraocular lens (IOL). The ophthalmic lens has an anterior surface 10, a posterior surface 15, and haptics 20. The ophthalmic lens 1 is held in the eye by the haptics 20. The ophthalmic lens 1 is foldable and can be introduced into the eye through a small incision. The anterior surface 10 and the posterior surface 15 are responsible for the optical imaging properties of the ophthalmic lens 1. A main optical axis A is perpendicular to an imaginary plane located between the anterior surface 10 and the posterior surface 15 of the ophthalmic lens 1. When the ophthalmic lens 1 is implanted in the eye, the exemplary anterior surface 10 faces the cornea, and the posterior surface 15 faces away from the cornea.

[0064] Figure 1b shows a perspective view of a further exemplary embodiment of a diffractive ophthalmic lens 1 formed as an intraocular lens, said lens differing from the embodiment of Figure 1a in that it has different haptics 20.

[0065] In principle, haptics 20 of different shapes and configurations can also be provided. FIG. 2 shows a schematic diagram of the halo of a diffractive multifocal ophthalmic lens 1. Depicted is the light distribution caused by a point light source on the retina of an eye implanted with a diffractive ophthalmic lens 1. In this case, the point light source is located at a distance, and the ophthalmic lens 1 is designed so that the implanted eye is corrected for distance. The image of the point light source on the retina is assigned to the horizontal and vertical coordinates (0°, 0°). This pixel on the retina is surrounded by a primary halo 60, which, in the schematic diagram, has a diameter of approximately 1° (object angle). The unavoidable primary halo is caused by the simultaneous superposition of the foci of the utilized diffraction orders. In the radial direction (at larger object angles in the horizontal and vertical directions), the primary halo 60 is adjacent to another stray light zone, called the secondary halo 70. The secondary halo 70 is caused by the diffraction of unused, and therefore unwanted, orders of the diffractive ophthalmic lens 1. In the example shown, the secondary halo 70 extends radially to an object angle of slightly more than 2°. Light contributing to the secondary halo 70 may also be diffracted to the location on the retina where the primary halo 60 is located. However, the primary halo 60 is brighter than this light.

[0066] FIG. 3 shows a schematic diagram of a portion of a lens cross section of a diffractive ophthalmic lens 1 according to a further exemplary embodiment. The illustrated cross section includes the main optical axis A and shows a portion of the profile of the anterior surface 10 of the diffractive ophthalmic lens 1. In this case, the ophthalmic lens 1 has a first lens region 30. In the illustrated example, the first lens region 30 includes four diffractive zones 32. These diffractive zones 32 are arranged rotationally symmetrically around the main optical axis A. Each diffractive zone 32 includes a main subzone 34 and a phase subzone 36. In the illustrated example, all of the main subzones 34 have the same curvature. Alternatively, the main subzones may have distinct curvatures. The phase subzones 36 are arranged between the main subzones 34. The curvature of the phase subzone 36 deviates from the curvature of the individual main subzones 34. The transitions between the main subzones 34 and the phase subzones 36 of the diffractive zone 32 have discontinuous curvatures. The purpose of the phase subzones is to create an optical path length difference between the individual main subzones 34 for the design wavelength.

[0067] The size or area of ​​the individual diffractive zones 32, primary subzones 34, and phase subzones 36 appears upon projection onto a plane perpendicular to the primary optical axis A. The plane is plotted as a line bearing reference numeral 55 in FIG. 3 . The radial extent (minimum and maximum radii) of the zones can be read on the projection plane 55 and converted to area. According to the present invention, the percentage of the diffractive zone 32 occupied by the primary subzones 34 is at least 94%. Note that the illustrated percentage of the area of ​​the diffractive zones 32 occupied by the primary subzones 34 is smaller to better define the various zones.

[0068] The basic shape 50 of the anterior surface 10 of the diffractive ophthalmic lens 1 is plotted as a dotted line. In the example shown, the basic shape 50 corresponds to an imaginary connection between the maxima in the height profile of the diffractive optical structure.

[0069] FIG. 4 shows a schematic diagram of a portion of a lens cross section of a diffractive ophthalmic lens according to a further exemplary embodiment, which has two lens regions 30, 40. In this case, the first lens region 30 has two first diffractive zones 32. Each of the first diffractive zones 32 includes a main subzone 34 and a phase subzone 36. The second lens region 40 has two second diffractive zones 42. Each of the second diffractive zones 42 also includes a main subzone 44 and a phase subzone 46. The lens regions 30, 40 are arranged on the anterior surface 10 of the diffractive ophthalmic lens 1. The first diffractive zones 32 and the second diffractive zones 42 are alternately arranged in a radial direction relative to the main optical axis A. In the illustrated example, the lens regions 30, 40 have an optical path length difference. Alternatively or additionally, the two lens regions 30, 40 may have distinct zone sizes, which allows for additional focus positions for the multifocal diffractive ophthalmic lens 1.

[0070] FIG. 5a shows a schematic diagram of a portion of the anterior surface 10 of a diffractive ophthalmic lens 1 in lens cross section, taking into account the diamond tool 90 used in its manufacture. Shown is a portion of the diffractive zone 32 in radial cross section, as in FIG. 3. Again, the diffractive zone 32 includes a primary subzone 34 and a phase subzone 36. The primary subzone 34 has a curvature. The phase subzone 36 includes all areas of the diffractive zone 32 that deviate from the continuous (constant) curvature profile of the primary subzone 34. If the anterior surface 10 were machined using an ideal tool with a negligible tool radius, it would be possible to create a phase subzone 36 with an ideal shape 80, as plotted by the dashed line in FIG. 5a. In that case, as plotted, the ideal shape 80 is not round. If a very small tool were used, the manufacture of the ophthalmic lens 1 would require numerous rotations of the lens blank, so a tool 90 with a finite radius would be used. The profile of the tool 90 is plotted as a dashed line. The tool radius results in the actual shape 85 of the phase subzone 36, which is plotted as a solid line.

[0071] It should be appreciated that a smaller radius of the diamond tool 90 also allows for the production of smaller phase subzones 36. As an example, if the profile depth of the phase subzone to be produced is greater than the width of the phase subzone, the tool radius generally limits how small the width of the phase subzone can be. This is shown in FIG. 5b. The diamond tool 90 used here has a tool radius that is half the size of the diamond tool 90 used in FIG. 5a. In this case, the phase subzones can be significantly smaller than in the example shown in FIG. 5a. If a diamond tool 90 with a smaller tool radius is used, more rotations of the lens blank may be required to produce the diffractive zone.

[0072] Figure 5c shows a schematic diagram of a portion of the anterior surface 10 of a lens cross-section of a further diffractive ophthalmic lens 1. In this example, the phase subzones 36 have exactly the same size as the phase subzones 36 of Figure 5a. However, due to the smaller radius of the diamond tool 90 used here, it is possible for the actual phase subzones 85 to correspond (approximately) to the ideal phase subzones 80 of Figure 5a. It is particularly important to consider the influence of the radius of the diamond tool 90 when manufacturing a diffractive ophthalmic lens 1, since not only the phase shift t produced by the phase subzones 36 but also the shape of the phase subzones 36 influences the diffraction efficiency.

[0073] FIG. 6 shows a diagram of simulated radial curves of the phase profile of a trifocal diffractive ophthalmic lens 1 embodied as an IOL, as produced by a diffractive optical structure. The diagram illustrates the effect of an exemplary embodiment having two lens regions 30, 40 and four diffractive zones 32, 42 arranged rotationally symmetrically about a primary optical axis A. The horizontal axis plots the distance from the primary optical axis A in mm. The first first diffractive zone 32 of the first lens region 30 extends to a radius of approximately 0.75 mm, the first second diffractive zone 42 of the second lens region 40 extends from approximately 0.75 mm to approximately 1.08 mm, and the second first diffractive zone 32 of the first lens region 30 extends from approximately 1.08 mm to approximately 1.32 mm. The second second diffractive zone 42 of the second lens region 40 is adjacent to the second first diffractive zone 32. The simulation was performed for an eye pupil radius of 1.5 mm. The second second diffractive zone 42 extends beyond this radius. The vertical axis plots the phase shift in multiples of the design wavelength λ. At their respective outer edges, the first three diffractive zones 32, 42 produce a phase shift of approximately 1.4λ or approximately 1.2λ. Due to the curvature of the main subzones 34, 44 of the diffractive zones 32, 42, the radial curves of the phase shift also exhibit piecewise curvatures. The sections between the curved portions are assigned to the phase subzones 36, 46. In the illustrated exemplary embodiment, the proportion of the diffractive zones 32, 42 occupied by the main subzones 34, 44 is 94% for all four diffractive zones 32, 42, respectively. The simulation of the size and phase shift of the phase subzones 36, 46 took into account that the profile of the diffractive ophthalmic lens 1 was manufactured using a diamond tool 90 with a tool radius smaller than the width of the second first phase subzone 36.

[0074] FIG. 7 shows a diagram of simulated diffraction efficiency as a function of add power (relative to the refractive power of the basic shape of the diffractive ophthalmic lens) in the use range of the trifocal diffractive ophthalmic lens 1 according to the exemplary embodiment described in FIG. 6. In this case, the use range includes the range of add powers where significant diffraction efficiency exists. In this diagram, the add power is plotted in diopters (dpt) along the horizontal axis. The diffraction efficiency is plotted on the vertical axis, where a value of 1 corresponds to the maximum power of a diffraction-limited "normal" refractive lens (with the same refractive power and diameter). In this exemplary embodiment, the first maximum in diffraction efficiency occurs at an add power of approximately 1.85 dpt, with an efficiency of approximately 0.5. This is assigned to the far focus, and approximately 50% of the diffraction efficiency is assigned to the far focus. A further maximum occurs at an add power of approximately 3 dpt, with a diffraction efficiency of approximately 0.16 (approximately 16% diffraction efficiency), and this diffraction maximum assists vision at intermediate distances (intermediate vision). The third maximum occurs at an add power of approximately 3.7 dpt, with a diffraction efficiency of approximately 0.33 (a diffraction efficiency of approximately 33%), and this diffraction maximum aids vision at shorter viewing distances. The illustrated exemplary embodiment is therefore a trifocal diffractive ophthalmic lens 1. In this case, at an add power of 0 dpt, there is no significant diffraction efficiency in the zeroth diffraction order. The diffractive ophthalmic lens 1 is a so-called multi-order phase plate (MOD optical unit). The illustrated exemplary embodiment is capable of correcting longitudinal chromatic aberration in the implanted eye, even at long distance focus.

[0075] FIG. 8a shows a diagram of simulated diffraction efficiency as a function of add power for the use range and defocus range of a trifocal diffractive ophthalmic lens according to the prior art. As in FIG. 7, the horizontal axis also plots the add power in diopters. However, FIG. 8a shows the interval from -60 dpt to +10 dpt. The vertical axis plots the diffraction efficiency. In this case, the vertical axis is on a logarithmic scale, which allows the representation of small diffraction efficiencies. The diffraction efficiency as a function of add power shown in FIG. 8a corresponds to the characteristics of a diffractive ophthalmic lens in which the primary subzone 34 occupies only 88% of the diffractive zone 32. The diffraction efficiency in the use range between 1.5 dpt and 4.5 dpt (approximately) corresponds to that shown in FIG. 7 for the exemplary embodiment, and the corresponding region of add power is marked in FIG. 8a using a dashed box. Therefore, with respect to the diffraction orders used, the diffractive ophthalmic lens according to the prior art shown in FIG. 8a behaves (approximately) like the ophthalmic lens 1 according to the present invention. For the defocus range marked here by the dotted box and spanning from -55 dpt to -10 dpt (i.e., from about -57 dpt to about -12 dpt for the far focus power, which is at about 2 dpt), this prior art example has a diffraction efficiency of up to 0.6%. The increase in diffraction efficiency occurs especially between -30 dpt and -15 dpt. These negative add powers of stray light nearly compensate for the corneal power and the far focus power of the diffractive ophthalmic lens. As a result, they are noticeable as secondary halos due to the logarithmic retinal luminance sensitivity.

[0076] If the secondary halo is evaluated by integrating the diffraction efficiency over the defocus range, the illustrated example from the prior art yields a value of approximately 8% for the diffraction efficiency integrated over all the add powers generated.

[0077] FIG. 8b shows a diagram of simulated diffraction efficiency as a function of add power for the use range and defocus range for an exemplary embodiment of a trifocal diffractive ophthalmic lens 1 according to the present invention. The horizontal and vertical axis indications correspond to those of FIG. 8a. In this case, the illustrated diffraction efficiency as a function of add power corresponds to the characteristics of a diffractive ophthalmic lens 1 in which the primary subzones 34, 44 occupy 94% of the diffractive zones 32, 42, respectively. The diffraction efficiency within the use range corresponds to that shown in FIG. 7 for an exemplary embodiment. For the defocus range marked here by the dotted box and extending from -55 dpt to -10 dpt, this exemplary embodiment has a diffraction efficiency of only 0.25%. If the secondary halo is evaluated by integrating the diffraction efficiency over the defocus range, the illustrated exemplary embodiment only produces a value of approximately 5% for the diffraction efficiency integrated over all the occurring add powers. As a result, the secondary halo is significantly reduced by the ophthalmic lens according to the present invention.

[0078] FIG. 8c shows a diagram of simulated diffraction efficiency as a function of add power for the use range and defocus range for a further exemplary embodiment of a trifocal diffractive ophthalmic lens 1 according to the present invention. In this case, the illustrated diffraction efficiency as a function of add power corresponds to the characteristics of a diffractive ophthalmic lens 1 in which the primary subzones 34, 44 each occupy 98% of the diffractive zones 32, 42. The diffraction efficiency within the use range again corresponds to that shown in FIG. 7 for an exemplary embodiment. This exemplary embodiment has a diffraction efficiency of less than 0.13% in the defocus range from -55 dpt to -10 dpt. If the secondary halo is evaluated by integrating the diffraction efficiency over the defocus range, the illustrated exemplary embodiment yields a value of only 1.4% for the diffraction efficiency integrated over all occurring add powers. As a result, the secondary halo is further significantly reduced by the ophthalmic lens according to the present invention.

[0079] If the intensity of the secondary halo of the described exemplary embodiment according to FIG. 8c is considered in the cross-section of the retina, this results in an order of magnitude reduction in the retinal intensity of the halo compared to the prior art according to FIG. 8a.

[0080] In this case, the above-mentioned features of the invention described in the various exemplary embodiments can be used not only in the specific exemplary combinations, but also in other combinations or by themselves, without departing from the scope of the invention.

[0081] Descriptions of apparatus with respect to method features are equally applicable to the corresponding methods with respect to those features, while method features correspondingly represent functional features of the described apparatus.

Claims

1. A diffractive ophthalmic lens (1) having a front surface (10), a rear surface (15), and a main optical axis (A), the front surface (10) and / or the rear surface (15) have a spherical, aspherical, spherical-toroidal, aspherical-toroidal or freeform basic shape, the front surface (10) and / or the rear surface (15) have a diffractive optical structure; the diffractive optical structure comprises a first lens region (30) having a plurality of first ring-shaped diffractive zones (32) around the main optical axis (A) of the ophthalmic lens (1), each diffractive zone having a main sub-zone (34) and a phase sub-zone (36); The diffractive optical structure in the first lens region (30) comprises: at the design wavelength, there is significant diffraction efficiency for optical path length differences of more than one wavelength between the first primary subzones (34); for a design wavelength, the optical path length difference between said first primary sub-zones (34) results in no significant diffraction efficiency for orders of diffraction below zero; On average across all diffractive zones (32), the main sub-zones (34) occupy at least 94% (particularly at least 95%) of the diffractive zones (32) relative to the first lens region (30), A diffractive ophthalmic lens (1) characterized in that the absolute widths of said phase subzones (36) decrease as the radial distance from said main optical axis (A) of said diffractive zone (32) increases.

2. said diffractive optical structure comprises at least one second lens region (40) having a second ring-shaped diffractive zone (42) around said main optical axis (A) of the ophthalmic lens (1), the second diffractive zone having an additional main sub-zone (44) and an additional phase sub-zone (46); On average across all second diffractive zones (42), the additional primary sub-zones (44) occupy at least 94% of the second diffractive zones (42) relative to the second lens area (40); 2. The diffractive ophthalmic lens (1) according to claim 1, characterized in that the first lens region (30) and the second lens region (40) differ from each other in at least one optical parameter of optical path length difference, zone size.

3. 3. The diffractive ophthalmic lens (1) according to claim 2, characterized in that at least one second diffractive zone (42) of the second lens region (40) is arranged between two first diffractive zones (32) of the first lens region (30) when viewed in a radial direction centered on the main optical axis (A), and the first diffractive zones (32) and the second diffractive zones (42) are arranged alternately, in particular when viewed in a radial direction.

4. 4. A diffractive ophthalmic lens (1) according to any one of claims 1 to 3, characterized in that the individual main sub-zones (34) account for at least 94% of the individual diffractive zones (32) relative to all of the first diffractive zones (32) and / or the second diffractive zones (42).

5. A diffractive ophthalmic lens (1) according to any one of claims 1 to 4, characterized in that the diffractive optical structure is configured such that in the first lens region (30) and / or the second lens region (40), there is no significant diffraction efficiency in negative orders of diffraction (in particular, there is no significant diffraction efficiency in orders of diffraction below zero) with respect to the design wavelength.

6. Diffractive ophthalmic lens (1) according to any one of claims 1 to 5, characterized in that at the design wavelength there is significant diffraction efficiency for at least two orders of diffraction (in particular at least three orders of diffraction).

7. 7. A diffractive ophthalmic lens (1) according to any one of claims 1 to 6, characterized in that the maximum diffraction efficiency is less than 0.3% (in particular less than 0.15%) in a defocus range, said defocus range being at least -45 dpt to -15 dpt (in particular at least -60 dpt to -10 dpt) in relation to the refractive power of the far focus.

8. 8. A diffractive ophthalmic lens (1) according to any one of the preceding claims, characterized in that the integrated diffraction efficiency is less than 6% (in particular less than 2%) in the defocus range, which ranges from at least -45 dpt to -15 dpt (in particular at least -60 dpt to -10 dpt) in terms of the refractive power of the far focus.

9. Diffractive ophthalmic lens (1) according to any one of claims 1 to 8, characterized in that the design wavelength is within the central spectral range of the luminous efficiency function (in particular between 530 nm and 570 nm), preferably 550 nm or 546 nm.

10. 10. A diffractive ophthalmic lens (1) according to any one of claims 1 to 9, characterized in that all first diffractive zones (32) of the first lens region (30) and / or all second diffractive zones (42) of the second lens region (40) each have the same zone size and / or the same optical path length difference.

11. Diffractive ophthalmic lens (1) according to any one of the preceding claims, characterized in that the ophthalmic lens (1) is made from a biocompatible material and is suitable for implantation into the eye.

12. Diffractive ophthalmic lens (1) according to any one of the preceding claims, characterized in that the ophthalmic lens (1) is a contact lens, an intraocular lens or an intracorneal lens.

13. A method for manufacturing a diffractive ophthalmic lens (1) according to any one of claims 1 to 12, comprising the steps of: Providing an ophthalmic lens blank; and removing material from the ophthalmic lens blank using a tool (90) having a radius corresponding to 6% or less (preferably 5% or less) of the width of the diffractive zone (32, 42) to create the diffractive zone (32, 42) of the diffractive structure.

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