WO2006074558A1 - Object having a holographic security feature and method for manufacturing such a feature - Google Patents

Object having a holographic security feature and method for manufacturing such a feature Download PDF

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Publication number
WO2006074558A1
WO2006074558A1 PCT/CH2005/000008 CH2005000008W WO2006074558A1 WO 2006074558 A1 WO2006074558 A1 WO 2006074558A1 CH 2005000008 W CH2005000008 W CH 2005000008W WO 2006074558 A1 WO2006074558 A1 WO 2006074558A1
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WO
WIPO (PCT)
Prior art keywords
holographic
holographic layer
volume hologram
obj ect
layer
Prior art date
Application number
PCT/CH2005/000008
Other languages
French (fr)
Inventor
René HEIERLI
Martin Eichenberger
Original Assignee
Kxo Ag
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Kxo Ag filed Critical Kxo Ag
Priority to CA002594367A priority Critical patent/CA2594367A1/en
Priority to EP05706499A priority patent/EP1836539A1/en
Priority to JP2007550649A priority patent/JP2008527449A/en
Priority to PCT/CH2005/000008 priority patent/WO2006074558A1/en
Priority to US11/794,030 priority patent/US20090103150A1/en
Publication of WO2006074558A1 publication Critical patent/WO2006074558A1/en

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Classifications

    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H1/00Holographic processes or apparatus using light, infrared or ultraviolet waves for obtaining holograms or for obtaining an image from them; Details peculiar thereto
    • G03H1/02Details of features involved during the holographic process; Replication of holograms without interference recording
    • G03H1/024Hologram nature or properties
    • G03H1/0248Volume holograms
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B42BOOKBINDING; ALBUMS; FILES; SPECIAL PRINTED MATTER
    • B42DBOOKS; BOOK COVERS; LOOSE LEAVES; PRINTED MATTER CHARACTERISED BY IDENTIFICATION OR SECURITY FEATURES; PRINTED MATTER OF SPECIAL FORMAT OR STYLE NOT OTHERWISE PROVIDED FOR; DEVICES FOR USE THEREWITH AND NOT OTHERWISE PROVIDED FOR; MOVABLE-STRIP WRITING OR READING APPARATUS
    • B42D25/00Information-bearing cards or sheet-like structures characterised by identification or security features; Manufacture thereof
    • B42D25/30Identification or security features, e.g. for preventing forgery
    • B42D25/328Diffraction gratings; Holograms
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H1/00Holographic processes or apparatus using light, infrared or ultraviolet waves for obtaining holograms or for obtaining an image from them; Details peculiar thereto
    • G03H1/04Processes or apparatus for producing holograms
    • G03H1/0402Recording geometries or arrangements
    • G03H1/041Optical element in the object space affecting the object beam, not otherwise provided for
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H1/00Holographic processes or apparatus using light, infrared or ultraviolet waves for obtaining holograms or for obtaining an image from them; Details peculiar thereto
    • G03H1/26Processes or apparatus specially adapted to produce multiple sub- holograms or to obtain images from them, e.g. multicolour technique
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H1/00Holographic processes or apparatus using light, infrared or ultraviolet waves for obtaining holograms or for obtaining an image from them; Details peculiar thereto
    • G03H1/0005Adaptation of holography to specific applications
    • G03H1/0011Adaptation of holography to specific applications for security or authentication
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H1/00Holographic processes or apparatus using light, infrared or ultraviolet waves for obtaining holograms or for obtaining an image from them; Details peculiar thereto
    • G03H1/02Details of features involved during the holographic process; Replication of holograms without interference recording
    • G03H1/0236Form or shape of the hologram when not registered to the substrate, e.g. trimming the hologram to alphanumerical shape
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H1/00Holographic processes or apparatus using light, infrared or ultraviolet waves for obtaining holograms or for obtaining an image from them; Details peculiar thereto
    • G03H1/04Processes or apparatus for producing holograms
    • G03H1/0402Recording geometries or arrangements
    • G03H2001/0415Recording geometries or arrangements for recording reflection holograms
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H1/00Holographic processes or apparatus using light, infrared or ultraviolet waves for obtaining holograms or for obtaining an image from them; Details peculiar thereto
    • G03H1/04Processes or apparatus for producing holograms
    • G03H1/18Particular processing of hologram record carriers, e.g. for obtaining blazed holograms
    • G03H2001/186Swelling or shrinking the holographic record or compensation thereof, e.g. for controlling the reconstructed wavelength
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H1/00Holographic processes or apparatus using light, infrared or ultraviolet waves for obtaining holograms or for obtaining an image from them; Details peculiar thereto
    • G03H1/04Processes or apparatus for producing holograms
    • G03H1/18Particular processing of hologram record carriers, e.g. for obtaining blazed holograms
    • G03H2001/187Trimming process, i.e. macroscopically patterning the hologram
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H1/00Holographic processes or apparatus using light, infrared or ultraviolet waves for obtaining holograms or for obtaining an image from them; Details peculiar thereto
    • G03H1/22Processes or apparatus for obtaining an optical image from holograms
    • G03H1/2202Reconstruction geometries or arrangements
    • G03H2001/2223Particular relationship between light source, hologram and observer
    • G03H2001/2231Reflection reconstruction
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H1/00Holographic processes or apparatus using light, infrared or ultraviolet waves for obtaining holograms or for obtaining an image from them; Details peculiar thereto
    • G03H1/26Processes or apparatus specially adapted to produce multiple sub- holograms or to obtain images from them, e.g. multicolour technique
    • G03H2001/2605Arrangement of the sub-holograms, e.g. partial overlapping
    • G03H2001/261Arrangement of the sub-holograms, e.g. partial overlapping in optical contact
    • G03H2001/2615Arrangement of the sub-holograms, e.g. partial overlapping in optical contact in physical contact, i.e. layered holograms
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H2250/00Laminate comprising a hologram layer
    • G03H2250/12Special arrangement of layers
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H2250/00Laminate comprising a hologram layer
    • G03H2250/33Absorbing layer
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03HHOLOGRAPHIC PROCESSES OR APPARATUS
    • G03H2270/00Substrate bearing the hologram
    • G03H2270/10Composition
    • G03H2270/12Fibrous, e.g. paper, textile

Definitions

  • Object having a holographic security feature and method, for manufacturing such a feature.
  • the invention relates to an object having a holographic security feature with a first holographic layer comprising a first reflective volume hologram and a second holographic layer on top of said first holographic layer comprising a second reflective volume hologram.
  • the invention also relates to a method for manufacturing such a security feature .
  • US 6 529 297 relates to a hologram with three reflection volume holograms recorded with diffuse light to generate three diffuse light spots of different color at three different perceptual positions .
  • the first as well as the second volume hologram each correspond to the interference pat- tern between two Gaussian beams .
  • a true *Gaussian beam is a light beam with substantially spherical phase planes and a Gaussian intensity distribution - in the context of the present application, however, a true Gaussian beam that is partially masked after passage through a mask cutting off part of the light at its periphery is still considered to be a Gaussian beam.
  • each holographic layer is illuminated by means of two coherent Gaussian beams for generating the first and second reflective volume hologram, respectively .
  • a special case of a Gaussian beam is a plane wave .
  • a plane wave passing through a mask cutting it off peripherally will still be considered to be a plane wave .
  • the first as well as the second volume hologram is a homogeneous Bragg diffraction grating -with a given grating vector .
  • Each such volume hologram can be created by recording the interference pattern of two plane waves .
  • the grating vectors of the first and second volume holograms are different in direction and/or length, which causes them to reflect light of different colors or into differ- ent directions .
  • holograms are not only easy to manufacture, but can also distinguished and to verified with ease .
  • the first and second volume holograms reflect light in a first and a second range of directions , respectively, wherein said first and said second range are different .
  • the first and the second range are non-overlapping, which allows to distin- guish the reflections from the two layers easily .
  • the maximum reflectivity of the first hologram should be in a different direction and at a different wavelength from . the maximum reflectivity of the second hologram. This allows to verify the holograms by viewing the obj ect from different angles while illuminating it with diffuse white light . Depending on the viewing angle, a differently colored reflection from the first or the second holographic layer is predominant .
  • the first and second hologram have different shape .
  • the spatial extension of the first hologram is different from the spatial extension of said second hologram.
  • the holograms will "light up" with different shapes when viewed from the appropriate directions, which again makes the reflection from the first hologram easy to distin- ⁇ guish from the reflection from the second hologram.
  • the obj ect can advantageously be a banknote or some other security document, such as a passport, ID card, driver' s license, check, credit card, packaging, tags for valuable goods, data carriers, or letter heads that should be hard to counterfeit .
  • a holo- graphic layer with a "reflective" volume hologram is understood to designate a layer with a volume hologram that, when illuminated with reading light from a first side of the layer, reflects light back to exit from the first side of the layer .
  • the grating vec- tor (s) of the hologram are such that the Bragg condition is fulfilled for incoming light incident through the first side and exiting light exiting through the same first side .
  • the term "homogeneous Bragg diffraction grat- ing" is used in the present application to designate a volume hologram consisting of a Bragg diffraction grating having the same grating vector over the whole hologram.
  • the amplitude of the grating may vary over the holographic layer, and the grating may even be absent in parts of the holographic layer, but the direction and distance of the grating planes are the same all over the holographic layer wherever the grating exists .
  • Fig. 1 shows a banknote having a holographic security feature
  • Fig. 2 is a sectional view along line II-II of Fig. 1,
  • Fig. 3 shows the writing of a holographic layer by means of plane waves
  • Fig. 4 shows the writing of a holographic layer by means of divergent Gaussian beams .
  • Fig. 1 shows an obj ect according to the present invention in the form of a banknote .
  • the banknote has a carrier 1 of a thin, flexible material, such as paper, with various conventional security features 2, images 3 and textual matter 4 applied thereto . It further comprises a security feature 5, which will be described in the following.
  • security feature 5 comprises two (or more) holographic layers 6, 7.
  • First holographic layer 6 is arranged on top of carrier 1 and attached thereto .
  • Second holographic layer 7 is arranged on top of first holographic layer 6.
  • Each holographic layer 6 , 7 comprises at least one reflective volume hologram 8 , 9 , respectively.
  • the spatial extensions of the holograms 8 , 9 in the directions parallel to the holographic layers 6 , 7 differ from each other .
  • first hologram 8 extends to fill a circle while second hologram 9 extends to fill the glyphs ⁇ 100" .
  • Both volume holograms 8 , 9 are reflective volume holograms in the sense above, i . e . when carrier 1 is illuminated from the side carrying security feature 5 , the holograms reflect light back.
  • Fig. 2 shows, schematically, the angular ranges 10 , 11 of reflections from the first and second volume hologram 8 , 9 , respectively upon illumination with diffuse white light .
  • the ranges 10 , 11 differ, and are preferably non- overlapping, in order to allow the viewer to easily distinguish the light reflected from the different volume holograms 8 , 9.
  • both vol- ume holograms 8 , 9 are homogeneous Bragg diffraction gratings , i . e . they are formed by periodic variations of the refractive index and/or absorption of the hologram layers . Such periodic variations are generally described by a (location dependent) local amplitude and grating vector .
  • the grating vector of a given hologram is the same everywhere, i . e . the orientation and grating spacing remains the same over the whole hologram, while the amplitude may depend on the position within the hologram.
  • the amplitude is a fixed value within the circle while it drops to zero outside the circle .
  • the grating vectors of the two volume holograms 8 , 9 differ in direction and/or size, thereby giv- ing rise to the different reflection ranges 10 , 11 and/or different reflection colors .
  • the reflection from first volume hologram 8 can be seen from a first angular range 10 in a first spectral range
  • 5 the reflection from second volume hologram 9 can be seen from a second angular range 11 in a second spectral range
  • the angular and spectral ranges of the light from the two volume holograms 8 will differ .
  • the 10 range of the reflected light will generally depend on a plurality of parameters , such as the grating vector and amplitude, the refractive index of the holographic layers and the thickness of the holograms .
  • the reflection efficiency can be in- ⁇ creased while the thickness of the holograms can remain small .
  • a small hologram thickness is advantageous because thick holograms have higher angular selectivity and are
  • an advantageous thickness of the volume holograms 8 , 9 is between 10 and 15 ⁇ m for each hologram, even though thicker or thinner holograms can be used depending
  • FIG. 3 A method for manufacturing the volume holograms of Figs . 1 and 2 is depicted in Fig . 3.
  • the volume holograms 8 , 9 are manufactured separately from each other by illuminating a single
  • photosensitive holographic layer 20 (which can be one of the layers 6 , 7 or a separate master hologram as known to the person skilled in the art) by an interference pattern of two coherent, monochromatic plane waves 22 , 23.
  • a mask 21 can be
  • holographic layer 20 may be arranged on a substrate or between a pair of suitable substrates (not shown) .
  • these areas can first be illuminated by homogeneous light, whereupon the whole holographic layer 20 is brought into an interference pattern: In this case, the interference pattern is only recorded in the regions that have not been illuminated be- fore .
  • mask 21 can be removed and the hologram can -be fixed within holographic layer 20 , e . g. by thermal, chemical or photochemical treatment .
  • the details of the recording and fixing of the- hologram depend on the recording material used in holographic layer 20.
  • Various such recording materials are known, see e . g. WO 03 /036389.
  • two such holographic layers 20 each with a hologram of the desired shape and orientation, can be prepared and then laminated to each other and to carrier 1.
  • Fig. 3 Because the manufacturing step depicted in Fig . 3 uses simple plane waves 22 , 23 in combination with a mask 21 , it can be carried out easily .
  • a method of comparable ease is illustrated in Fig. 4 , where two Gaussian beams 24 , 25 are used instead of plane waves .
  • Gaussian beams 24 , 25 are as easy (and sometimes easier) to prepare as plane waves .
  • the phase planes of Gaussian beams are generally curved and the beams are convergent or divergent .
  • the holograms manufactured in this way correspond to the interference pattern between the two Gaus- sian beams and will , in general , have a local grating vector that varies accordingly .
  • the reflected light from the holograms will again substantially correspond to a Gaussian beam.
  • the holographic layers 6 , 7 are manufactured sepa- 5 rately and then assembled to form the security feature 5 , which can then be applied to carrier 1.
  • first holographic layer 6 can first be applied to carrier 1
  • second holographic layer 7 can be applied to the top of first holographic layer 6.
  • security feature 5 is applied to a "dark" part of carrier 1 , e . g . to a part where carrier 1 carries a dark printed pattern , which ' improves the visibility of the light reflected from the volume holograms 8 , 9.
  • security 5 feature 5 should be arranged .
  • the reflectivity of carrier 1 in the area of security feature ' 5 should be 0 smaller than the maximum reflectivity of first holo-
  • the carrier 1 in the region of the security feature should be non-transparent .
  • the holo- 5 graphic layers 6 , 7 are arranged on top of carrier 1.
  • one or both of the layers 6 , 7 can be embedded into carrier 1.
  • the security feature according to the present invention can be manufac- 0 tured and verified easily . Its multi-layer nature with different volume holograms in di fferent layers make counterfeiting and copying difficult . In particular , the reproduction of the multi-layer structure using a holographic contact copy process is difficult . 5 Since the volume holograms 8 , 9 are manufactured separately in separate holographic layers 6 , 7 , it becomes possible to subj ect the holographic layers 6 to different post-processing steps . For example, each layer 6 , 7 can be recorded using the same laser with the same beam geometry, but one holographic layer can subsequently be subjected to a shrinking process , e . g. by thermal or chemical treatment, thus changing its grating vector as compared to the grating vector of a non-shrunk layer .

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Credit Cards Or The Like (AREA)
  • Holo Graphy (AREA)
  • Diffracting Gratings Or Hologram Optical Elements (AREA)
  • Optical Recording Or Reproduction (AREA)

Abstract

An optical security feature, e.g. for a banknote or other security documents, comprises a first and a second holographic layer (6, 7) arranged on top of each other. Each layer comprises a comparatively simple reflective volume hologram (8, 9), such as it can e.g. be recorded by the interference pattern of two Gaussian light beams. The volume holograms (8, 9) have different grating spacing and/or orientation as well as different extension such that the observer can distinguish and verify them easily. The simple nature of the holograms make the security feature easy to manufacture, while its two-layer structure makes it hard to copy and yields high diffraction efficiency.

Description

Object having a holographic security feature and method, for manufacturing such a feature.
Technical Field
The invention relates to an object having a holographic security feature with a first holographic layer comprising a first reflective volume hologram and a second holographic layer on top of said first holographic layer comprising a second reflective volume hologram. The invention also relates to a method for manufacturing such a security feature .
Background Art
It has been known to use holograms in security features for counterfeit protection.
US 6 529 297 relates to a hologram with three reflection volume holograms recorded with diffuse light to generate three diffuse light spots of different color at three different perceptual positions .
Disclosure of the Invention
It is a general aim of the invention to provide a an object with a security feature of this type having several volume holographic layers that is easy to manufacture and to verify. It is also an aim of the invention to provide a method for manufacturing such a security feature .
Now, in order to implement these and still further objects of the invention, which will become more readily apparent as the description proceeds , in a first aspect of the invention, the first as well as the second volume hologram each correspond to the interference pat- tern between two Gaussian beams . A true *Gaussian beam" is a light beam with substantially spherical phase planes and a Gaussian intensity distribution - in the context of the present application, however, a true Gaussian beam that is partially masked after passage through a mask cutting off part of the light at its periphery is still considered to be a Gaussian beam.
In a manufacturing method according to this first aspect of the invention, each holographic layer is illuminated by means of two coherent Gaussian beams for generating the first and second reflective volume hologram, respectively .
A special case of a Gaussian beam is a plane wave . In the sense of the definition above, a plane wave passing through a mask cutting it off peripherally will still be considered to be a plane wave .
Hence , in a second aspect of the invention, the first as well as the second volume hologram is a homogeneous Bragg diffraction grating -with a given grating vector . Each such volume hologram can be created by recording the interference pattern of two plane waves . The grating vectors of the first and second volume holograms are different in direction and/or length, which causes them to reflect light of different colors or into differ- ent directions . Hence, such holograms are not only easy to manufacture, but can also distinguished and to verified with ease .
Similarly, in a third aspect of the invention, the first and second volume holograms reflect light in a first and a second range of directions , respectively, wherein said first and said second range are different . Hence , again, such holograms are easily to distinguish and to verify. Preferably the first and the second range are non-overlapping, which allows to distin- guish the reflections from the two layers easily .
Advantageously, in all aspects of the invention, under an illumination with diffuse white light , the maximum reflectivity of the first hologram should be in a different direction and at a different wavelength from . the maximum reflectivity of the second hologram. This allows to verify the holograms by viewing the obj ect from different angles while illuminating it with diffuse white light . Depending on the viewing angle, a differently colored reflection from the first or the second holographic layer is predominant .
In a further advantageous embodiment of the above aspects of the invention, the first and second hologram have different shape . In other words, in directions parallel' to the holographic layers, the spatial extension of the first hologram is different from the spatial extension of said second hologram. In this case, the holograms will "light up" with different shapes when viewed from the appropriate directions, which again makes the reflection from the first hologram easy to distin- guish from the reflection from the second hologram.
The obj ect can advantageously be a banknote or some other security document, such as a passport, ID card, driver' s license, check, credit card, packaging, tags for valuable goods, data carriers, or letter heads that should be hard to counterfeit .
In the context of this application, a holo- graphic layer with a "reflective" volume hologram is understood to designate a layer with a volume hologram that, when illuminated with reading light from a first side of the layer, reflects light back to exit from the first side of the layer . This means that the grating vec- tor (s) of the hologram are such that the Bragg condition is fulfilled for incoming light incident through the first side and exiting light exiting through the same first side .
The term "homogeneous Bragg diffraction grat- ing" is used in the present application to designate a volume hologram consisting of a Bragg diffraction grating having the same grating vector over the whole hologram. The amplitude of the grating may vary over the holographic layer, and the grating may even be absent in parts of the holographic layer, but the direction and distance of the grating planes are the same all over the holographic layer wherever the grating exists .
Brief Description of the Drawings
The invention will be better understood and obj ects other than those set forth above will become apparent when consideration is given to the following detailed description thereof. Such description makes reference to the annexed drawings, wherein:
Fig. 1 shows a banknote having a holographic security feature,
Fig. 2 is a sectional view along line II-II of Fig. 1,
Fig. 3 shows the writing of a holographic layer by means of plane waves, and Fig. 4 shows the writing of a holographic layer by means of divergent Gaussian beams .
Modes for Carrying Out the Invention
Fig. 1 shows an obj ect according to the present invention in the form of a banknote . The banknote has a carrier 1 of a thin, flexible material, such as paper, with various conventional security features 2, images 3 and textual matter 4 applied thereto . It further comprises a security feature 5, which will be described in the following.
As can best be seen from Fig. 2 , security feature 5 comprises two (or more) holographic layers 6, 7. First holographic layer 6 is arranged on top of carrier 1 and attached thereto . Second holographic layer 7 is arranged on top of first holographic layer 6. Each holographic layer 6 , 7 comprises at least one reflective volume hologram 8 , 9 , respectively. The spatial extensions of the holograms 8 , 9 in the directions parallel to the holographic layers 6 , 7 differ from each other . In the embodiment of Figs . 1 and 2 , first hologram 8 extends to fill a circle while second hologram 9 extends to fill the glyphs λΛ100" .
Both volume holograms 8 , 9 are reflective volume holograms in the sense above, i . e . when carrier 1 is illuminated from the side carrying security feature 5 , the holograms reflect light back. Fig. 2 shows, schematically, the angular ranges 10 , 11 of reflections from the first and second volume hologram 8 , 9 , respectively upon illumination with diffuse white light . Advantageously, the ranges 10 , 11 differ, and are preferably non- overlapping, in order to allow the viewer to easily distinguish the light reflected from the different volume holograms 8 , 9.
In the embodiment of Figs . 1 and 2 , both vol- ume holograms 8 , 9 are homogeneous Bragg diffraction gratings , i . e . they are formed by periodic variations of the refractive index and/or absorption of the hologram layers . Such periodic variations are generally described by a (location dependent) local amplitude and grating vector . In a homogeneous Bragg diffraction grating, in the sense used here, the grating vector of a given hologram is the same everywhere, i . e . the orientation and grating spacing remains the same over the whole hologram, while the amplitude may depend on the position within the hologram. For example, in the first volume hologram 8 the amplitude is a fixed value within the circle while it drops to zero outside the circle .
The grating vectors of the two volume holograms 8 , 9 differ in direction and/or size, thereby giv- ing rise to the different reflection ranges 10 , 11 and/or different reflection colors . In general , when viewing the embodiment of Fig . 1 and 2 under diffuse white light illumination, the reflection from first volume hologram 8 can be seen from a first angular range 10 in a first spectral range, while 5 the reflection from second volume hologram 9 can be seen from a second angular range 11 in a second spectral range . In general, the angular and spectral ranges of the light from the two volume holograms 8 will differ .
The intensity, angular range and spectral
10 range of the reflected light will generally depend on a plurality of parameters , such as the grating vector and amplitude, the refractive index of the holographic layers and the thickness of the holograms .
By placing the two volume holograms 8 , 9 in
15.. separate holographic . layers instead of superimposing them in a single layer, the reflection efficiency can be in- creased while the thickness of the holograms can remain small . A small hologram thickness is advantageous because thick holograms have higher angular selectivity and are
20 therefore more difficult to observe. .
To obtain a reflection that- -can be observed easily, an advantageous thickness of the volume holograms 8 , 9 is between 10 and 15 μm for each hologram, even though thicker or thinner holograms can be used depending
25 on the desired optical properties of security feature 5.
A method for manufacturing the volume holograms of Figs . 1 and 2 is depicted in Fig . 3. In the proposed procedure, the volume holograms 8 , 9 are manufactured separately from each other by illuminating a single
30 photosensitive holographic layer 20 (which can be one of the layers 6 , 7 or a separate master hologram as known to the person skilled in the art) by an interference pattern of two coherent, monochromatic plane waves 22 , 23. In order to structure the hologram laterally, a mask 21 can be
35 placed at least at one side of holographic layer 20. Mask 21 prevents the formation of interference patters outside the desired regions of holographic layer 20. During illumination, holographic layer 20 may be arranged on a substrate or between a pair of suitable substrates (not shown) .
Instead of masking the areas where no forma- tion of a hologram is desired, these areas can first be illuminated by homogeneous light, whereupon the whole holographic layer 20 is brought into an interference pattern: In this case, the interference pattern is only recorded in the regions that have not been illuminated be- fore .
After illumination, mask 21 can be removed and the hologram can -be fixed within holographic layer 20 , e . g. by thermal, chemical or photochemical treatment .
The details of the recording and fixing of the- hologram depend on the recording material used in holographic layer 20. Various such recording materials are known, see e . g. WO 03 /036389.
In order to manufacture the security feature 5of Figs . 1 and 2 , two such holographic layers 20 , each with a hologram of the desired shape and orientation, can be prepared and then laminated to each other and to carrier 1.
Because the manufacturing step depicted in Fig . 3 uses simple plane waves 22 , 23 in combination with a mask 21 , it can be carried out easily . A method of comparable ease is illustrated in Fig. 4 , where two Gaussian beams 24 , 25 are used instead of plane waves . As known to the person skilled in the art , Gaussian beams 24 , 25 are as easy (and sometimes easier) to prepare as plane waves . In contrast to plane waves , the phase planes of Gaussian beams are generally curved and the beams are convergent or divergent .
The holograms manufactured in this way correspond to the interference pattern between the two Gaus- sian beams and will , in general , have a local grating vector that varies accordingly . When viewed in diffuse white light , the reflected light from the holograms will again substantially correspond to a Gaussian beam.
In the manufacturing methods of Figs . 3 and 4 , the holographic layers 6 , 7 are manufactured sepa- 5 rately and then assembled to form the security feature 5 , which can then be applied to carrier 1. Alternatively, first holographic layer 6 can first be applied to carrier 1 , and then second holographic layer 7 can be applied to the top of first holographic layer 6. 0 Advantageously, security feature 5 is applied to a "dark" part of carrier 1 , e . g . to a part where carrier 1 carries a dark printed pattern , which ' improves the visibility of the light reflected from the volume holograms 8 , 9. In other words , for best results , security 5 feature 5 should be arranged . over an area - of carrier 1 that has a reflectivity smaller than a maximum reflectivity of the volume holograms 8 , 9. If the volume holograms 8 , 9 have different reflectivity, the reflectivity of carrier 1 in the area of security feature' 5 should be 0 smaller than the maximum reflectivity of first holo-
■ ■ graphic layer 6 and smaller than the maximum reflectivity of second holographic layer 9. The carrier 1 in the region of the security feature should be non-transparent .
In the embodiment of Figs . 1 and 2 , the holo- 5 graphic layers 6 , 7 are arranged on top of carrier 1. Alternatively, one or both of the layers 6 , 7 can be embedded into carrier 1.
As results from the above , the security feature according to the present invention can be manufac- 0 tured and verified easily . Its multi-layer nature with different volume holograms in di fferent layers make counterfeiting and copying difficult . In particular , the reproduction of the multi-layer structure using a holographic contact copy process is difficult . 5 Since the volume holograms 8 , 9 are manufactured separately in separate holographic layers 6 , 7 , it becomes possible to subj ect the holographic layers 6 to different post-processing steps . For example, each layer 6 , 7 can be recorded using the same laser with the same beam geometry, but one holographic layer can subsequently be subjected to a shrinking process , e . g. by thermal or chemical treatment, thus changing its grating vector as compared to the grating vector of a non-shrunk layer .
While there are shown and described presently preferred embodiments of the invention, it is to be distinctly understood that the invention is not limited thereto but may be otherwise variously embodied and practiced within the scope of the following claims .

Claims

Claims
1. An obj ect having a holographic security feature, said obj ect comprising a carrier ( 1 ) , a first holographic layer ( 6) comprising a first reflective volume hologram ( 8 ) , a second holographic layer ( 7 ) on top of said first holographic layer ( 6 ) comprising a second reflec- tive volume hologram ( 9 ) , characterized in that each of said first and second volume holograms ( 8., 9 ) corresponds to the interference pattern between two Gaussian beams .
2. An obj ect having a holographic security feature, in particular of claim 1 , said ' obj ect comprising a carrier ( 1 ) , a first holographic layer ( 6 ) comprising a first reflective volume hologram ( 8 ) , a second holographic layer (7 ) ΌΏ top of said first holographic layer ( 6 ) comprising a second reflective volume hologram ( 9 ) , characterized in that each of said first and second volume holograms ( 8 , 9 ) is a homogeneous Bragg diffraction grating with a given grating vector, wherein the grating -vectors of said first and second volume holograms ( 8 , 9 ) are different in direction and/or length .
3. An obj ect having a holographic security feature , in particular of one of the preceding claims , said obj ect comprising a carrier ( 1 ) , a first holographic layer ( 6 ) comprising a first reflective volume hologram ( 8 ) , a second holographic layer ( 7 ) on top of said first holographic layer ( 6 ) comprising a second reflec- tive volume hologram ( 9 ) , characterized in that , for diffuse illumination, said first and second volume holograms ( 8 , 9 ) re- fleet light in a first and a second range (10, 11) of directions, respectively, wherein said first and said second ranges (10, 11) are different .
4. The obj ect of claim 3 wherein said first and said second ranges (10, 11) are non-overlapping.
5. The obj ect of any of the preceding claims wherein, under diffuse illumination with white light, a maximum reflectivity of the first reflective volume hologram (8) is in a different direction and at a different wavelength from a maximum reflectivity of the second reflective volume hologram (9) .
6. The obj ect of any of the preceding claims wherein said first holographic layer ( 6) is arranged on top of said carrier (1) . 7. The object of any of the preceding claims wherein, in directions parallel to said holographic layers (6,
7) , a spatial extension of said first reflective volume hologram ( 8) is different from a spatial extension of said second reflective volume hologram (9) .
8. The obj ect of any of the preceding claims wherein said obj ect is a security document, in particular a banknote .
9. The object of any of the preceding claims wherein the security feature is arranged over an area of said carrier (1) that has a reflectivity smaller than a maximum reflectivity of said first holographic layer ( 6) and smaller than a maximum reflectivity of said second holographic layer (7) .
10. The object of any of the preceding claims wherein a thickness of each of the reflective volume holograms (8, 9) is between 10 and 15 μtn.
11. A method for manufacturing a security feature for an object, said method comprising the steps of illuminating a first holographic layer ( 6) for generating a first reflective volume hologram (8) therein, illuminating a second holographic layer (7 ) for generating a second reflective volume hologram ( 9) therein, and adjoining the first and the second holo- graphic layers ( 6, 7 ) , wherein each of said first and second holographic layers ( 6, 7 ) is illuminated by means of two coherent Gaussian beams (22, 24 ; 23 ; 25) , in particular with two coherent plane waves (22, 23 ) , for generating said first and second reflective volume hologram ( 8, 9) , respectively
12. The method of claim 11, wherein at least one a first of said holographic layers ( 6, 7 ) is subj ected to a shrinking process for changing a grating spacing of said first holographic layer ( 6) in respect to the second holographic layer (7 ) .
PCT/CH2005/000008 2005-01-11 2005-01-11 Object having a holographic security feature and method for manufacturing such a feature WO2006074558A1 (en)

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EP05706499A EP1836539A1 (en) 2005-01-11 2005-01-11 Object having a holographic security feature and method for manufacturing such a feature
JP2007550649A JP2008527449A (en) 2005-01-11 2005-01-11 Object having holographic security function and method for producing the function
PCT/CH2005/000008 WO2006074558A1 (en) 2005-01-11 2005-01-11 Object having a holographic security feature and method for manufacturing such a feature
US11/794,030 US20090103150A1 (en) 2005-01-11 2005-01-11 Object Having a Holographic Security Feature and Method for Manufacturing Such a Feature

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2009049600A3 (en) * 2007-10-18 2009-06-04 Bundesdruckerei Gmbh Security and/or valuable document comprising holograms established in different layers
US7875338B2 (en) 1999-11-19 2011-01-25 Hologram Industries (S.A.) Security protection of documents or products by affixing an optically active component for verification of authenticity
WO2015055720A1 (en) 2013-10-15 2015-04-23 Heraeus Precious Metals Gmbh & Co. Kg Security feature based on a polymer layer comprising a first area and a further area
EP2873520A1 (en) 2013-10-15 2015-05-20 Heraeus Precious Metals GmbH & Co. KG Security feature based on a polymer layer comprising a first area and a further area

Families Citing this family (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8558137B2 (en) * 2008-05-07 2013-10-15 Toyo Seikan Kaisha, Ltd. Structure, method of forming structure, and method of laser processing objects
JP5170426B2 (en) * 2008-08-11 2013-03-27 大日本印刷株式会社 Anti-counterfeiting system using volume hologram for anti-counterfeiting
JP5170425B2 (en) * 2008-08-11 2013-03-27 大日本印刷株式会社 Photosynthetic element
JP5218759B2 (en) * 2008-11-06 2013-06-26 大日本印刷株式会社 Color switching hologram
AU2009356927B2 (en) 2009-12-18 2016-02-18 Orell Füssli AG Security document with optical waveguide
US8360317B2 (en) * 2010-06-21 2013-01-29 Victor Zazzu Apparatus and method for enhancing card security
US10996382B1 (en) 2018-01-23 2021-05-04 Facebook Technologies, Llc Diffraction grating with a variable refractive index formed using an energy gradient
US20200356050A1 (en) * 2019-05-08 2020-11-12 Facebook Technologies, Llc Spatial deposition of resins with different functionality

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH11133232A (en) * 1997-10-27 1999-05-21 Dainippon Printing Co Ltd Composite hologram
EP1004946A1 (en) * 1998-11-26 2000-05-31 Dai Nippon Printing Co., Ltd. Color hologram recording medium and process for fabricating the same
US6127066A (en) * 1992-11-27 2000-10-03 Dai Nippon Printing Co., Ltd. Hologram recording sheet, holographic optical element using said sheet, and its production process
EP1363233A1 (en) * 2002-05-13 2003-11-19 Orell Füssli Sicherheitsdruck AG Security document having a resonant circuit

Family Cites Families (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3932505C2 (en) * 1989-09-28 2001-03-15 Gao Ges Automation Org Data carrier with an optically variable element
US5267753A (en) * 1991-07-08 1993-12-07 Ernest Chock Holographic bank draft
JPH06110380A (en) * 1992-09-30 1994-04-22 Dainippon Printing Co Ltd Hologram, and method and device for confirmation using the same
US5606433A (en) * 1994-08-31 1997-02-25 Hughes Electronics Lamination of multilayer photopolymer holograms
JP3565518B2 (en) * 1995-03-13 2004-09-15 大日本印刷株式会社 Multilayer hologram recording sheet
JPH08262963A (en) * 1995-03-22 1996-10-11 Toppan Printing Co Ltd Picture display body and thermal transfer sheet using same
WO1998012607A1 (en) * 1996-09-19 1998-03-26 Dai Nippon Printing Co., Ltd. Volume hologram laminate and label for preparing volume hologram laminate
US6757087B1 (en) * 1997-03-18 2004-06-29 Matsushita Electric Industrial Co., Ltd. Optical display
JPH11202743A (en) * 1998-01-16 1999-07-30 Asahi Glass Co Ltd Original plate for hologram duplication and manufacture of hologram
DE69937920T2 (en) * 1998-04-09 2009-01-02 Dai Nippon Printing Co., Ltd. Volume hologram laminate and label for making a volume hologram laminate
US6482489B1 (en) * 1998-10-20 2002-11-19 Dai Nippon Printing Co., Ltd. Hologram laminates
DE19924385A1 (en) * 1999-05-27 2000-12-07 Xetos Ag Information carrier with hologram
JP4424565B2 (en) * 1999-10-08 2010-03-03 大日本印刷株式会社 Volume hologram laminate and label for producing volume hologram laminate
JP4124396B2 (en) * 1999-12-17 2008-07-23 独立行政法人科学技術振興機構 Hologram manufacturing method and apparatus
GB0016358D0 (en) * 2000-07-03 2000-08-23 Optaglio Ltd Optical device
JP2003195732A (en) * 2001-12-27 2003-07-09 Sony Corp Composite hologram printed matter and method of manufacturing the same
RU2004129336A (en) * 2002-04-03 2005-05-10 Де Ля Рю Интернэшнл Лимитед (Gb) OPTICALLY VARIABLE PROTECTIVE DEVICE
US20040121241A1 (en) * 2002-07-09 2004-06-24 Dai Nippon Printing Co., Ltd. Volume hologram medium

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6127066A (en) * 1992-11-27 2000-10-03 Dai Nippon Printing Co., Ltd. Hologram recording sheet, holographic optical element using said sheet, and its production process
JPH11133232A (en) * 1997-10-27 1999-05-21 Dainippon Printing Co Ltd Composite hologram
EP1004946A1 (en) * 1998-11-26 2000-05-31 Dai Nippon Printing Co., Ltd. Color hologram recording medium and process for fabricating the same
EP1363233A1 (en) * 2002-05-13 2003-11-19 Orell Füssli Sicherheitsdruck AG Security document having a resonant circuit

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
HITZ C.B.: "Understanding laser technology", 1985, PENNWELL PUBLISHING COMP., XP002346905 *
PATENT ABSTRACTS OF JAPAN vol. 1999, no. 10 31 August 1999 (1999-08-31) *

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7875338B2 (en) 1999-11-19 2011-01-25 Hologram Industries (S.A.) Security protection of documents or products by affixing an optically active component for verification of authenticity
WO2009049600A3 (en) * 2007-10-18 2009-06-04 Bundesdruckerei Gmbh Security and/or valuable document comprising holograms established in different layers
WO2015055720A1 (en) 2013-10-15 2015-04-23 Heraeus Precious Metals Gmbh & Co. Kg Security feature based on a polymer layer comprising a first area and a further area
EP2873520A1 (en) 2013-10-15 2015-05-20 Heraeus Precious Metals GmbH & Co. KG Security feature based on a polymer layer comprising a first area and a further area

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