Film structure with protection against manipulation
11386812 · 2022-07-12
Assignee
Inventors
Cpc classification
G09F3/0291
PHYSICS
International classification
Abstract
A film structure with protection against manipulation includes a top film, a laser-inscribable layer which is arranged on the bottom side of the top film, and also a bottom film and a connecting layer for connecting the bottom film to the top film and the laser-inscribable layer. The connecting layer is arranged between the laser-inscribable layer and the bottom film. The film structure has an inscribed region and an uninscribed region. The top film is fused with the bottom film in the inscribed region of the film structure. As a result, it is virtually impossible to separate the top film with the inscribed layer from the bottom film without destruction in the event of a manipulation attempt.
Claims
1. A film structure with protection against manipulation, comprising: a top film (10), a laser-inscribable layer (20), which is affixed onto the underside (U10) of the top film (10) and thus is permanently bonded with the top film (10), a bottom film (40) being a layer of plastic, a bonding layer (30) for bonding the bottom film (40) with the top film (10) and the laser-inscribable layer (20), wherein the bonding layer (30) is disposed between the laser-inscribable layer (20) and the bottom film (40) in a manner such that the bonding layer (30) is disposed directly underneath the laser-inscribable layer (20) and directly above the bottom film (40) and there is no intermediate layer at any point between the bonding layer (30) and the bottom film (40), and there is no other intermediate layer between the bonding layer (30) and the laser-inscribable layer (20), wherein the film structure (100) has an inscribed region (101) and a non-inscribed region (102), wherein the top film (10) is fused together with the bottom film (40) in the inscribed region (101).
2. The film structure according to claim 1, wherein an interaction between the top film (10), the laser-inscribable layer (20), the bonding layer (30) and the bottom film (40) at a border (103) between the inscribed region (101) and the non-inscribed region (102) of the film structure is changed.
3. The film structure according to claim 2, wherein the top film (10) and the bottom film (40) are separated from one another in the non-inscribed region (102).
4. The film structure according to claim 1, wherein the top film (10) in the non-inscribed region (102) of the film structure is separated from the bottom film (40) by the laser-inscribable layer (20) and the bonding layer (30).
5. The film structure according to claim 1, wherein the laser-inscribable layer (20) has been at least partly removed in the inscribed region (101) of the film structure.
6. The film structure according to claim 1, wherein the layer thickness of the laser-inscribable layer (20) is reduced in the inscribed region (101) of the film structure in comparison with the non-inscribed region (102).
7. The film structure according to claim 1, wherein the laser-inscribable layer (20) is vapor-deposited or sputtered onto the underside (U10) of the top film (10).
8. The film structure according to claim 1, wherein the laser-inscribable layer (20) is a metallic layer, which is ablatable due to the action of a laser beam (2).
9. The film structure according to claim 1, wherein the laser-inscribable layer (20) comprises an aluminum metallization layer on the underside (U10) of the top film (10).
10. The film structure according to claim 1, wherein the laser-inscribable layer (20) comprises an aluminum layer with a black color.
11. The film structure according to claim 1, wherein the top film (10) comprises a transparent layer in the film structure.
12. The film structure according to claim 1, wherein the bottom film (40) comprises a white layer.
13. The film structure according to claim 1, wherein the bottom film (40) has at least one line of weakness (41).
14. The film structure according to claim 1, wherein an adhesive layer (50) for adhesive bonding of the film structure onto a substrate is disposed on the side (U40) of the bottom film (40) turned away from the bonding layer (30).
Description
(1) The invention will be explained in more detail in the following on the basis of figures, which show embodiments of the present invention, wherein:
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(8) A bonding layer 30 is provided for bonding the top film 10 and the laser-inscribable layer 20 disposed on its underside with the bottom film 40. The bonding layer 30 is disposed between the laser-inscribable layer 20 and the bottom film 40. The bonding layer 30 is disposed directly underneath the laser-inscribable layer 20 and directly above the bottom film 40. The bonding layer 30 may be, for example, a bonding adhesive.
(9) The bottom film 40 may be provided with an adhesive layer 50 on its side U40 turned away from the bonding layer 30, i.e. on its underside. The adhesive layer 50 disposed on the underside U40 of the bottom film 40 is used for adhesive bonding of the film structure 100 onto a substrate. For protection of the adhesive layer 50, it may be covered by a carrier film 60.
(10) The laser-inscribable layer 20 is affixed onto the underside U10 of the top film 10 and thus is permanently bonded with the top film 10. As an example, the laser-inscribable layer 20 may be vapor-deposited or sputtered onto the underside U10 of the top film 10. This means that, during the manufacture of the film structure, the laser-inscribable layer 20 is affixed not onto the bottom film 40 but instead onto the underside U10 of the top film 10, by a physical/chemical process. The laser-inscribable layer 20 may be affixed onto the underside U10 of the top film 10 in a thickness of smaller than 3 μm, preferably in a thickness between 0.1 μm and 0.4 μm.
(11) The laser-inscribable layer 20 is designed in particular as a metallic layer, which is ablatable under the action of a laser beam. “Ablatable” will be understood to mean that the layer is eroded or destroyed by the action of a laser beam, especially by the thermal energy of the laser, so that it loses its opacity. The laser-inscribable layer 20 may be designed in particular as an aluminum metallization, which is disposed on the underside U10 of the top film 10. The aluminum metallization adheres permanently to the underside U10 of the top film 10, for example by vapor deposition or sputtering.
(12) The laser-inscribable layer may be designed in particular as an aluminum layer with a black color. For application of the aluminum layer 20 onto the underside U10 of the top film 10, the aluminum may be vaporized in a vacuum atmosphere and deposited on the underside U10 of the top film 10. Thereby a silver-colored coating is obtained on the underside U10 of the top film 10. The opacity of the coating is dependent on the thickness of the coating. The coating is transparent to opaque, depending on thickness of the layer. For generation of the preferably black metallization layer 20, oxygen is injected into the vacuum. Thereby nonstoichiometric aluminum oxide, which has a black color, is formed.
(13) The top film 10 is preferably designed as a transparent layer in the film structure. The bottom film 40 may be configured as a white layer. In order to facilitate the tearing apart of the film structure in case of a manipulation attempt, for example an attempt to strip the film structure from a substrate, the bottom film 40 may be provided with at least one line of weakness 41.
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(15) Since the region in which the inscription takes place is sealed between the top film 10 and the bottom film 40, no health-endangering and environmentally polluting emissions to the outside occur during inscription of the film structure 100 with the laser beam 2. The film structure 100 thus offers high-level intrinsic protection of the registered inscription pattern against chemical and mechanical aggressions.
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(17) The heating developed in this region during the laser marking on the basis of the energy input by the laser beam leads to a melting together of the respective materials of the top film 10, of the laser-inscribable layer 20, of the bonding layer 30 and of the bottom film 40. Thereby a conglomerate comprising the top film 10, the laser-inscribable/laser active layer 20, the bonding layer 30 and the bottom film 40 fused together with one another is formed in the melting region 104 of the film structure 100.
(18) The bottom film 40 absorbs the laser energy of the laser 1 efficiently during the laser inscription, whereby a melting of the bottom film 40 together with the other layers, especially the top film 10, is made possible. In addition, the bonding layer 30 becomes mobile due to the heat input as a consequence of the laser action and thus likewise intensifies the interactions between the top film 10, the laser-inscribable layer 20 and the bottom film 40 due to an enlargement of the local contact face and a mixing with the resulting melt.
(19) Due to the fusion, in the melting region 104, of the bottom film 40 with the top film 10 and the laser-inscribable layer 20 affixed onto its underside U10, a local strengthening of the adhesive force results in the film composite 100 in the region containing the inscription after the laser action. Furthermore, a weakening of the structure of the top film 10 takes place due to the melting of the materials, thus facilitating a further tearing of the film during an attempt to separate the individual film layers from one another.
(20) The interactions between the top film 10, the laser-inscribable layer 20, the bonding layer 30 and the bottom film 40 occur in the region in which the laser beam acts on the film structure, i.e. in the region inscribed after the laser action. At a border 103 between the inscribed region 101 and the non-inscribed region 102, i.e. at the edge of the inscription, a change of the interaction, especially of the adhesion, takes place between the top film 10, the laser-inscribable layer 20, the bonding layer 30 and the bottom film 40. The change of the interaction has the consequence that the top film 10 and the bottom film 40 fuse together with one another in the inscribed region 101, and in the non-inscribed region 102 of the film structure they are not fused together with one another but instead are separated from one another by the intact laser-inscribable layer 20 and the bonding layer 30. Furthermore, in the non-inscribed region 102 of the film structure, the laser-inscribed layer 20 is separated from the bottom film 40 by the bonding layer 30.
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LIST OF REFERENCE SYMBOLS
(23) 1 Laser 2 Laser beam 10 Top film 20 Laser-inscribable layer 30 Bonding layer 40 Bottom film 50 Adhesive layer 60 Carrier film 100 Film structure