Lighting module having a flexible guide sheet with integrated antenna
Patent Information
- Application Number
- EP2023750637
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-09-09
- Filing Date
- 2023-08-08
- Publication Date
- 2025-07-16
AI Technical Summary
Conventional light modules for displaying light patterns are expensive, sensitive to environmental conditions, and require dedicated modules for telecommunications and detection functions, leading to bulky and costly systems that are difficult to integrate into various equipment.
A flexible light module incorporating a set of flexible guide sheets with integrated light injection elements and a metallic nanometric mesh antenna, allowing for the display of light patterns while performing telecommunications and detection functions, with the antenna being invisible to the naked eye and thus non-intrusive to the light function.
The flexible light module provides a robust, cost-effective solution for displaying light patterns and performing telecommunications and detection functions, enhancing integration into various equipment without degrading the light function, and offering improved compactness and efficiency.
Smart Images

Figure 1.1
Abstract
Description
Flexible guide sheet light module with integrated antenna
[0001] The present invention relates to the field of light modules, in particular light guide light modules. The invention applies in particular, but not exclusively, to the display of light patterns.
[0002] Many devices are increasingly incorporating lighting functions, particularly for information signaling purposes, for aesthetic personalization or to create ambiance.
[0003] It is also required to be able to display light patterns with a high level of resolution.
[0004] To do this, it is known to use screens, such as LCD screens.
[0005] However, such technology is not only expensive but also sensitive to environmental conditions such as temperature, humidity or UV radiation.
[0006] What's more, it is preferable to have a flexible light module to facilitate its integration into any type of equipment.
[0007] In addition, many devices now require multiple functions, including telecommunications and / or detection functions. Providing a dedicated module for each of these functions leads to systems that are both expensive and bulky.
[0008] There is therefore a need for a light module capable of displaying a light pattern while being robust, inexpensive and easy to integrate into any type of equipment, and capable of also performing a telecommunications and / or detection function.
[0009] The present invention improves the situation.
[0010] To this end, a first aspect concerns a light module comprising:
[0011] an assembly of at least one flexible guide sheet, each flexible guide sheet of the assembly being capable of receiving light rays through at least one edge of said flexible guide sheet and of returning the light rays in a direction substantially normal to a surface of the flexible guide sheet according to at least one pattern engraved in said flexible guide sheet, wherein the assembly being capable of returning light according to at least one pattern engraved in said assembly;
[0012] at least one light injection element capable of receiving light and distributing the light throughout at least one flexible guide sheet;
[0013] at least one light source capable of injecting light into said at least one light injection element;
[0014] a metallic nanometric mesh forming an antenna and arranged on at least one surface of at least one flexible guide sheet of the assembly.
[0015] Thus, the light module according to the invention makes it possible to perform both a light function and a function using an antenna, such as a detection and / or telecommunications function, while being easy to integrate into any type of equipment because it is in the form of a flexible sheet. In addition, the use of a flexible guide sheet allows a light pattern to be displayed over a large surface. What is more, the light function is not degraded by the antenna because it is in the form of a nanometric mesh, therefore invisible to the naked eye, regardless of the surface of the light module on which it is arranged.
[0016] According to embodiments, the metallic nanoscale mesh may comprise metallic strips of width less than 100 nanometers.
[0017] Thus, the antenna is indistinguishable to the naked eye, which means that the lighting function performed by the light module is not impacted.
[0018] According to embodiments, the module may further comprise a device connected to the metallic nanometric mesh and capable of emitting and / or receiving radiofrequency signals via said metallic nanometric mesh.
[0019] Thus, the light module is capable of performing a detection and / or telecommunications function, using an antenna integrated with the light function. Such a light module can thus be integrated into equipment with strong space constraints.
[0020] According to one embodiment, the device may be a radar.
[0021] Such an embodiment is particularly advantageous in motor vehicles, where more and more radar-type detection systems are used, in particular to provide input data to driver assistance functions.
[0022] Alternatively, the device may be a cellular telecommunications transmitter / receiver.
[0023] Such a variant is advantageous when the light module is integrated into equipment requiring a telecommunications function.
[0024] According to embodiments, each flexible guide sheet may comprise a flexible film on which a pattern is etched, and at least one protective layer covering said flexible film, said metallic nanometric mesh being arranged on a surface of said protective layer of at least one flexible guide sheet.
[0025] Thus, the protective layer fulfills both the function of protecting the flexible film and supporting the antenna, which improves the service life of the light module without reducing its compactness.
[0026] Additionally, the protective layer on which the metallic nanometric mesh is arranged can be arranged so that it can be crossed by light rays emitted by the flexible film.
[0027] Thus, the antenna is arranged towards the outside of the light module, and therefore towards the outside of a device in which the light module would be arranged, which improves its efficiency. Since the antenna comprises a nanometric mesh, it does not affect the display of the light pattern.
[0028] Additionally, the metallic nanoscale mesh may be arranged on an outer surface of the protective layer, such that the protective layer is between the flexible film and the metallic nanoscale mesh.
[0029] Thus, the antenna efficiency is maximized.
[0030] According to embodiments, the light module may comprise at least one first light injection element and a second light injection element, the at least one light source may be capable of selectively injecting light into the first light injection element and the second light injection element, and at least one first pattern and one second pattern are etched in the assembly of at least one flexible guide sheet. The first light injection element and the assembly of at least one flexible guide sheet may be arranged to project light according to the first pattern and wherein the second light injection element and the assembly of at least one flexible guide sheet may be arranged to project light according to the second pattern.
[0031] This makes it possible to display complex patterns, possibly over large areas.
[0032] Additionally, the light module may comprise a first light source capable of injecting light into the first light injection element and a second light source capable of injecting light into the second light injection element.
[0033] By providing one light source per injection element, control of the selective injection of light into the first and second injection elements is facilitated.
[0034] Additionally or alternatively, the first injection element may be arranged to inject light into a first section of the edge of the guide sheet of the assembly, and the second injection element may be arranged to inject light into a second section of the edge of the flexible guide sheet, a first portion of the flexible guide sheet located opposite the first section of the edge being etched according to the first pattern, and a second portion of the flexible guide sheet located opposite the second section of the edge being etched according to the second pattern.
[0035] Thus, several patterns can be selectively displayed on the same flexible guide sheet.
[0036] Alternatively, the assembly comprises at least a first and a second flexible guide sheet, the first pattern being etched in the first flexible guide sheet and the second pattern being etched in the second flexible guide sheet, the first injection element being arranged to inject light into an edge of the first flexible guide sheet and the second injection element being arranged to inject light into an edge of the second flexible guide sheet.
[0037] In these embodiments, a pattern is etched into each flexible guide sheet, which makes it possible to multiply the patterns, without reducing their size, for the same flexible guide sheet format.
[0038] Additionally, the first and second flexible guide sheets may be superimposed in the light module, in order to project the first and second patterns in a common area of the light module.
[0039] It is thus possible to create an animation by varying a pattern in the common area.
[0040] Alternatively, the first and second flexible guide webs may be positioned adjacent to each other so as to project the first and second patterns at separate positions.
[0041] This makes it possible to create animations with spatial displacement of a pattern, or to project several patterns at once, which increases the number of pattern combinations made possible for a given number of flexible guide sheets.
[0042] According to embodiments, the light module may further comprise a control element capable of controlling said at least one source in order to selectively project light according to said at least one pattern.
[0043] Thus, a single element is capable of controlling the injection of light selectively into one or more light injection elements of the light module, which improves the synchronization of the display of the light pattern(s) relative to each other.
[0044] According to embodiments, each flexible guide web of the assembly may comprise a film of polycarbonate, PC, polymethyl methacrylate, PMMA, thermoplastic polyurethane, TUP, or polyethylene terephthalate, PET.
[0045] Such materials make it possible to produce a flexible and transparent guide sheet.
[0046] According to embodiments, each flexible guide web may comprise a film comprising microstructures, wherein each of the first and second patterns are etched by ultraviolet printing of the microstructures of the film.
[0047] Such microstructures make it possible to produce high-resolution patterns while maintaining a high level of transparency of the flexible guide sheet.
[0048] A second aspect of the invention relates to exterior equipment for a motor vehicle comprising a light module according to the first aspect of the invention.
[0049] According to embodiments, the equipment may be a front lighting device for a motor vehicle.
[0050] Additionally or alternatively, the external equipment may further comprise a sensor capable of detecting a signal from an electromagnetic wave repeated or amplified by the metallic nanometric mesh.
[0051] Thus, the light module can also have the function of repeating a signal in order to facilitate its detection.
[0052] A third aspect of the invention relates to a method for manufacturing a light module comprising the following steps:- providing a roll of flexible film capable of guiding light in its thickness;- etching by ultraviolet printing at least one pattern on said roll of flexible film;- cutting said roll to obtain at least one flexible film of a given dimension, the flexible film comprising said etched pattern;- obtaining a metallic nanometric mesh forming an antenna;- arranging said metallic nanometric mesh on the flexible film so as to form a set of at least one flexible guide sheet;- arranging at least one injection element relative to the set of at least one flexible guide sheet to form a light module,- arranging at least one light source in the light module so as to inject light into said at least one light injection element.
[0053] According to embodiments, obtaining the nanometric mesh forming an antenna comprises the following steps: - providing a substrate roll; - cutting a portion of the substrate roll; - producing the metallic nanometric mesh on the cut portion or on the substrate roll before cutting the portion.
[0054] The metal nano-mesh can be arranged on the flexible film by depositing the cut portion with the metal nano-mesh to form a protective layer of the etched flexible film.
[0055] Additionally, the metallic nanometric mesh can be produced on the part cut by lithography, or on the substrate roll before cutting, by placing a complementary mask of the mesh on the cut part of the roll.
[0056] Other characteristics and advantages of the invention will appear on examining the detailed description below, and the appended drawings in which:
[0057] illustrates a light module according to embodiments of the invention;
[0058] illustrates a side view of a protective layer of a light module according to embodiments of the invention;
[0059] illustrates a front view of a metallic nanoscale mesh on a protective layer of a light module according to embodiments of the invention;
[0060] illustrates an enlarged view of a metallic nanoscale mesh forming an antenna of a light module according to embodiments of the invention;
[0061] illustrates an injection element of a light module according to an embodiment of the invention;
[0062] illustrates a light module according to a first embodiment of the invention;
[0063] illustrates a light module according to a second embodiment of the invention;
[0064] illustrates a light module according to a third embodiment of the invention;
[0065] illustrates a light module according to a fourth embodiment of the invention;
[0066] illustrates equipment comprising a light module according to embodiments of the invention;
[0067] is a diagram illustrating the steps of a method of manufacturing a light module according to one embodiment of the invention.
[0068] The description focuses on the characteristics that distinguish the methods or the light module from those known in the state of the art.
[0069] The present invention presents a light module 100 according to embodiments of the invention.
[0070] The light module 100 comprises a flexible guide sheet 110 capable of receiving light rays via an edge 116 and of returning the light rays in a direction Z substantially normal to a surface of the flexible guide sheet which thus extends in an XY plane on the.
[0071] A guide sheet is understood to mean an optical guide element of which one of the dimensions is much smaller than the other two dimensions in space, for example smaller by one or more orders of magnitude. As illustrated in the, here we consider a flexible guide sheet of which the thickness along the Z axis is at least two orders of magnitude smaller than its dimensions along the XY plane in which the flexible guide sheet 110 extends.
[0072] The flexible guide sheet 110 may comprise a flexible film 111 at its core comprising at least one edge 116 capable of guiding the light rays in a global direction X, and comprising a set of microstructures 113 capable of returning the light rays guided in the flexible film 111 outside the flexible guide sheet 110, in particular in one or more directions substantially along the Z axis.
[0073] The flexible film 111 may be a substrate film made of polycarbonate, PC, polymethyl methacrylate, PMMA, thermoplastic polyurethane, TUP, or polyethylene terephthalate, PET. The flexible film 111 may have a thickness, i.e. a dimension along the Z axis, of between 12 and 1000 micrometers. More specifically, the thickness of the flexible film 111 may be between 50 and 1000 micrometers, for example between 200 and 500 micrometers. Alternatively, it is the flexible guide sheet 110 which has a thickness of between 200 and 1000 micrometers.
[0074] The aforementioned materials, combined with a low thickness as described above, make it possible to obtain a flexible film 111. Other materials may be provided for the composition of the flexible film 111. However, it is preferable according to the invention to provide deformable and transparent materials.
[0075] A thin coating of microstructures 113 may be applied to one of the faces of the flexible film 111, or be integrated into the flexible film 111. The coating of microstructures 113 may in particular have a thickness along the Z axis of less than 20 micrometers.
[0076] Such microstructures 113 may have a general bump shape, on which the light rays are reflected in a direction substantially along the Z axis. Such microstructures 113 may be capable of causing the light rays emerging from the flexible film 111 to form a pattern. For this purpose, the microstructures 113 may be etched by ultraviolet printing, according to the desired pattern.
[0077] Microstructures 113 are structures or irregularities of the flexible film, the dimensions of which are less than a few micrometers. The microstructures thus also cover nanometric structures. Such sizes of microstructures 113 make it possible to ensure high transparency of the flexible film 111. In particular, a transparency of the order of 97% can be obtained in practice by the use of microstructures 113. Alternatively, the flexible guide sheet can be semi-transparent or opaque.
[0078] Advantageously, the microstructures 113 can be distributed along the X axis so that a linear density of microstructures 113 is proportional to the distance from the edge 116 by which the light rays injected by the injection element 120 are received. In other words, the further the microstructures 113 are from the edge 116, the more densely they are grouped. Such a distribution advantageously makes it possible to ensure a homogeneous distribution along the X axis of the light intensity of the pattern emitted by the flexible guide sheet 110.
[0079] The flexible guide sheet 110 may further comprise one or two protective layers 112.1 and 112.2, which make it possible to encapsulate the flexible film 111 and to protect it mechanically. In addition, at least one of the protective layers 112.1 and 112.2 may optionally comprise an anti-UV treatment, making it possible to protect the flexible film against UV rays, once the microstructures 113 have been etched. Without such UV protection, the pattern projected by the flexible guide sheet 110 is likely to degrade over time, in particular when exposed to sunlight.
[0080] The flexible film 111 and the protective layers 112.1 and 112.2 are shown spaced apart on the, for illustrative purposes only. It will be understood, however, that the protective layers 112.1 and 112.2 may be attached to the flexible film, in particular by lamination. The light module 100 may comprise only one of the protective layers 112.1 and 112.2 shown on the.
[0081] According to the invention, at least one of the protective layers 112.1 and 112.2 comprises a metallic nanometric mesh 114 forming an antenna. Such an antenna in an XY plane is also called a patch antenna. Such an antenna may belong to a wireless telecommunications device, such as a cellular transmitter / receiver, for example 3G, 4G, 5G or any subsequent generation, or may belong to a detection device such as a radar.
[0082] Such a metallic nanoscale mesh 114 is invisible to the naked eye, which allows the protective layer 112.1 or 112.2 on which the mesh is deposited to be transparent. As shown in the, the mesh 114 may be arranged on the protective layer 112.1 which is traversed by the light rays reflected by the flexible film 111.
[0083] The transparency rate of the protective layer covered with the 114 mesh can be of the order of 98%.
[0084] Thus, when the mesh is arranged on the protective layer 112.1, the antenna function is maximized, since the protective layer 112.1 is oriented towards the outside of the light module 100, without degrading the light function performed by the flexible film 111 which illuminates according to a given pattern. The mesh 114 may be arranged on an internal surface of the protective layer 112.1, either between the protective layer 112.1 and the flexible film 111, or may be arranged on an external surface of the protective layer 112.1, as shown in the. Similarly, as a variant, the mesh 114 may be arranged on an internal surface of the protective layer 112.2, either between the protective layer 112.2 and the flexible film 111, or on an external surface of the protective layer 112.2.
[0085] Like the flexible film 111, the protective layer comprising the mesh 114 may be flexible, and may thus be made of a material such as PMMA, PET, PC. For example, the protective layer may be made of the same material as the flexible film 111. Alternatively, the material of the protective layer may be rigid and may be any plastic or glass-based material.
[0086] According to embodiments, the antenna formed by the mesh 114 may be capable of transmitting and / or receiving radiofrequency signals of frequencies between 1 MHz and 100 GHz, for example between 400 MHz and 92 GHz.
[0087] The mesh 114 can furthermore make it possible to fulfill a defrosting function, by circulating an electric current in the mesh 114, which is particularly advantageous when the light module is exposed to weather conditions which may vary, in particular when the light module is installed in motor vehicle equipment, such as a lighting device.
[0088] The guide sheet 110 being flexible, it is not necessarily included in a plane but can be curved, depending on the position in which it is placed and the mechanical constraints applied to it.
[0089] The part of the light module 100 illustrated in the also comprises a light injection element 120, also called a light bar, because it extends longitudinally in a Y direction, and is capable of injecting light in a direction normal to its longitudinal direction, for example along the X axis when it is arranged in the manner shown in the.
[0090] The light injection element 120 is of rectangular or square cross-section on the. However, the light injection element 120 may have a round, oval, or polygonal cross-section.
[0091] Thus, the light injection element 120 comprises an output surface 122 extending in the longitudinal direction and capable of injecting light in a direction substantially normal to the output surface 122. The light injection element 120 further comprises an input surface 121, at one end of the light injection element 120, capable of receiving light rays from a light source 130, and the light injection element 120 is capable of guiding the light longitudinally along the Y axis by distributing it on the output surface 122. The distribution of light by the output surface 122 will be better understood in light of the description of the.
[0092] No restrictions are attached to the light source 130. It may for example be an electroluminescent source of the LED type for example, having the advantage of small size, low energy consumption and low heating. The light source 130 may be capable of generating light in a range of wavelengths. Such an interval may be centered around a visible color, in order to generate colored light, for example blue, red or green. Alternatively, the light source 130 may emit light rays over the entire range of wavelengths visible to the human eye, so as to generate white light. A very restricted range of wavelengths may be produced by a laser-type light source 130.
[0093] Alternatively, the light source 130 is not arranged directly opposite the entry surface 121 of the injection element 120, but the light module 100 further comprises an optical fiber placed between the source 130 and the injection element 120, which makes it possible to offset the source 130 relative to the assembly formed by the injection element 120 and the flexible guide sheet 110.
[0094] This is a side view, in an XZ plane of the protective layer 112.1 covered with a metallic nanometric mesh 114, of a light module according to embodiments of the invention.
[0095] The protective layer 112.1 may have a thickness, i.e. a dimension along the Z axis, of the order of a millimeter, for example between 0.5 and 2 mm, in particular equal to 1.1 mm.
[0096] The mesh 114 may have a thickness along the Z axis of the order of a micron, for example between 1 and 5 microns, in particular equal to 3 microns.
[0097] There are no restrictions on the metal of the 114 mesh, which can be copper, silver, platinum, aluminum or nickel.
[0098] The light module 100 may further comprise a device 115 capable of receiving and / or transmitting signals via the antenna formed by the mesh 114. The device 115 may for example be a radar or a telecommunications transmitter / receiver, for example a cellular transmitter / receiver. Alternatively, the device 115 is an interface between the mesh 114 and a module capable of receiving and / or transmitting signals via the antenna, and not shown in the.
[0099] This is a top view, in an XY plane, of a metallic nanometric mesh 114 covering a protective layer 112.1 of a light module according to embodiments of the invention.
[0100] The mesh 114 is thus distributed over the hatched surface shown in the. Thus, the entire hatched surface is not covered with metal, but is covered with nanometric metal strips, or more generally with metal patterns of nanometric dimensions, in such a way that the metal mesh 114 forms a nanogrid which is not visible to the naked eye. Thus, when the substrate on which the mesh 114 is deposited is transparent, as is the case for the protective layer 112.1, it is possible to see through the substrate covered with the mesh 114.
[0101] The surface covered by the mesh 114 may be of the order of several tens of millimeters, for example of the order of 300 mm. For example, the external surface shown on the may be a square with a side of 300 mm. However, no restriction is attached to the dimensions or the shape of the surface covered by the mesh 114 according to the invention. The geometry of the antenna thus formed by the metal mesh is linked to the value of the detection frequency. Indeed, if the detection frequencies are in a range of the order of GigaHertz, GHz, the dimension of the antenna formed is approximately 300 mm. In a range in the TeraHertz, THz domain, the dimension of the antenna is less than a few micrometers, 1 THz corresponding to 333 micrometers of wavelength.
[0102] This shows an enlarged, or zoomed, view compared to the previous figures of the mesh 114, so as to distinguish the nanometric metal strips 116 which form the mesh 114. The strips 116 may have a nanometric width, for example equal to a few tens of nanometers, in particular equal to 50 nanometers. The strips 116 may be produced by etching side by side metal base patterns of nanometric dimensions. Another function which may be enabled by such a nanometric metal mesh is to promote the transmission of waves in front of the light module, which means that the mesh functions as an amplifier or a signal repeater. It may thus promote the reception of a signal by another sensor integrated in equipment comprising the light module or in equipment close to the light module, such as a vehicle headlight.
[0103] This presents an injection element 120 of a light module 100 according to an embodiment of the invention.
[0104] The injection element 120 may comprise a plurality of injection guides 123 capable of receiving light from the source 130 via the input surface 121 and of guiding the light to a longitudinal position of the output surface 122, the longitudinal positions of the light guides being distinct so as to distribute the light to at least several longitudinal positions of the output surface 122.
[0105] It is thus made possible to inject light at different longitudinal positions along the Y axis of the edge 116. Each longitudinal position of the edge 116 can correspond to a guide line of the flexible film 111, capable of guiding the light along the X axis along such a guide line.
[0106] Such an association of a flexible guide sheet 110, an injection element 120 and a source 130 thus makes it possible to project light in the Z direction via a flexible, transparent, semi-transparent or opaque surface, with good surface homogeneity and according to a given pattern.
[0107] In practice, such a light module can emit a pattern with a brightness of between 100 and 1000 Candelas per square meter, with a light extraction efficiency that can vary between 25% and 80%.
[0108] Details of the structure and arrangement of these elements 110, 120 and 130 are further described in the international patent application published under number WO2011130715A2.
[0109] Thus, a light module according to the invention comprises:- an assembly of at least one guide sheet, such as the flexible guide sheet 110 illustrated in the, the assembly being capable of returning light according to at least one pattern;- at least one light injection element which may be the injection element 120 described with reference to figures 1a and 1b; and- at least one light source such as the light source 130 previously described with reference to the, capable of injecting light selectively into said at least one injection element;- a metallic nanometric mesh forming an antenna, such as the mesh 114 arranged at least partially on a surface of a flexible guide sheet 110.
[0110] Thus, such a light module 100 can be easily integrated into any type of equipment, including automotive equipment comprising non-flat and difficult-to-access surfaces, while also performing an antenna function without degrading the pattern displayed by the flexible guide sheet. The compactness associated with the equipment in which the light module 100 is integrated is thus improved. Signaling and telecommunications modules are currently difficult to install in the same space due to the quantity of cables required. The light module 100 according to the invention thus allows a significant gain in compactness.
[0111] “Pattern” means any predefined spatial distribution or distribution of the light intensity emitted by the light module. In particular, reference is made here to a two-dimensional or one-dimensional pattern. A pattern may thus be a two-dimensional shape or symbol obtained by contrast between the light intensities of different positions in the XY plane of the flexible guide sheet 110. The pattern may also comprise several shapes or symbols. Alternatively, a pattern covers a predefined, or intentional, spatial distribution of the light intensity not showing a general shape, such as a distribution inducing a cloud of light points. In the context of the present invention, a pattern is formed by injecting light into an injection element which is arranged relative to a flexible guide sheet so as to form the pattern on the flexible guide sheet.
[0112] Particular embodiments of the invention are described below.
[0113] Illustrates a light module 200 according to a first embodiment of the invention.
[0114] The light module 200 comprises a flexible guide sheet 210, an injection element 220 and a light source 230, similar to the flexible guide sheet 110, the injection element 120 and the light source 130 previously described with reference to FIGS. 1a and 1b. Thus, the flexible guide sheet 210 comprises a mesh 114 as previously described, although it is not visible in the.
[0115] The flexible guide sheet 210 is etched according to a pattern 250 comprising a rectangular light zone, capable of returning the light rays injected by the injection element 220, following activation of the light source 230. No restriction is attached to the geometry of the pattern 250, which is more generally as previously defined.
[0116] According to certain embodiments, the luminous zone 250 may be arranged opposite an optical projection surface of a lighting device, in the case where the luminous module 250 is integrated into such a lighting device, in particular for a motor vehicle. The luminous zone 250 may further be shaped to overlap with the optical projection surface of the lighting device.
[0117] Advantageously, the light source 430 is controlled by a control element 240. It is thus made possible to activate or deactivate the light source 230 so as to control the display of the pattern 250.
[0118] Thus, in the first embodiment, the light module comprises a single flexible guide sheet, a single injection element and a single light source.
[0119] Illustrates a light module 300 according to a second embodiment of the invention.
[0120] In the second embodiment, several injection elements are arranged to inject light into a single flexible guide sheet, comprising several patterns.
[0121] In particular, in the example of the, a first injection element 320.1 and a second injection element 320.2 are arranged so as to inject light into an edge 314 of a flexible guide sheet 310.
[0122] The first and second injection elements 320.1 and 320.2 may be similar to the injection element 120 described with reference to FIGS. 1a and 1b. Similarly, the flexible guide sheet 310 may correspond to the flexible guide sheet 110 previously described. Thus, the flexible guide sheet 310 comprises a mesh 114 as previously described, although it is not visible on the.
[0123] As shown in the, the first injection element 320.1 and the second injection element 320.2 are arranged to inject light into the edge 314, at distinct longitudinal positions, along the Y axis.
[0124] Note that, due to its flexibility, the guide sheet 310 may not be flat but may be curved. This thus presents the light module 300 when the guide sheet is flat, for example placed on a flat rigid support.
[0125] The first injection element 320.1 is thus able to inject light into the edge 314, which is then guided by the flexible guide sheet 310 into a first part 315.1 of the flexible guide sheet 310. The second injection element 320.2 is able to inject light into the edge 314, which is then guided into a second part 315.2 of the flexible guide sheet 310.
[0126] For this purpose, a first source 330.1 is arranged opposite an entry surface of the first injection element 320.1 so as to propagate light rays inside the first injection element 320.1 and therefore towards the first part 315.1 of the flexible guide sheet 310. A second source 330.2 is arranged opposite an entry surface of the second injection element 320.2 so as to propagate light rays inside the second injection element 320.2 and therefore towards the second part 315.2 of the flexible guide sheet 310.
[0127] Alternatively, a single source may be provided and the light module 300 comprises a first optical fiber capable of conveying the light from the single source to the input surface of the first injection element 320.1 and a second optical fiber capable of conveying the light from the single source to the input surface of the second injection element 320.2.
[0128] The first and second sources 330.1 and 330.2, or the single source, may selectively inject into the first injection element 320.1 and / or into the second injection element 320.2. Such selective injection may be controlled by a control element 340 connected to both sources 330.1 and 330.2, or controlling the supply of both sources 330.1 and 330.2.
[0129] A first pattern 316.1 is etched in the first portion 315.1 while a second pattern 316.2 is etched in the second portion 315.2. The selective injection of light into the first injection element 320.1 and / or into the second injection element 320.2 thus makes it possible to project the first pattern, the second pattern, none of the patterns or both patterns at the same time, thus making it possible, by dynamic control, to produce an animation from at least the first and second patterns.
[0130] In the example of the, the first and second patterns 316.1 and 316.2 have distinct shapes. However, in accordance with the definition of pattern previously given, the patterns can be any intentional, or predetermined, spatial variation of light intensity. Furthermore, when the patterns are shapes, the first and second patterns 316.1 and 316.2 can have identical shapes. Animation is then enabled by the spatial displacement of the pattern from the first part 315.1 to the second part 315.2, or vice versa. Furthermore, the colors projected respectively for each pattern can vary, when the sources 330.1 and 330.2 produce light of different colors.
[0131] An example with two patterns and two injection elements has been shown in the. However, the second embodiment also covers a light module with a flexible guide sheet with three or more parts, each part comprising an etched pattern, and with at least three injection elements, each injection element being placed opposite one of the parts.
[0132] Dedicated sources for each injection element can be provided for this purpose, or a single source with several optical fibers can be provided for this purpose.
[0133] Illustrates a light module 400 according to a third embodiment of the invention.
[0134] In the third embodiment of the invention, the light module 400 comprises at least a first flexible guide sheet 410.1 and a second flexible guide sheet 410.2, the two flexible guide sheets being superimposed, which implies that at least a portion of the first flexible guide sheet 410.1, in the XY plane, is superimposed with at least a portion of the second flexible guide sheet 410.2, in a common area, which corresponds to a set of positions in the XY plane.
[0135] Preferably, the first and second flexible guide sheets 410.1 and 410.2 have the same dimensions in the XY plane, and are completely superimposed.
[0136] Note that due to their flexibility, the guide sheets may not be flat but may be curved. This thus presents the light module 400 when the guide sheets are flat, for example stacked on a flat support.
[0137] Such an overlay is particularly advantageous because the flexible guide sheets are preferably transparent as detailed previously.
[0138] Thus, the first and second flexible guide sheets 410.1 and 410.2 are capable of projecting a first pattern 416.1 and a second pattern 416.2 respectively in a common area.
[0139] A first injection element 420.1 is arranged to inject light into an edge of the first flexible guide sheet 410.1 and a second injection element 420.2 is adapted and arranged to inject light into an edge of the second guide sheet 410.2.
[0140] The first and second injection elements 420.1 and 420.2 may be similar to the injection element 120 described with reference to FIGS. 1a and 1b. Similarly, at least one of the flexible guide sheets 410.1 and 410.2 may correspond to the flexible guide sheet 110 previously described. Preferably, only one of the flexible guide sheets 410.1 and 410.2 comprises a mesh 114 forming an antenna as previously described, although it is not visible on the. Preferably, the flexible guide sheet located towards the top, i.e. towards the outside of the light module, comprises the mesh 114, i.e. the second flexible guide sheet 410.2. Thus, the function of receiving / transmitting signals by the antenna formed by the mesh 114 is optimized.
[0141] A first source 430.1 is arranged opposite an entry surface of the first injection element 420.1 so as to propagate light rays inside the first injection element 420.1 and therefore towards the first flexible guide sheet 410.1. A second source 430.2 is arranged opposite an entry surface of the second injection element 420.2 so as to propagate light rays inside the second injection element 420.2 and therefore towards the second flexible guide sheet 410.2.
[0142] Alternatively, a single source may be provided and the light module comprises a first optical fiber capable of conveying light from the single source to the input surface of the first injection element 420.1 and a second optical fiber capable of conveying light from the single source to the input surface of the second injection element 420.2.
[0143] The first and second sources 430.1 and 430.2, or the single source, may selectively inject into the first injection element 420.1 and / or into the second injection element 420.2. Such selective injection may be controlled by a control element 440 connected to both sources 430.1 and 430.2, or controlling the supply of both sources 430.1 and 430.2.
[0144] The first pattern 416.1 is etched in the first flexible guide sheet 410.1 while the second pattern 416.2 is etched in the second flexible guide sheet 410.2. The selective injection of light into the first injection element 420.1 and / or into the second injection element 420.2 thus makes it possible to project the first pattern, the second pattern, none of the patterns or both patterns at the same time, thus making it possible, by dynamic control, to produce an animation from at least the first and second patterns.
[0145] In the example of the, the first and second patterns 416.1 and 416.2 have distinct shapes, and are identical to the patterns 316.1 and 316.2 of the, for illustrative purposes. However, in accordance with the definition of pattern previously given, the patterns can be any intentional, or predetermined, spatial variation of light intensity. Furthermore, when the patterns are shapes, the first and second patterns 416.1 and 416.2 can have identical shapes but distinct colors. Indeed, the colors projected respectively for each pattern can vary, when the sources 430.1 and 430.2 produce light of different colors.
[0146] An example with two patterns, two injection elements and two flexible guide sheets has been shown in the. However, the third embodiment also covers a light module with at least three flexible guide sheets with at least three injection elements, each injection element being placed opposite one of the flexible guide sheets, and one of the flexible guide sheets comprising the mesh 114. Sources dedicated to each injection element may be provided for this purpose, or a single source with several optical fibers may be provided for this purpose.
[0147] At least one of the flexible guide sheets may be transparent. Alternatively, according to the third embodiment, the flexible guide sheet located below the light module 400, i.e. the first flexible guide sheet 410.1, may be opaque or semi-transparent. On the other hand, the second flexible guide sheet 410.2 is transparent or semi-transparent, so as to allow at least part of the light emitted by the first flexible guide sheet 410.2 to pass through.
[0148] Illustrates a light module 500 according to a fourth embodiment of the invention.
[0149] In the fourth embodiment of the invention, the light module 500 comprises at least a first flexible guide sheet 510.1 and a second flexible guide sheet 510.2, the two flexible guide sheets being placed next to each other, and the two flexible guide sheets are thus able to project light rays from distinct positions in the XY plane in which the flexible guide sheets mainly extend.
[0150] Note that due to their flexibility, the guide sheets may not be flat but may be curved. The present light module 500 is therefore present when the flexible guide sheets are flat, for example placed on a flat rigid support.
[0151] Thus, the first flexible guide sheet 510.1 is capable of projecting a first pattern, not shown, at a first position of the XY plane, and the second flexible guide sheet 510.2 is capable of projecting a second pattern 516.2 at a second position of the XY plane, the first and second positions being distinct, for example next to each other. Each projected pattern may comprise a symbol or a part of a symbol. When a pattern of a flexible guide sheet comprises a part of a symbol, such a part may be complementary to another part of a symbol formed by the pattern of another flexible guide sheet, or other parts of a symbol formed by the patterns of other flexible guide sheets.
[0152] A first injection element 520.1 is arranged to inject light into an edge of the first flexible guide sheet 510.1 and a second injection element 520.2 is adapted and arranged to inject light into an edge of the second guide sheet 510.2.
[0153] The relative arrangement of the injection elements and the flexible guide sheets is in accordance with the explanations previously given, and is not detailed again for the fourth embodiment of the.
[0154] The first and second injection elements 520.1 and 520.2 may be similar to the injection element 120 described with reference to FIGS. 1a and 1b. Similarly, at least one of the flexible guide sheets 510.1 and 510.2 may correspond to the flexible guide sheet 110 previously described. Preferably, only one of the flexible guide sheets 510.1 and 510.2 comprises a mesh 114 forming an antenna as previously described, although it is not visible on the. In this case, the other flexible guide sheets are similar to the flexible guide sheet 110 previously described, except that they do not comprise a mesh 114.
[0155] A first source 530.1 is arranged opposite an entry surface of the first injection element 520.1 so as to propagate light rays inside the first injection element 520.1 and therefore towards the first flexible guide sheet 510.1. A second source 530.2 is arranged opposite an entry surface of the second injection element 520.2 so as to propagate light rays inside the second injection element 520.2 and therefore towards the second flexible guide sheet 510.2.
[0156] Alternatively, a single source may be provided and the light module 500 comprises a first optical fiber capable of conveying the light from the single source to the input surface of the first injection element 520.1 and a second optical fiber capable of conveying the light from the single source to the input surface of the second injection element 520.2.
[0157] The first and second sources 530.1 and 530.2, or the single source, may selectively inject light into the first injection element 520.1 and / or into the second injection element 520.2. Such selective injection may be controlled by a control element 540 connected to both sources 530.1 and 530.2, or controlling the power supply of both sources 530.1 and 530.2.
[0158] The first pattern is etched into the first flexible guide sheet 510.1 while the second pattern is etched into the second flexible guide sheet 510.2. The selective injection of light into the first injection element 520.1 and / or into the second injection element 520.2 thus makes it possible to project the first pattern, the second pattern, none of the patterns or both patterns at the same time, thus making it possible, by dynamic control, to produce an animation from at least the first and second patterns.
[0159] In the example of the, a light module 500 comprising twelve flexible guide sheets, twelve injection elements and twelve light sources, arranged in a matrix with three rows and four columns, has been shown, for illustrative purposes only.
[0160] No restriction is attached to the number of flexible guide sheets in the third embodiment. The third embodiment thus applies to N flexible guide sheets, N injection elements respectively associated, and N light sources, or a single source connected by N optical fibers to the N injection elements, N being any integer greater than or equal to 2.
[0161] There are also no restrictions on the arrangement of the flexible guide sheets relative to each other. When they are positioned in matrices, there are no restrictions on the number of rows or the number of columns.
[0162] The first and second patterns may have distinct shapes, and may for example be identical to patterns 316.1 and 316.2 of the. However, in accordance with the definition of pattern previously given, the patterns may be any predetermined spatial distribution of light intensity. Furthermore, when the patterns are shapes, the first and second patterns may have identical shapes but distinct colors. Indeed, the colors projected respectively for each pattern may vary, when the sources 530.1 and 530.2 produce light of different colors.
[0163] The flexible guide webs may be connected to each other by a support matrix structure, which may itself be flexible. Alternatively, each flexible guide web may be connected to the surrounding flexible guide webs by fastening means, such as gluing, clamping, clipping, or any other method.
[0164] All of the light sources may be controlled by the control element 540, via a set of wires, each wire connecting the control element 540 to a light source. The wires may be carried by a structure 550 to centralize the wires and route them to the control element, thereby reducing clutter, and also allowing the wires to be hidden.
[0165] No restrictions are attached to the dimensions in the XY plane of the flexible guide webs. For example, each flexible guide web may be rectangular or square in shape, with at least one dimension between 2 and 10 cm. For example, the flexible guide webs are squares or rectangles, with:- one dimension between 2 cm and 10 cm, for example between 2 cm and 5 cm, for example equal to 5 cm; and- another dimension between 2 cm and 10 cm, for example between 2 cm and 5 cm, for example equal to 5 cm.
[0166] For example, each flexible guide sheet is a 3 cm by 3 cm square.
[0167] The second, third and fourth embodiments have been described in a manner exclusive of one another. However, it should be noted that these three embodiments can be combined in the same light module, in particular: - the second embodiment and the third embodiment can be combined: at least two flexible guide sheets are superimposed, and one of the two flexible guide sheets is associated with two light injection guides capable of injecting light selectively into two distinct parts of the guide sheet, two patterns being respectively etched in the two parts, and one of the flexible guide sheets comprises a metallic nanometric mesh 114 forming an antenna;- the second embodiment and the fourth embodiment can be combined: at least two flexible guide sheets are placed next to each other, and one of the two flexible guide sheets is associated with two light injection guides capable of injecting light selectively into two separate parts of the guide sheet, two patterns being respectively etched in the two parts, and one of the flexible guide sheets comprises a metallic nanometric mesh 114 forming an antenna; - the third embodiment and the fourth embodiment can be combined: at least two flexible guide sheets are placed next to each other, and one of the two flexible guide sheets is superimposed with a third flexible guide sheet of the light module, and one of the flexible guide sheets comprises a metallic nanometric mesh 114 forming an antenna;- the second embodiment, the third embodiment and the fourth embodiment can be combined: at least two flexible guide sheets are placed next to each other, and one of the two flexible guide sheets is superimposed with a third flexible guide sheet of the light module, and one of these three flexible guide sheets is associated with two light injection guides capable of injecting light selectively into two distinct parts of the guide sheet, two patterns being respectively etched in the two parts, and one of the flexible guide sheets comprises a metallic nanometric mesh 114 forming an antenna.;
[0168] Illustrates equipment 600 comprising a light module 100, 200, 300, 400, 500 according to one of the embodiments previously described.
[0169] No restrictions are attached to the equipment 600. Preferably, the equipment 600 is exterior equipment of a motor vehicle.
[0170] For example, the equipment 600 may be a front or rear lighting or signaling device for a motor vehicle. It is thus made possible to fulfill a lighting, signaling, telecommunications or aesthetic function, at the same time as an antenna function, for a radar or telecommunications application, for example cellular.
[0171] In the case where the equipment 600 is a front lighting device of a motor vehicle, the light module 100, 200, 300, 400, 500, can be arranged in front of a lighting module of the lighting device performing a given function, and can be capable of producing a light pattern having the shape of the lighting module, when the latter is off. It is thus made possible to harmonize a light signature of the lighting device, whether the lighting module is on or not. Such harmonization can in particular be permitted between the day and night periods.
[0172] As previously indicated, the metallic nanoscale mesh can repeat or amplify an electromagnetic wave so as to facilitate its detection by a sensor of the equipment 600 or other equipment, not shown.
[0173] This is a diagram illustrating the steps of a method of manufacturing a light module according to one embodiment of the invention.
[0174] The manufacturing method comprises a step 700 of obtaining a roll of flexible film capable of guiding light in its thickness, such as the flexible film 111 described with reference to the. For example, the roll has at least one dimension greater than about ten centimeters, or even one meter. Preferably, the roll has a width of the order of several tens of centimeters, or one meter, and a greater length, for example greater than one meter. The thickness of the roller is however small and equal to the thickness of the flexible film previously described, so that several flexible guide sheets can be obtained by cutting the roll.
[0175] In a step 701, at least one pattern is engraved on the roll by ultraviolet printing. Microstructures such as the microstructures 111 previously described are thus formed on the surface of the flexible film, the microstructures being capable of returning the light guided in the flexible film towards the outside of the flexible film, in particular in a direction substantially normal to the plane in which the flexible film extends when it is placed on a flat rigid support. The same pattern can in particular be engraved at regular intervals on the roll of flexible film.
[0176] In a step 702, the roll is cut to obtain a flexible film of a given dimension, on which the pattern is engraved.
[0177] In a step 703, a metallic nanometric mesh forming an antenna is obtained.
[0178] In a step 704, the metallic nanometric mesh forming an antenna is arranged relative to the cut flexible film so as to form at least one flexible guide sheet. Several flexible guide sheets can also be obtained in step 704, with identical or different patterns, so as to then be superimposed according to the third embodiment, or arranged next to each other according to the fourth embodiment.
[0179] In a step 705, at least one injection element is arranged relative to the set of at least one previously cut flexible guide sheet. As detailed previously, several injection elements may be arranged relative to one or more flexible guide sheets, according to the second, third and fourth embodiments.
[0180] In a step 706, at least one light source is arranged to inject light into said at least one injection element. As previously described, a light source may be dedicated to each injection element, in which case a light source is added in each assembly for the second and third embodiments, or, alternatively, a single light source is connected to the injection elements by respective optical fibers.
[0181] The step 703 of obtaining the metallic nanometric mesh 114 may for example comprise the following sub-steps:- in a step 710, a roll of substrate is obtained;- in a step 711, a portion of the roll of substrate is cut. Preferably, the cut portion has the same dimensions as the flexible film cut in step 702;- in a step 712, the metallic nanometric mesh 114 is produced on the cut portion of the substrate. For example, the metallic nanometric mesh 114 may be produced by lithography, by depositing a mask of complementary shape on the cut portion of the substrate, and by etching the substrate with the metal of the metallic nanometric mesh 114.
[0182] Thus, in step 704, the substrate portion cut with the mesh 114 is arranged on the flexible film, by lamination for example, so as to form a protective layer of the flexible film, and thus produce the flexible guide sheet 110 as described with reference to the.
[0183] The present invention is not limited to the embodiments described above as examples; it extends to other variants.
Claims
A light module (100; 200; 300; 400; 500) comprising:a set of at least one flexible guide sheet (110; 210; 310; 410.1; 410.2; 510.1; 510.2), each flexible guide sheet of the set being capable of receiving light rays via at least one edge (116; 314) of said flexible guide sheet and of returning the light rays in a direction substantially normal to a surface of the flexible guide sheet according to at least one pattern (250; 316.1; 416.1; 316.2; 416.2) etched in said flexible guide sheet;at least one light injection element (120; 220; 320.1; 320.2; 420.1; 420.2; 520.1; 520.2) capable of receiving light and distributing the light throughout at least one flexible guide sheet; at least one light source (130; 320; 330.1; 330.2; 430.1; 430.2; 530; 530.2) capable of injecting light into said at least one light injection element; a metallic nanometric mesh (114) forming an antenna and arranged on at least one surface of at least one flexible guide sheet of the assembly. The light module of claim 1, wherein the metallic nanoscale mesh (114) comprises metallic strips (116) of width less than 100 nanometers. Light module according to claim 1 or 2, further comprising a device (115) connected to the metallic nanometric mesh (114) and capable of emitting and / or receiving radiofrequency signals via said metallic nanometric mesh. Light module according to claim 3, wherein the device (115) is a radar. The light module of claim 3, wherein the device (115) is a cellular telecommunications transmitter / receiver. Light module according to one of the preceding claims, wherein each flexible guide sheet (110; 210; 310; 410.1; 410.2; 510.1; 510.2) comprises a flexible film (111) on which a pattern (250; 316.1; 416.1; 316.2; 416.2) is etched, and at least one protective layer (112.1; 112.2) covering said flexible film, said metallic nanometric mesh (114) being arranged on a surface of said protective layer of at least one flexible guide sheet. Light module according to claim 6, wherein the protective layer (112.1) on which the metallic nanometric mesh (114) is arranged is arranged so as to be crossed by light rays emitted by the flexible film (111). The light module of claim 7, wherein the metallic nanoscale mesh (114) is arranged on an outer surface of the protective layer (112.1), such that the protective layer is comprised between the flexible film (111) and the metallic nanoscale mesh. Light module according to one of the preceding claims comprising at least one first light injection element (320.1; 420.1; 520.1) and a second light injection element (320.2; 420.2; 520.2), wherein the at least one light source (330.1; 330.2; 430.1; 430.2; 530; 530.2) is capable of selectively injecting light into said first light injection element and into said second light injection element, and at least one first pattern (316.1; 416.1) and one second pattern (316.2; 416.2) are etched in the assembly of at least one flexible guide sheet (310; 410.1; 410.2; 510.1; 510.2); wherein the first light injection element and the set of at least one flexible guide sheet are arranged to project light according to the first pattern and wherein the second light injection element and the set of at least one flexible guide sheet are arranged to project light according to the second pattern. Light module according to claim 9, comprising a first light source (330.1; 430.1; 530.1) capable of injecting light into the first light injection element (320.1; 420.1; 520.1) and a second light source (330.2; 430.2; 530.2) capable of injecting light into the second light injection element (320.2; 420.2; 520.2). A light module according to claim 9 or 10, wherein the first injection element (320.1) is arranged to inject light into a first section of the edge (314) of the guide sheet (310) of the assembly, and wherein the second injection element (320.2) is arranged to inject light into a second section of the edge of the flexible guide sheet, a first portion (315.1) of the flexible guide sheet located opposite the first section of the edge being etched according to the first pattern (316.1), and a second portion (315.2) of the flexible guide sheet located opposite the second section of the edge being etched according to the second pattern (316.2). A light module according to claim 9 or 10, wherein the assembly comprises at least a first and a second flexible guide sheet (410.1; 410.2; 510.1; 510.2), the first pattern (416.1) being etched in the first flexible guide sheet and the second pattern (416.2) being etched in the second flexible guide sheet, the first injection element (420.1; 520.1) being arranged to inject light into an edge of the first flexible guide sheet and the second injection element (420.2; 520.2) being arranged to inject light into an edge of the second flexible guide sheet. Light module according to claim 12, wherein the first and second guide sheets (410.1; 410.2) are superimposed in the light module (400), in order to project the first and second patterns (416.1; 416.2) in a common area of the light module. Light module according to claim 12, wherein the first and second guide sheets (510.1; 510.2) are placed next to each other so as to project the first and second patterns at separate positions. Module according to one of the preceding claims, further comprising a control element (240; 340; 440; 540) capable of controlling said at least one source (130; 230; 330.1; 330.2; 430.1; 430.2; 530; 530.2) in order to selectively project light according to said at least one pattern (250; 316.1; 416.1; 316.2; 416.2). Module according to one of the preceding claims, in which each flexible guide sheet (110; 210; 310; 410.1; 410.2; 510.1; 510.2) of the assembly comprises a film made of polycarbonate, PC, polymethyl methacrylate, PMMA, thermoplastic polyurethane, TUP, or polyethylene terephthalate, PET. Module according to one of the preceding claims, in which each flexible guide sheet (110; 210; 310; 410.1; 410.2; 510.1; 510.2) comprises a film (111) comprising microstructures (113), in which each pattern (250; 316.1; 416.1; 316.2; 416.2) among the first and second patterns are etched by ultraviolet printing of the microstructures of the film. Exterior equipment (600) for a motor vehicle comprising a light module (100; 200; 300; 400; 500) according to one of the preceding claims. Exterior equipment according to claim 18, the equipment (600) being a front lighting device for a motor vehicle. External equipment (600) according to claim 18 or 19, further comprising a sensor capable of detecting a signal from an electromagnetic wave repeated or amplified by the metallic nanometric mesh. A method of manufacturing a light module (100; 200; 300; 400; 500) comprising the following steps:- providing (700) a roll of flexible film (111) capable of guiding light in its thickness;- etching (701) by ultraviolet printing at least one pattern on said roll of flexible film;- cutting (702) said roll to obtain at least one flexible film of a given dimension, the flexible film comprising said etched pattern;- obtaining (703) a metallic nanometric mesh (114) forming an antenna;- arranging (704) said metallic nanometric mesh on the flexible film so as to form a set of at least one flexible guide sheet;- arranging (705) at least one injection element relative to the set of at least one flexible guide sheet to form a light module,- arranging (706) at least one light source in the light module so as to inject light into said at least one flexible guide sheet; minus one light injection element. The method of claim 21, wherein obtaining the metallic nanometric mesh (114) forming an antenna comprises the following steps:- arranging (710) a substrate roll;- cutting (711) a portion of the substrate roll;- producing (712) the metallic nanometric mesh on the cut portion or on the substrate roll before cutting the portion; wherein the metallic nanometric mesh is arranged on the flexible film (111) by depositing the cut portion with the metallic nanometric mesh to form a protective layer (112.1; 112.2) of the etched flexible film. The method of claim 22, wherein the metallic nanoscale mesh (114) is made on the lithographically cut portion by placing a complementary mask of the mesh on the cut portion of the roll.