Patent Description:
A smartcard refers to a card comprising a plurality of plastic layers that are processed so as to form a substantially monolithic block of material and a plurality of electronic components incorporated therein. The electronic components may comprise one or more antennas, for instance for imparting RFID (radio frequency identification) capabilities to the smartcard, electronic modules for storing and processing information, a corresponding network of electrical connections, additional components for inductively and/or capacitively interconnecting card-internal components, and the like.

Due to the widespread of smartcards in different fields and applications, such as for instance the field of financial transactions, there is a constant need of developing new techniques for connecting the various plastic layers so as to form the substantially monolithic material block, while at the same time appropriately encapsulating the relevant functional and electronic components.

Current approaches include incorporating discrete electronic and/or optical components, power supply devices, and the like into a smartcard in order to provide superior functionality. For example, pre-forms for smartcards may be provided, which enable the successive incorporation of specific, additional components in order to provide for customized smartcards having specific functionality. Many of these additional components may have a substantially non-planar configuration, i.e., a configuration with increased height dimensions compared to the respective lateral dimensions of any such component, thereby requiring significant efforts to be incorporated into the smartcards. Moreover, additional components must be incorporated on the basis of efficient volume production techniques, while at the same time guaranteeing a high degree of integrity with respect to tamper resistance and robustness of smartcards in view of any environmental influences and mechanical stress, in order to achieve a required long lifetime of any such smartcards.

The patent document <CIT> refers to a security document and to a method for producing same, wherein the security document comprises a card body made of a plurality of layers and at least one display module having a non-planar configuration, that is having a thickness greater than a thickness of a single layer of the card body. At least one compensation layer is added between the display module and the card substrate layer receiving the antenna connected to the display module, in order to compensate for the height difference between the card body layers and the display module. According to this method, the display module and the other non-planar electronic components are directly incorporated into the smartcard by forming respective openings in the compensation layers, by inserting the respective components and by laminating the respective layers together. Since the electronic components are directly incorporated into the card body, they are susceptible to being damaged during usage.

The patent application <CIT> refers to pre-forms for smartcards and to a method for producing same, wherein the electronic components to be incorporated into the pre-forms are preliminary "packed" and encapsulated in a plurality of plastic layers and are subsequently inserted into corresponding windows of the pre-forms. In this way, superior robustness and production yields are achieved. However, the pre-package structure comprises many layers encapsulating the electronic component, because also compensation layers are needed for compensating for the different heights of the electronic parts. Accordingly, it is difficult to meet smartcard size requirements. Moreover, the external surface of the pre-package is not planar because it tends to shrink during the lamination process and this makes the insertion process into the smartcard even more complex.

In view of the problems explained above, there is a need to provide a pre-form for a smartcard and a smartcard, wherein the electronic components are preliminarily encapsulated into a simple structure prior to incorporation into the smartcard, so that increased mechanical robustness for the electronic components is provided, while still ensuring high flexibility and meeting of the standard size requirements.

According to a first aspect of the present invention, a pre-package for a flexible printed circuit board for a smartcard is provided, the pre-package comprising the following elements:.

wherein the first material has a first VICAT softening temperature and the second material has a second VICAT softening temperature, and the third layer has a third VICAT softening temperature, wherein the third VICAT softening temperature is higher than the first VICAT softening temperature and/or than the second VICAT softening temperature.

The advantage of this solution is that the flexible printed circuit board including the non-planar circuit portions is encapsulated and protected in a pre-package of dielectric material. The pre-package has a simple structure because it comprises a limited number of layers, preferably three layers. In this way, the pre-package and the smartcard comprising the pre-package are able to fulfil ISO7810/<NUM> card quality requirements. Moreover, since the third layer comprises a hardening material having a VICAT softening temperature higher than the VICAT softening temperature of the first and/or the second layer of material, the third layer does not shrink during lamination of the smartcard as a consequence of the temperatures and the pressures applied. In this way, levelling of the outermost layer of the pre-package is optimized and the surface visibility is improved.

In the present disclosure, it has to be understood that the flexible printed circuit board has the shape of a board having a main top surface and a main bottom surface, which are referred to as "first side" and "second side", respectively. However, since there is no preferred orientation of the flexible printed circuit board, the main top surface could also represent the "second side" and the main bottom surface could also represent the "first side".

Moreover, in the present disclosure, the VICAT softening temperature is defined as the temperature at which a specimen of a given material is penetrated to a depth of <NUM> by a flat-ended needle with a <NUM><NUM> circular or square cross-section. For the VICAT A test, a load of <NUM> N is used. For the VICAT B test, the load is <NUM> N. Standards to determine VICAT softening point may include for instance ASTM D <NUM> and/or ISO <NUM>. The VICAT softening temperature can be used to compare the heat-characteristics of different materials: in the present disclosure, it has to be understood that, the same VICAT test, for instance VICAT A test or VICAT B test, must be used to compare the first, second and third hardening materials.

For instance, the first material may comprise a first dielectric material. For instance, the second material may comprise a second dielectric material.

According to an embodiment of the present invention, a pre-package is provided, wherein the hardening material has a flexural strength comprised between 40MPa and <NUM> MPa and/or a flexural modulus comprised between <NUM> GPa and <NUM> GPa.

The advantage of this configuration is that the third layer does not shrink nor is deformed during the lamination process and during exposure to high temperatures and pressures thanks to the high values of flexural strength and flexural modulus
The flexural strength, also known as modulus of rupture, or bend strength, or transverse rupture strength, is a material property, which represents the highest stress experienced within the material at its moment of yield in a flexure test.

The flexural modulus or bending modulus is an intensive property that is computed as the ratio of stress to strain in flexural deformation, or the tendency for a material to resist bending.

According to another embodiment of the present invention, a pre-package is provided, wherein said hardening material has a VICAT softening temperature comprised between <NUM> and <NUM>.

The advantage of this configuration is that the hardening material does not shrink nor is deformed during the lamination process and during exposure to high temperatures and pressures.

According to another embodiment of the present invention, a pre-package is provided, wherein the hardening material comprises PET and/or PI.

The advantage of this configuration is that PET and/or PI are not deformed nor shrunk during the lamination process.

According to another embodiment of the present invention, a pre-package is provided, wherein the first layer has an opening and the third layer is placed into the opening so as to complete said first planar layer.

The advantage of this configuration is that the third layer covers the flexible printed circuit board and can form a continuous layer together with the first layer. Moreover, the third layer compresses and flattens the adhesive material that is used to connect the third layer to the flexible printed circuit board and prevents overflowing of the adhesive material during application and prior to polymerization, for instance by means of UV radiation. Preferably, the third layer is flushed with the first layer so as to form a continuous planar layer. In this way, levelling of the pre-package is optimized and surface visibility is improved.

According to another embodiment of the present invention, a pre-package is provided, wherein the third layer is attached to the first side of the flexible printed circuit board and/or to the first layer through an adhesive layer.

The advantage of this configuration is that the third layer is firmly attached to the first side of the flexible printed circuit board and/or to the first layer thanks to the adhesive material. According to a preferred configuration, the adhesive material is initially deposited on the first side of the flexible printed circuit board in a viscous configuration, so that it can flow and fill in the discontinuities between the one or more non-planar circuit portions of the flexible printed circuit board. The third layer is then placed on the viscous adhesive layer. Finally, curing of the adhesive layer is induced. In this way, the third layer is attached to the first side of the flexible printed circuit board through the adhesive material and it is not deformed by the discontinuities of the non-planar circuit portions formed on the flexible printed circuit board.

According to a preferred configuration, the third layer is partially attached to the external surface of first layer of the pre-package through an adhesive layer.

According to another embodiment of the present invention, a pre-package is provided, wherein the adhesive layer comprises a UV curing adhesive material.

The advantage of this configuration is that the adhesive material can be initially deposited on the first side of the flexible printed circuit board in a viscous state and it can be subsequently cured and solidified via UV radiation.

According to another embodiment of the present invention, a pre-package is provided, wherein the first layer and the second layer comprise PVC, PETG, PLA, PU and/or polycarbonate.

The advantage of using PVC, PETG, PLA, PU and/or polycarbonate to form the first and the second layer is that these materials have high mechanical resistance and they can reinforce the pre-package and protect the IC chip.

According to another embodiment of the present invention, a pre-package is provided, wherein the first layer and/or the second layer comprise one or more windows for accommodating the one or more non-planar circuit portions.

The advantage of this configuration is that it is possible to provide mechanical robustness and stability to the flexible printed circuit board, while still ensuring electrical contact between the protruding non-planar circuit portion and the other components of the smartcard, because the circuit portions are not completely covered by the first and/or second layers.

Preferably, the second layer comprises one window for accommodating a display module formed on the second side of the flexible printed circuit board. In this way, part of the display module is visible through the window.

According to another embodiment of the present invention, a smartcard is provided, wherein the smartcard comprises a stack of card layers forming a smartcard body having a window and a pre-package as the ones described above that is embedded in the window.

The advantage of this configuration is that the flexible printed circuit board comprising the electronic components is encapsulated and protected by the pre-package, before being inserted in the window of the smartcard. Accordingly, higher mechanical resistance for the electronic components is ensured. Moreover, since the pre-package has a simple structure with a reduced number of plastic layers, the smartcard meets the card size requirements, for example ISO7810/<NUM> standards.

According to another aspect of the present invention, a method for forming a pre-package for a flexible printed circuit board for a smartcard is provided, the method comprising the following steps:.

wherein the first material has a first VICAT softening temperature and the second material has a second VICAT softening temperature, and the third layer has a VICAT softening temperature higher than the first VICAT softening temperature and/or than the second VICAT softening temperature.

The advantage of this method is that it provides higher mechanical resistance to the flexible printed circuit board comprising the non-planar electronic components, because the flexible circuit board is preliminary encapsulated in the pre-package. Moreover, according to this method, the card size requirements, for instance the ISO7810/<NUM> requirements, are met, because the pre-package has a simple structure comprising a reduced number of layers, preferably three layers. Moreover, thanks to the fact that the third layer has a higher VICAT softening temperature than the VICAT softening temperature of the first and/or second layer, leveling of the pre-package is optimized. In fact, during the lamination process, high temperatures and pressures are applied and shrinkage or deformation of the third layer is prevented by the hardening material.

According to another embodiment of the present invention, a method for forming a pre-package is provided, further comprising the following step:
e) Attaching the third layer to the first side of the flexible printed circuit board and/or to the first layer through a fourth layer of adhesive material, for instance a UV curing adhesive material.

The advantage of this method is that the third layer is firmly attached to the first side of the flexible printed circuit board and/or to the first layer thanks to the adhesive layer. The adhesive material is preferably deposited on the first side of the flexible printed circuit board in a viscous state and it is subsequently cured after application of the third layer. In this way, the different heights of the non-planar circuit portions formed on the flexible printed circuit board are compensated by filling in the adhesive material and the third layer can be securely attached on the flexible printed circuit board. Preferably, curing of the adhesive material is induced via UV radiation.

According to another embodiment of the present invention, a method for forming a pre-package is provided, wherein the first layer of material has an opening and the step d) is carried out by placing the third layer into the opening so as to complete the first planar layer.

The advantage of this configuration is that the third layer covers the flexible printed circuit board and can form a continuous layer together with the first layer. Moreover, the third layer compresses and flattens the adhesive material that is used to connect the third layer to the flexible printed circuit board and prevents overflowing of the adhesive material during application and prior to polymerization, for instance by means of UV radiation.

Preferably, the third layer is placed in the opening so as to form a continuous planar layer together with the first layer of dielectric material.

According to another embodiment of the present invention, a method for forming a pre-package is provided, wherein the one or more flexible printed circuit boards are provided in a first reel and they are arranged so as to form an array, and wherein the first layer and the second layer are provided in a second reel and a third reel, respectively, and the method is carried out with a reel-to-reel process.

The advantage of this method is that the process for forming a pre-package for a flexible printed circuit board is carried out in a fast and efficient way thanks to a reel-to-reel process. Moreover, the number of layers applied to the flexible printed circuit board is limited, therefore the process is further simplified.

According to another embodiment of the present invention, the pre-package may be formed by means of a plurality of foils having a predefined size, for instance an A4 size or bigger, wherein a first foil comprises a plurality of elements forming the first layer, a second foil comprises a plurality of elements forming the second layer and a third foil comprises a plurality of flexible printed circuit boards. Preferably, the first foil, the second foil and the third foil are superimposed so that a first element forming the first layer, a second element forming the second layer and a flexible printed circuit board are superimposed and attached to each other, in order to form the pre-package. Preferably, the first foil, the second foil and the third foil have an A4 size.

Preferably, the pre-package may be formed by means of a reel-to-reel process having a predefined layout, for instance an A4 layout or bigger.

According to further embodiment of the present invention, a method for forming a pre-laminate for a smartcard is provided, the method comprising the following steps:.

The advantage of this method is that the electronic components of the smartcard are preliminary encapsulated and protected in a pre-package structure and they are not placed in direct contact with the other layers of the pre-laminate for the smartcard.

According to a further embodiment of the present invention, a method for forming a smartcard is provided, the method comprising the following steps:.

The advantage of this method is that the electronic components of the smartcard are preliminary encapsulated and protected in a pre-package structure and they are not placed in direct contact with the other layers of the smartcard.

The present invention will be described with reference to the attached figures in which the same reference numbers and / or signs indicate the same parts and / or similar and / or corresponding parts of the structure.

In the following, the present invention is described with reference to particular embodiments, as is illustrated in the enclosed figures. However, the present invention is not limited to the particular embodiments described in the following detailed description and shown in figures. Instead, the described embodiments simply exemplify the different features of the present invention, the scope of which is defined in the claims. Further modifications and variations of the present invention will be clear to the skilled person.

<FIG> schematically illustrates a cross-sectional view of a pre-package <NUM> according to an embodiment of the present invention.

The pre-package <NUM> comprises a flexible printed circuit board <NUM>, having a top, first side 110a and a second, bottom side 110b. The flexible printed circuit board <NUM> comprises one or more non-planar electronic components <NUM>, <NUM>, <NUM>. It has to be understood that the flexible printed circuit board <NUM> comprises a board substrate on which one or more electronic components <NUM>, <NUM>, <NUM> are formed, for instance a display module, a keyboard or individual press button, energy storage components such as batteries, optical components and the like. The electronic components <NUM>, <NUM>, <NUM> protrude from the board substrate of the flexible printed circuit board <NUM> and they have different heights with respect to the substrate. Accordingly, they are referred to as non-planar electronic components.

The first side 110a of the flexible printed circuit board <NUM> is covered with a first layer of material <NUM> and a third layer of material <NUM>. The second side 110b of the flexible printed circuit board <NUM> is covered with a second layer of material <NUM>. For instance, the first layer <NUM> and the second layer <NUM> may comprise PVC and/or polycarbonate material. The first layer <NUM> comprises an opening <NUM>, wherein a third layer <NUM> of material is placed. The third layer <NUM> is flush with the first layer <NUM>, so as to form a continuous layer of dielectric material. The third layer <NUM> is attached to the first side 110a of the flexible printed circuit board <NUM> through a layer of adhesive material <NUM>. Preferably, the adhesive material <NUM> comprises a UV adhesive material. The third layer <NUM> has also the function of "anti-sink down layer". In fact, the third layer <NUM> compresses and flattens the adhesive material <NUM> and prevents overflowing of the adhesive material <NUM> during application in the liquid state and prior to polymerization (for instance UV polymerization).

Alternatively or in addition, the third layer <NUM> may be attached to part of the top surface of the first layer <NUM> through an adhesive material <NUM>.

The third layer <NUM> of material has a VICAT softening temperature that is higher than the VICAT softening temperature of the first layer <NUM> and/or the second layer <NUM> of dielectric material. In this way, during the lamination process for the formation of the pre-package <NUM> and the smartcard <NUM> (described below), the third layer <NUM> does not shrink nor is deformed because of the application of high temperatures and pressures.

After formation, the pre-package <NUM> may be inserted into a corresponding window <NUM> of a smartcard <NUM>, which is schematically illustrated in the cross sectional view of <FIG>. As it can be seen in <FIG>, the smartcard <NUM> comprises a pre-laminate structure <NUM>, having a window <NUM>, and a first and a second stack of external layers <NUM>.

The pre-laminate structure <NUM> comprises the central plastic layers <NUM> of the smartcard <NUM> and the electronic components <NUM>, <NUM>, <NUM>, <NUM>, which represent the core of the smartcard <NUM>. In other words, the term "pre-laminate" refers to the structure of the smartcard comprising the plastic layers <NUM> and the electronic components <NUM>, <NUM>, <NUM>, <NUM> that are assembled together prior to lamination to the external layers <NUM>, which are subsequently added to the smartcard <NUM> for aesthetic purposes and for providing additional mechanical robustness.

The pre-laminate <NUM> comprises a window <NUM> that is sized so as to match the dimensions of the pre-package <NUM>.

The pre-laminate <NUM> further comprises a layer <NUM> including a wire-embedding antenna <NUM>, which is configured to be connected to the electronic components of the pre-package <NUM>, such as the flexible printed circuit board <NUM> and/or the circuit portions <NUM>, <NUM>, <NUM>. Accordingly, the pre-package <NUM> comprises a layer <NUM> including a contact pad <NUM> to be connected to the wire of the antenna <NUM>, in order to enable communication with external devices. The layer <NUM> protrudes from the edges of the second side 110b of the pre-package <NUM>.

The pre-package <NUM> according to the present invention may be advantageously formed in a reel-to-reel process, which is described with reference to <FIG>, <FIG>, <FIG> and <FIG>.

<FIG> schematically illustrates a detail of a reel <NUM> comprising a plurality of flexible printed circuit boards <NUM>. In particular, <FIG> schematically illustrates the first side 110a of the flexible printed circuit boards <NUM> formed on the reel <NUM>. On the first side 110a, non-planar electronic components <NUM> are formed.

<FIG> schematically illustrates a detail of a reel <NUM> comprising a plurality of flexible printed circuit boards <NUM>. In particular, <FIG> schematically illustrates the second side 110b of the flexible printed circuit boards <NUM> formed on the reel <NUM>. On the second side 110b, non-planar electronic components <NUM> are formed. For instance, the non-planar electronic components <NUM> may include display modules.

<FIG> schematically illustrates a step of a method for forming a pre-package <NUM> for a smartcard, according to an embodiment of the present invention. In <FIG>, a second reel <NUM> of material is placed on the first reel <NUM> of flexible printed circuit boards <NUM>, in particular the second reel <NUM> is attached to the second side 110b of the reel <NUM>. The second reel <NUM> comprises a plurality of openings in correspondence with the non-planar electronic components <NUM>. For instance, the non-planar electronic components <NUM> may comprise display modules that must be visible from the back of the pre-package <NUM> during usage of the final smartcard <NUM>.

<FIG> schematically illustrates a further step of the process for forming the pre-package <NUM> according to an embodiment of the present invention. A third reel <NUM> of material is applied on the first reel <NUM> comprising the plurality of flexible printed circuit boards <NUM>. In particular, the third reel <NUM> is placed on the first side 110a of the reel <NUM> of the flexible circuit boards <NUM>. The third reel <NUM> comprises a plurality of holes <NUM>' in correspondence with the non-planar electronic components <NUM> of the flexible printed circuit boards <NUM>, so that the non-planar electronic components <NUM> can contact the other electronic components of the smartcard.

The third reel <NUM> further comprises a plurality of windows <NUM> accommodating the electronic components <NUM>.

<FIG> schematically illustrates a detail of the third reel of material <NUM>. In <FIG>, the openings <NUM>' for accommodating the electronic components <NUM> and the windows <NUM> for accommodating the electronic components <NUM> are clearly visible. The openings <NUM>' are not filled with any dielectric material, in order to ensure an electrical connection between the electronic components <NUM> and the other electronic components of the smartcard <NUM>. On the other hand, each window <NUM> is filled with an adhesive material, for instance a UV adhesive material.

The adhesive material is preferably applied in the windows <NUM> in a viscous state, so that it can flow in the windows <NUM> and fill in the gaps on top or between the non-planar electronic components <NUM> formed on the first side 110a. After application of the adhesive material, a hardening material, such as Epoxy Glass, is placed on each window <NUM> in order to further cover and protect the first side 110a of the flexible printed circuit board <NUM>. The hardening material comprises a solid layer of material that forms the third layer <NUM> of the pre-package <NUM> and that is not deformed by contact with the non-planar electronic components <NUM> of the flexible printed circuit board <NUM>. After attachment of the hardening layer <NUM>, the adhesive material is cured, for instance via UV radiation, in order to provide a stable attachment between the first side 110a of the flexible printed circuit board <NUM> and the third layer <NUM> of dielectric material.

In this way, a multi-layered reel comprising a plurality of pre-packages <NUM> is obtained. The multi-layered reel comprises a central reel <NUM> of flexible printed circuit boards <NUM> laminated between two external reels <NUM> and <NUM> of dielectric material.

For instance, it has to be understood that any layout may be used in the reel-to-reel process.

Claim 1:
A pre-package (<NUM>) for a flexible printed circuit board (<NUM>) for a smartcard (<NUM>), said pre-package comprising the following elements:
- a flexible printed circuit board (<NUM>) including one or more non-planar circuit portions (<NUM>, <NUM>, <NUM>), said flexible printed circuit board (<NUM>) having a first side (110a) and a second side (110b) opposite to said first side (110a);
- a first layer of a first material (<NUM>) at least partially covering said first side (110a) of said flexible printed circuit board (<NUM>) so as to form a planar layer;
- a second layer of a second material (<NUM>) covering said second side (110b) of said flexible printed circuit board (<NUM>); and
- a third layer (<NUM>) comprising a hardening material at least partially covering said first side (110a) so as to form a planar layer;
characterized in that said first material (<NUM>) has a first VICAT softening temperature and said second material (<NUM>) has a second VICAT softening temperature, and said third layer (<NUM>) has a third VICAT softening temperature, wherein said third VICAT softening temperature is higher than said first VICAT softening temperature and/or than said second VICAT softening temperature.