ASSEMBLY FOR PHOTOVOLTAIC MODULE with optimized quantity of electrically conductive adhesive

The zigzag patterned ECA line addresses misalignment issues in photovoltaic cell interconnections, enhancing adhesion and reducing silver consumption, thereby improving the efficiency and cost-effectiveness of photovoltaic module assembly.

FR3155092B1Active Publication Date: 2025-10-31COMMISSARIAT A LENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVES +1
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Patent Information

Application Number
FR2023011943
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-11-02
Publication Date
2025-10-31
Estimated Expiration
2043-11-02

AI Technical Summary

Technical Problem

Existing photovoltaic cell interconnection methods using electrically conductive adhesive (ECA) face challenges with misalignment, leading to reduced adhesion and excessive silver consumption due to high temperature sensitivity and alignment uncertainties.

Method used

A zigzag patterned electrically conductive adhesive line is used to improve adhesion between the interconnecting tape and photovoltaic cell, even with misalignment, while minimizing ECA consumption.

Benefits of technology

The zigzag pattern enhances adhesion by maintaining contact area despite misalignment, reducing ECA usage by up to 15.5% compared to straight lines, thus optimizing the interconnection process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to an assembly comprising: at least one photovoltaic cell having a face on which a collection grid is formed, at least one interconnecting ribbon fixed to said face and intended for electrically and mechanically connecting the photovoltaic cell to another photovoltaic cell, and at least one adhesive line (30), made of an electrically conductive material, disposed between the collection grid and the interconnecting ribbon, the adhesive line (30) being adapted to mechanically and electrically connect the interconnecting ribbon to the photovoltaic cell, the adhesive line (30) extending substantially along a principal longitudinal axis (X) and having a substantially constant width (l). The adhesive line (30) is arranged in a zigzag pattern formed by a plurality of segments (31), each forming an angle (α) less than or equal to 30° with the principal longitudinal axis (X). Figure for the abstract: Fig. 2
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Description

Title of the invention: ASSEMBLY FOR AIQUE PHOTOVOLTAIC MODULE with optimized quantity of electrically conductive adhesive technical field

[0001] The invention relates to the field of photovoltaic modules, which comprise a set of photovoltaic cells electrically connected to each other, and more specifically, to the interconnection of photovoltaic cells.

[0002] The invention can be implemented for numerous applications, including civil and / or military applications, for example autonomous and / or embedded applications. It can thus be applied in particular to buildings such as homes or industrial premises (tertiary, commercial, etc.), for example for the construction of their roofs, for the design of street furniture, for example for public lighting, road signs or even the charging of electric cars, and can also be used for mobile applications (solar mobility), in particular for integration on vehicles, such as cars, buses or boats, drones, airships, among others. PREVIOUS STATE OF THE ART

[0003] A photovoltaic module is formed of strings or rosaries, more commonly called "strings", which are an assembly of several photovoltaic cells connected in series and / or in parallel by interconnecting ribbons, for example tinned copper ribbons.

[0004] The interconnecting ribbon can be electrically and mechanically connected to a photovoltaic cell by welding or by bonding with an electrically conductive adhesive (or ECA for "Electrically Conductive Adhesive" in English).

[0005] The use of an electrically conductive adhesive is preferred due to the high temperature sensitivity of photovoltaic cells, particularly heterojunction cells. Indeed, the polymerization temperature of electrically conductive adhesives is particularly low, for example, on the order of 160°C to 180°C. This is lower than the temperature used during welding, which can be on the order of 260°C to 280°C.

[0006] Electrically conductive adhesive comprises conductive particles, typically silver particles. Consequently, its use consumes silver, a limited resource, and is relatively expensive.

[0007] Several known solutions thus propose to reduce the consumption of electrically conductive adhesive for the electrical and mechanical connection of a tape interconnection to a photovoltaic cell.

[0008] These solutions propose to deposit the glue in the form of a continuous straight line or in dotted lines, as shown in particular in the article by Kaiser et al. entitled Reduction of ECA amount for the ribbon interconnection of heterojunction solar cells, 37th European PV Solar Energy Conference and Exhibition, 7-11 September 2020, whose dimensions (width, length) are close to those of the interconnection ribbon.

[0009] These solutions require that the glue line and the interconnecting tape be perfectly aligned to obtain a maximum contact surface and ensure satisfactory adhesion of the interconnecting tape to the photovoltaic cell.

[0010] However, the deposition of the electrically conductive adhesive and / or the interconnecting tape may be associated with positioning uncertainty, which is notably related to the accuracy of the equipment used for deposition. In the solutions described, such uncertainty can then lead to misalignment of the adhesive and the interconnecting tape, and can thus reduce the adhesion of the interconnecting tape to the photovoltaic cell. Description of the invention

[0011] The invention aims to remedy at least in part the disadvantages of the prior art, and more particularly to propose a solution to improve the adhesion of an interconnecting tape on a photovoltaic cell, especially when the interconnecting tape and the line of glue are misaligned, while limiting the consumption of electrically conductive glue.

[0012] For this purpose, the object of the invention is an assembly comprising: • at least one photovoltaic cell comprising one face on which a collection grid is provided, • at least one interconnecting ribbon fixed to said face, said interconnecting ribbon being intended to electrically and mechanically connect the photovoltaic cell to another photovoltaic cell, and • at least one line of glue, made of an electrically conductive material, disposed between the collection grid and the interconnecting tape, the line of glue being adapted to mechanically and electrically connect the interconnecting tape to the photovoltaic cell, the line of glue extending substantially along a main longitudinal axis and having a substantially constant width.

[0013] According to the invention, the glue line is arranged in a zigzag pattern formed by a plurality of segments, each forming an angle of less than or equal to 30° with the main longitudinal axis, and with an amplitude of variation along a transverse axis per pendicular to the main longitudinal axis, which is greater than the width of the glue line.

[0014] Some preferred but not limiting aspects of this set are the following.

[0015] The angle formed by the segments with the main longitudinal axis can be between 15° and 30°.

[0016] A ratio between the amplitude of variation of the glue line and a width of the interconnecting tape can be between 0.5 and 1.5.

[0017] The width of the interconnecting ribbon can be between 0.2 mm and 1.2 mm.

[0018] The electrically conductive adhesive line can be made of a material selected from adhesives comprising conductive particles, for example silver and / or copper particles, carbon nanotubes or silver nanowires, or a polymer matrix, for example acrylate, epoxy or silicone type. Brief description of the drawings

[0019] Other aspects, objectives, advantages and features of the invention will become more apparent upon reading the following detailed description of preferred embodiments thereof, given by way of non-limiting example, and made with reference to the accompanying drawings in which:

[0020] Fig. 1 schematically and partially represents, from a top view, an assembly according to an embodiment of the invention, comprising a photovoltaic cell, interconnecting ribbons and lines of electrically conductive glue arranged between the photovoltaic cell and a respective interconnecting element;

[0021] [Fig.2] shows one of the electrically conductive glue lines of [Fig.1] taken in isolation;

[0022] Figures 3A and 3B show an interconnecting tape arranged on a line of glue without misalignment, with a straight and thin line of glue ([Fig.3A]) and with a line of glue similar to that of [Fig.2] ([Fig.3B]);

[0023] Figures 4A and 4B show an interconnecting tape arranged on a glue line with a misalignment, with the glue line straight and thin ([Fig.4A]) and with a glue line similar to that of [Fig.2] ([Fig.4B]);

[0024] Figures 5A and 5B show an interconnecting tape arranged on a line of glue without misalignment, with a straight and wide line of glue ([Fig. 5A]) and with a line of glue similar to that of [Fig. 2] ([Fig. 5B]); and

[0025] Figures 6A and 6B show an interconnecting tape arranged on a glue line with a misalignment, with the glue line straight and wide ([Fig.6A]) and with a glue line similar to that of [Fig.2] ([Fig.6B]).

[0026] DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS

[0027] In the figures and throughout the description, the same reference numerals represent identical or similar elements. Furthermore, the various elements are not drawn to scale in order to enhance the clarity of the figures. Moreover, the different embodiments and variants are not mutually exclusive and may be combined. Unless otherwise indicated, the terms "approximately," "about," and "in the order of" mean within 10%, and preferably within 5%. Furthermore, the terms "between ... and ..." and equivalents mean that the limits are inclusive, unless otherwise stated.

[0028] Fig. 1 represents schematically and partially, in top view, an assembly 1 according to an embodiment of the invention.

[0029] In general, such an assembly 1 comprises: • a 10 photovoltaic cell, • one or more interconnecting ribbons 20 intended to electrically and mechanically connect the photovoltaic cell 10 to another photovoltaic cell in order to form a string of photovoltaic cells, and • one or more lines of electrically conductive glue 30 electrically and mechanically connecting each an interconnecting ribbon 20 to the photovoltaic cell 10.

[0030] The assembly 1 according to the invention is thus intended to be connected electrically and mechanically to a photovoltaic cell, by means of one or more interconnecting ribbons 20, in order to form a chain of photovoltaic cells.

[0031] The photovoltaic cell 10 comprises a general plate shape with a front face 11 and a rear face (not shown) opposite the front face. The photovoltaic cell 10 here includes on its front face 11 a contact grid 13 adapted to ensure the collection of photogenerated charges. Of course, the photovoltaic cell may also include a collection grid on its rear face.

[0032] The collection grid 13 is generally obtained by screen printing a silver, copper, and / or aluminum paste, or any other type of base, onto the front face 11 of the photovoltaic cell 10. The collection grid 13 is formed here by a succession of parallel collection lines spaced apart from each other. Optionally, the collection grid may also include a conductive track, known as a busbar, arranged so as to electrically connect the contact lines together. In this case, the conductive busbar preferably extends perpendicularly to the collection lines.

[0033] Generally speaking, the interconnecting ribbon 20 has a generally flat and elongated shape. It is made of an electrically conductive material, preferably copper with a silver coating. It can be made from other materials.

[0034] The interconnecting ribbon 20 is arranged on the front face 11 of the photovoltaic cell 10 so as to be connected to several collection lines, or, where the collection grid includes a busbar conductor line, so as to be aligned with it. The ribbon has a length, along a longitudinal axis, which can vary depending on the dimensions of the photovoltaic cell, and a width, along a transverse axis perpendicular to the longitudinal axis, which can be between 0.2 mm and 1.2 mm.

[0035] The interconnecting ribbon 20 may include a free portion 21 which is not superimposed on the photovoltaic cell 10. The advantage of having a free portion 21 of the interconnecting ribbon 20 is to facilitate the interconnection of the photovoltaic cells 20.

[0036] For example, the free portion 21 lies in the same plane as the rest of the interconnecting ribbon 20, which is thus adapted to connect the front face 11 of the photovoltaic cell 10 to a face, generally the rear face, of another photovoltaic cell located in the same plane as the front face 11. This is referred to as a monolithic interconnecting architecture. Alternatively, the free portion 21 may lie in a plane distinct from the rest of the interconnecting ribbon, which is then adapted to connect the front face 11 of the photovoltaic cell to a face, generally the rear face, of another photovoltaic cell located in a plane distinct from the front face 11. This is referred to as a standard interconnecting architecture.

[0037] Generally, the glue line 30, made of an electrically conductive material, is arranged between the front face 11 of the photovoltaic cell 10 and the interconnecting ribbon 20. It extends here so as to be connected to several collection lines 13 of the photovoltaic cell, and preferably extends perpendicularly to these.

[0038] The electrically conductive adhesive can, for example, be chosen from adhesives comprising conductive particles, for example silver and / or copper particles, carbon nanotubes or silver nanowires, or a polymer matrix, for example acrylate, epoxy or silicone. The electrically conductive adhesive 30 advantageously has a curing temperature between 160 and 180°C.

[0039] Figure 2 represents the glue line 30 considered in isolation. The glue line 30 has a principal longitudinal axis X and a transverse axis Y perpendicular to the principal longitudinal axis X.

[0040] The glue line 30 is arranged in a zigzag pattern formed of a plurality of segments 31, each forming an angle α with the principal longitudinal axis X. By zigzag pattern or line, we mean a broken line forming alternately salient and re-entrant angles.

[0041] The glue line 30 has a relative length L, defined along the principal longitudinal axis X, and a variation amplitude A (or relative width) defined along the transverse axis Y. The relative length L, or total projected length, corresponds to the sum of the lengths Ls of the segments 31 defined along the principal longitudinal axis X. The length Ls, or elementary projected length, corresponds to the length of the segments 31 projected along the axis X. The variation amplitude A corresponds to the difference, along the transverse axis 31, between the opposite vertices of the segments 31. Preferably, the variation amplitude A is constant along the principal longitudinal axis X.

[0042] The glue line 30 has a width 1, corresponding to the width of the segments 31, which is substantially constant. The amplitude A of variation of the glue line 30 is greater than the width 1.

[0043] The glue line 30 thus presents a surface Szz, which is literally expressed as:

[0044] S^nxL.yxZQ)

[0045] noting n the number of segments 31, Ls the projected length of a segment 31,1 being the width of the glue line 30.

[0046] This surface Szz can also be expressed as:

[0047] s;: = <2)

[0048] This surface Szz tends towards a minimum value Lxl when the angle a tends towards zero (corresponding to a straight and thin line), but it tends towards a maximum value LxA when the angle tends towards 90° (corresponding to a straight and wide line).

[0049] Figures 3A and 4A show an interconnecting ribbon 20 arranged on a straight and thin glue line 40 without misalignment ([Fig.3A]) and with misalignment ([Fig.4A]).

[0050] The straight, thin adhesive line 40 has a length L along a longitudinal axis XI, and a width 11 along a transverse axis Y1 perpendicular to the longitudinal axis XL. The width 11 of the adhesive line 40 is chosen here to be substantially equal to the width Ir of the interconnecting tape 20 (here slightly greater). It should be noted that the straight, thin adhesive line 40 corresponds to a previously described prior art solution.

[0051] With reference to [Fig.3A], it appears that, when the interconnecting tape 20 and the straight and thin glue line 40 are aligned, the contact surface Sci between the glue line 40 and the tape 20 is maximum: Sci>max = L x Ir.

[0052] With reference to [Fig. 4A], it also appears that when the interconnecting tape 20 and the straight, thin adhesive line 40 are misaligned, the contact area Sci between the adhesive line 40 and the interconnecting tape 20 is reduced, or may even become zero (as illustrated here). The adhesion of the tape 20 to the photovoltaic cell is thus degraded. The lateral misalignment here corresponds to a misalignment of the tape 20 opposite the glue line 40 along the transverse axis.

[0053] Also, the contact surface Sci becomes zero when the lateral offset d between the interconnecting tape 20 and the glue line 40 reaches a critical offset threshold d th, corresponding to the sum of half the width Ir of the interconnecting tape 20 and half the width 11 of the glue line 40: dth = lr / 2 + 11 / 2.

[0054] Figures 3B and 4B show the interconnecting tape arranged on the glue line 30 in a zigzag pattern without misalignment ([Fig. 3B]) and with misalignment ([Fig. 4B]). It should be noted that the misalignment is the same in Figures 4A and 4B.

[0055] To facilitate comparison with the straight, thin glue line 40, the width 1 of the zigzag glue line 30 is considered equal to the width 11 of the straight, thin glue line 40. The zigzag glue line 30 and the straight, thin glue line 40 are also considered to have the same thickness.

[0056] With reference to [Fig.3A] and 3B, it appears that, when the interconnecting tape 20 and the zigzag glue line 30 are aligned, the contact surface Sczz between the zigzag glue line 30 and the interconnecting tape 20 is less than the contact surface Sci between the straight and thin glue line 40 and the interconnecting tape 20.

[0057] With reference to [Fig.4A] and 4B, it appears on the other hand that, when the interconnecting tape 20 and the zigzag glue line 30 are offset beyond the critical offset threshold dth, the contact surface Sczz between the zigzag glue line 30 and the interconnecting tape 20 can be non-zero even though the contact surface Sci between the straight and thin glue line 40 and the interconnecting tape 20 is zero.

[0058] Moreover, it appears that, as the misalignment d increases and exceeds a threshold value, the contact surface Sczz between the zigzag glue line 30 and the interconnecting tape 20 becomes greater than the contact surface Sci between the straight and thin glue line 40 and the interconnecting tape 20. Indeed, the zigzag glue line 30 extends over a dimension along the transverse axis Y, namely the amplitude A of variation, which is greater than the dimension along the transverse axis Yl, namely the width 11, over which the straight and thin glue line 40 extends. In fact, the zigzag line of glue 30 improves the adhesion of the interconnecting tape 20 to the photovoltaic cell in the presence of a misalignment d between the interconnecting tape and the line of glue 30, whereas, for an equivalent misalignment, the adhesion of the interconnecting tape 20 via a straight line of glue of the same width may be degraded.

[0059] The surface area S of the zigzag glue line 30 is, however, greater than the surface area SI of the straight, thin glue line 40. Indeed, the surface area of ​​the straight, thin glue line 30 can be literally expressed as:

[0060] 51 = L x / 1 (3)

[0061] Using equation (2), the ratio AS between the surface SI of the glue line 40 The straight and thin surface S of the zigzag glue line 30 is written:

[0062] A ~ Lxll

[0063] When the width 1 of the zigzag glue line 30 and the width 11 of the straight, thin glue line 40 are equal, we therefore have:

[0064] = (5)

[0065] Thus in this case, the surface area ratio AS (and therefore the overconsumption of glue) between the zigzag glue line 30 and the straight and thin glue line 40 is determined solely by the angle a formed by the segments 31 with the main longitudinal axis X. The angle a is therefore determined so as to improve the adhesion of the strip to the photovoltaic cell in the presence of a lateral offset while limiting the overconsumption of glue.

[0066] Figures 5A and 6A show an interconnecting ribbon 20 arranged on a straight and wide glue line 40 without misalignment ([Fig.5A]) and with misalignment ([Fig.6A]).

[0067] The straight and wide glue line 50 has a length L along a main longitudinal axis X2, and a width 12 along a transverse axis Y2 perpendicular to the longitudinal axis X2. The width 12 of the straight and wide glue line 50 is greater than the width 11 of the straight and thin glue line 40.

[0068] The width 12 of the straight and wide glue line 50 is such that, in the presence of a misalignment d2 equal to the misalignment dl of Figures 3B and 4B, the contact area Sc2 between the glue line 50 and the interconnecting tape 20 is maximized: Sc2max = L xlr. The width 12 is here equal to three times the width 11 of the straight and thin glue line 40.

[0069] The straight, wide glue line 50 thus has a surface area S2 that is three times larger than the surface area SI of the straight, thin glue line 40. This represents an additional consumption of glue of 200% for the same thickness.

[0070] Figures 5B and 6B are similar to Figures 3B and 4B. They illustrate the comparison between the zigzag glue line 30 and the straight, wide glue line 50. To facilitate this comparison, the amplitude A of variation of the zigzag glue line 30 is considered to be equal to the width 12 of the straight, wide glue line 50. The zigzag glue line 30 and the straight, wide glue line 50 are also considered to have the same thickness.

[0071] With reference to [Fig.5A] to 6B, it appears that the contact area Sczz between the zigzag glue line 30 and the interconnecting tape 20 is less than the contact area Sc2 between the straight and wide glue line 50 and the interconnecting tape 20, with and without misalignment.

[0072] It should be noted, as previously stated, that when the angle formed by the segments 31 with the main longitudinal axis X tends towards 90°, the surface Szz of the glue line 30 in zigzag tends to approach the surface S2 of the straight and wide glue line 50.

[0073] Also, increasing the value of angle α improves the adhesion of the interconnecting tape to the cell but increases glue consumption. However, it has been observed that when angle α is greater than 30°, the improvement in adhesion is not significant compared to the increased glue consumption. In other words, it has been found that an angle α value of 30° or less represents a favorable compromise between adhesion and glue consumption.

[0074] By taking up equation (5), we observe that the additional consumption of glue, compared to the straight and thin line, when the angle a is equal to 30° is 15.5%.

[0075] Furthermore, it has been observed that when the angle a is greater than 15°, adhesion is significantly improved. Thus, preferably, the angle a is between 15° and 30°.

[0076] The zigzag adhesive line, thanks to its greater amplitude than its width, improves the adhesion of the ribbon to the photovoltaic cell in the event of misalignment between the ribbon and the adhesive line compared to a straight adhesive line of the same width. By limiting the angle formed by the segments and the main longitudinal axis to 30°, it is possible to limit the additional adhesive consumption to 15.5% compared to a straight adhesive line of the same width. Furthermore, this also reduces adhesive consumption compared to a straight, continuous line with a width equal to the amplitude of variation of the zigzag adhesive line.

[0077] Thus, the zigzag line of glue improves the adhesion of the tape to the photovoltaic cell in case of misalignment between the tape and the line of glue, while limiting the consumption of glue.

[0078] By way of example, in the case of a straight glue line with a relative length of 100 mm and a width of 0.3 mm and an interconnecting tape with a width of 0.6 mm, it appears that for a zigzag glue line with the same relative length and width, an amplitude of 0.5 mm and an angle ranging from 5° to 10° improve the contact area for significant offsets, for example, 0.4 mm, between the interconnecting tape and the glue line. The improvement is 40% for an angle of 10° and 74% for an angle of 5°. Furthermore, the 10° angle limits the overconsumption of glue to 1.5% compared to the straight glue line, while the 5° angle limits the overconsumption to 0.4%.

[0079] For an angle ranging from 15° to 30°, it appears that the zigzag line of glue allows for an improvement in the contact surface for smaller offsets, for example The gap between the interconnecting tape and the glue line is 0.3 mm. The improvement is 33% at a 30° angle when the gap is 0.3 mm. The improvement is 20% at a 15° angle and 200% at a 30° angle when the gap is 0.4 mm. Furthermore, the 30° angle limits glue overconsumption to 15.5% compared to a straight glue line, while the 15° angle limits overconsumption to 3.5%.

[0080] By way of example, the photovoltaic cell may be of the half M2 type, that is to say having a rectangular shape having a length of approximately 78 mm and a width of approximately 156 mm.

[0081] In this case, the assembly may include a plurality of glue lines. The number of lines may be between 4 and 20 and preferably between 6 and 9. In the case where the collection grid includes one or more conductive tracks, the assembly may include as many glue lines as conductive tracks.

[0082] Each line of glue may, for example, have an amplitude between 0.1 mm and 1.5 mm, a width between 0.1 mm and 1.2 mm, preferably between 0.3 mm and 0.8 mm, and a length that is less than or equal to the length of the photovoltaic cell, which here is 78 mm. The number of segments is, for example, between 3 and 21, and more particularly between 13 and 16.

[0083] The assembly may also include a plurality of interconnecting ribbons. Each ribbon may have a width between 0.2 mm and 1.2 mm, preferably between 0.4 mm and 0.8 mm, and a thickness between 0.1 and 0.4 mm.

[0084] The manufacturing process for such an assembly 1 thus comprises a step of producing a photovoltaic cell similar to that described with reference to [Fig. 1], and a step of producing an interconnecting ribbon similar to that described with reference to [Fig. 1],

[0085] The method then comprises a step of depositing an electrically conductive adhesive line onto one face, for example the front and / or rear, of the cell. The adhesive line is arranged so as to intercept, preferably perpendicularly, collection lines of the cell. The adhesive line is deposited so as to define a zigzag pattern formed by a plurality of segments, each forming an angle of less than 30° with the principal longitudinal axis of the adhesive line, and having an amplitude of variation, along the transverse axis, that is less than the width of the adhesive line and which, preferably, is between 0.5 and 1.5 times the width of the interconnecting tape.

[0086] The process then includes a step of depositing the interconnecting tape on the face of the cell, in contact with the glue line.

[0087] This results in an assembly 1 in which the adhesion of the interconnecting tape is improved in the event of misalignment of the tape and the line and electrically adheres conductive, and in which glue consumption is limited.

Claims

Demands

1. An assembly comprising: • at least one photovoltaic cell (10) having a face (11) on which a collection grid (13) is provided, • at least one interconnecting ribbon (20) fixed to said face (11), said interconnecting ribbon (20) being intended to electrically and mechanically connect the photovoltaic cell (10) to another photovoltaic cell, and • at least one line of adhesive (30), made of an electrically conductive material, disposed between the collection grid (13) and the interconnecting ribbon (20), the line of adhesive (30) being adapted to mechanically and electrically connect the interconnecting ribbon (20) to the photovoltaic cell (10), the line of adhesive (30) extending substantially along a principal longitudinal axis (X) and having a substantially constant width (1),• characterized in that the glue line (30) is arranged in a zigzag pattern formed by a plurality of segments (31), each forming an angle (a) less than or equal to 30° with the principal longitudinal axis (X), and with an amplitude (A) of variation, along a transverse axis (Y) perpendicular to the principal longitudinal axis (X), which is greater than the width (1) of the glue line (30).

2. Assembly according to claim 1, wherein the angle (a) formed by the segments (31) with the principal longitudinal axis (X) is between 15° and 30°.

3. Assembly according to claim 1 or 2, wherein a ratio between the amplitude (A) of variation of the glue line (30) and a width of the interconnecting tape (20) is between 0.5 and 1.

5.

4. Assembly according to claim 3, wherein the width of the interconnecting ribbon (20) is between 0.2 mm and 1.2 mm.

5. An assembly according to any one of claims 1 to 4, wherein the electrically conductive adhesive line (30) is made of a material selected from adhesives comprising conductive particles, for example silver and / or copper particles, nanotubes of carbon or silver nanowires, or a polymer matrix, for example of acrylate, epoxy or silicone type.