The present invention generally relates to electronic circuits and, more specifically, to the forming of microelectronic devices equipped with radio frequency transceiver means.
Radio frequency microelectronic transceiver devices are more and more used for purposes of remote identification of objects to which such devices are associated. It is then often spoken of electronic tags (RFID). The functionalities of such electronic tags may be limited to the transmission of an identifier or may comprise more complex functions (remote transmission of results of measurement performed by sensors integrated to the chip, processing of data received from a distant element, etc.).
Typically, for frequency bands from a few hundreds of kilohertz to a few tens of megahertzes, antennas L1 and L2 are loop-shaped and for frequencies on the order of from several hundreds of Megahertz to a few gigahertzes, the antennas are of dipole type.
Most often, electronic tag 2 draws the power necessary to the operation of the electronic circuit that it comprises form the radio frequency field radiated by terminal 1.
Many structures of electronic tags, and more generally of radio frequency transceiver chips and of read or read-write terminals, are available.
The forming of antenna L2 on the electronic tag side uses techniques derived from the microelectronics industry in the manufacturing of integrated or printed circuits (etching or printing of conductive tracks). This non-negligibly impacts the cost of the electronic tag.
It would be desirable to have a radio frequency transceiver device with an antenna which is less expensive to manufacture.
It would further be desirable to have a simplified method for manufacturing a radio frequency transceiver device equipped with its antenna.
In certain applications, it is desired to associate several electronic tags with a same object. Said tags must then be individually attached to the concerned object (for example, a very long pipe).
A technique for forming microelectronic chips connected to one another by a cable element for electrically connecting the chip to the outside is known from document WO-A-2008/025889, where several wires may be provided to then form, at the same time, antennas and the power supply of an RFID component.
It would be desirable to take advantage of this technique to ease the forming of antennas of radio frequency transceiver devices without for them to be interconnected by a power supply lead.
It would further be desirable to have a simple solution for associating several radio frequency transceiver chips, be it before their assembly on the object for which they are intended or in use.
To achieve all or part of these objects as well as others, the present invention provides a method for manufacturing radio frequency transceiver devices, comprising:
the forming of radio frequency transceiver chips having no antennas;
the series connection of the chips by at least two conductive cable elements having their respective lengths between two neighboring chips selected according to the transmission-reception frequency, each element electrically contacting at least one terminal of a chip and at least temporarily mechanically maintaining the chips chained; and
the cutting at regular intervals of the series connection to form, for each chip, two strands of an antenna of the device.
According to an embodiment, two conductive cable elements are placed on either side of the chips, in the vicinity of their respective lateral edges in a first direction.
According to an embodiment, an intermediary element supporting at least one conductive section connecting the two conductive cable elements is provided between two neighboring chips, and is intended to be cut to form, for each chip, a loop antenna.
According to an embodiment, the chips are placed on a support strip before connection by the conductive cable elements.
According to an embodiment, a cable connection element is, before cutting of the series connection, connected to the different chips to form, after cutting of the series connection, a chain of radio frequency devices.
According to an embodiment, the strands are wound around the connection element.
According to an embodiment, each chip comprises at least one area for receiving a conductive cable element.
The present invention also provides a radio frequency transceiver device, comprising:
a microelectronic chip integrating radio frequency transceiver circuits; and
at least two wire antenna strands.
The present invention also provides a chain of radio frequency transceiver devices, comprising several electronic chips integrating radio frequency transceiver circuits and connected to one another by at least two conductive cable elements connected to antenna connection pads of the chips, the respective lengths of the elements between two neighboring chips being selected according to the transmission-reception frequency.
According to an embodiment, an additional connection element, having a length greater than the respective lengths of the conductive elements between two neighboring chips, connects the chips after cutting of the conductive elements between the chips.
The foregoing objects, features, and advantages of the present invention, as well as others, will be discussed in detail in the following non-limiting description of specific embodiments in connection with the accompanying drawings, among which:
The same elements have been designated with the same reference numerals in the different drawings, which are not to scale.
For clarity, only those steps and elements which are useful to the understanding of the invention have been shown and will be described. In particular, the electronic circuits internal to the radio frequency transceiver devices have not been detailed, the invention being compatible with usual circuits (for example, measurement sensors, identifiers of an object, etc.) according to the aimed application. The steps of batch manufacturing of the microelectronic chips have not been detailed either, the invention being here again compatible with usual techniques.
The invention will be described hereafter in relation with an example of RFID chips, but it more generally applies to any chip or miniaturized radio frequency transceiver circuit.
According to the invention, areas 36 are intended to from antenna connection contacting areas.
The structures of
Finally, wires 41 and 42 are cut at regular intervals of the chain, for example, at one edge of each chip 3 for wire 41 and at the other edge of each chip for wire 42 (along the dotted lines c illustrated in
The length of strands or sections 41′ and 42′ which remain once the chips have been separated, is selected to be adapted to the desired length of the radio frequency transceiver antenna. In the example of antenna of the type illustrated in
The diameter of cable elements 41 and 42 is greater than the diameter of possible connection wires (for example, 32 and 33,
As long as wires 41 and 42 have not been cut, they mechanically hold chips 3 together, enabling to maintain them chained, for example, in rolled fashion, before their final assembly on the object that they are intended to identify.
The case in point may for example be to place a chain 20 of RFID chips along an underground line to make it easier to locate.
According to another example, connection cable 7 is incorporated instead of a weaving thread to regularly distribute the RFID chips in a textile.
Cable 7 is for example cut on demand according to the final desired chain length. Cable 7 is preferably insulating and its mechanical resistance depends on the aimed application. The cross-section of cable 7 may be circular or other (for example, rectangular), single-strand or multistrand.
The connection element(s), be they connection elements 41 and 42 intended to form antenna strands 41′ and 42′ or connection elements intended to form a final supporting cable 7, may have a round, square, or other cross-section and may be formed by a cable or several cables. As to wires 41 and 42 intended to form the antennas, these elements are conductive (and possibly sheathed with an insulator except at the contacts with the chip).
According to a specific embodiment, the different chips are formed on a semiconductor or insulating substrate wafer. They are interconnected by at least one cable connection element (either wires 41 and 42 intended to form the two antennas, or permanent connection element 7, or both). Then, the substrate is structured to dissociate chips 3, which are then series connected by the sole flexible mechanical connection provided by the connection element(s), from one another. The dissociation of chips 3 is conventionally carried out in the case of a solid substrate, for example by sawing, while being careful not to cut the connection element(s).
If strip 5 (
According to this example, in the chain structure of the chips before cutting of the antennas (
According to this embodiment, elements 9 having a general elongated shape and protruding from both sides of each chip 3 are placed thereon after cutting from the wafers or are integrated therein with sections 91 and 92 protruding from both sides of each chip 3. Elements 9 are made of an insulating material or are sheathed with an insulating material and are intended to receive respective antenna strands 41′ and 42′ which are then wound in a coil (
An advantage of the embodiment of
The different embodiments and variations described hereabove may of course be combined.
An advantage of the described embodiments is that they enable to obtain RFID devices having their antennas formed by cable elements, which makes them less expensive than the deposition of conductive ink on an insulating substrate.
Another advantage is that the provided technique preserves the possibility of radio frequency chip chains at least until assembly on the final object (by cutting of the antenna strands). This allows coil processings of the chips, for example, galvanic, coating processes, etc.
Another advantage is that the described embodiments even enable to preserve the chained radio frequency chip structure in the final application.
Various embodiments have been described, and various alterations and modifications will occur to those skilled in the art. In particular, the selection of the dimensions to be given to the antenna strands depends on the application and especially on the desired operating frequency as well as on the other components (especially the capacitive elements) present on the electronic chip side.
Further, the practical implementation of the invention is within the abilities of those skilled in the art based on the functional indications given hereabove.
Finally, although the invention has been described in relation with an example of devices each provided with an antenna, two antennas per device may be provided to allow an operation over several frequency bands. For example, in a variation of the embodiment of the devices of
Number | Date | Country | Kind |
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07 04445 | Jun 2007 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FR2008/051079 | 6/18/2008 | WO | 00 | 6/9/2010 |
Publishing Document | Publishing Date | Country | Kind |
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WO2009/004243 | 1/8/2009 | WO | A |
Number | Name | Date | Kind |
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6930401 | Usami | Aug 2005 | B2 |
7863718 | Usami | Jan 2011 | B2 |
8017441 | Usami | Sep 2011 | B2 |
8154456 | Furumura | Apr 2012 | B2 |
8237622 | Furumura et al. | Aug 2012 | B2 |
Number | Date | Country |
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19908172 | Aug 2000 | DE |
1630728 | Mar 2006 | EP |
Entry |
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Search Report issued in PCT/FR2008/051079 on Mar. 25, 2009. |
Number | Date | Country | |
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20100245182 A1 | Sep 2010 | US |