Wireless electronic device

The integration of an antenna impedance control circuit with switchable resistors and matching circuits in wireless devices addresses inefficiencies and imprecision in NFC, enhancing signal detection precision and compatibility across multiple terminals.

FR3163516A1Pending Publication Date: 2025-12-19STMICROELECTRONICS INT NV
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Patent Information

Application Number
FR2024006385
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-06-17
Publication Date
2025-12-19

AI Technical Summary

Technical Problem

Existing wireless communication devices face inefficiencies and imprecision in implementing wireless communications, particularly in near-field communication (NFC), which affects signal reception accuracy and compatibility with multiple terminals.

Method used

Incorporating an antenna impedance control circuit with switchable resistors and control voltages independent of the received field amplitude, along with an impedance matching circuit, to stabilize antenna impedance and reduce oscillations, thereby enhancing signal detection precision.

Benefits of technology

The solution improves signal reception accuracy by minimizing oscillations and detection delays, particularly in near-field communication, increasing compatibility with various electronic devices.

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Abstract

Wireless Electronic Device This description relates to an electronic device comprising an antenna (201) and an antenna impedance matching circuit (202) comprising first and second resistors (R201, R202) that can be activated according to the value of a field received by the antenna (201) and whose values ​​are independent of the value of said field received by said antenna (201), wherein: - a first terminal of said first resistor (R201) is connected to a first terminal of said antenna (201); - a second terminal of said second resistor (R202) is connected to a second terminal of said antenna (201) different from said first terminal. Figure for the abbreviation: Fig. 2
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Description

Title of the invention: Wireless electronic device technical field

[0001] This description relates generally to electronic circuits and devices. More specifically, this description relates to electronic circuits and devices adapted to implement wireless links, such as wireless communications and / or wireless power transfers. Previous technique

[0002] Wireless links are widely used nowadays to implement information communications but also to carry out energy transfers between two, or more than two, electronic devices.

[0003] It would be desirable to be able to improve, at least in part, certain aspects of wireless communications and / or wireless energy transfers. Summary of the invention

[0004] There is a need for devices adapted to implement more efficient wireless communications.

[0005] There is a need for devices adapted to implement wireless communications more precisely.

[0006] There is a need for devices adapted to implement wireless communications with a very large number of different terminals.

[0007] In particular, there is a need for devices adapted to implement more efficient and precise Near Field Communication (NFC).

[0008] An embodiment overcomes all or part of the disadvantages of known electronic devices implementing wireless communication, such as near-field communication.

[0009] One embodiment provides an electronic device adapted to implement more efficient and precise wireless communication.

[0010] One embodiment provides an electronic device adapted to implement more efficient and precise near-field communication.

[0011] One embodiment provides an electronic device comprising an antenna and a more precise antenna impedance control circuit.

[0012] One embodiment further provides the method for controlling the impedance of the antenna of such a device.

[0013] One embodiment provides an electronic device comprising an antenna and an antenna impedance matching circuit comprising first and second resistors that can be activated depending on the value of a field received by the antenna and whose values ​​are independent of the value of said field received by said antenna, in which: - a first terminal of said first resistor is connected to a first terminal of said antenna; - a second terminal of said second resistor is connected to a second terminal of said antenna different from said first terminal.

[0014] Another embodiment provides for a wireless communication method between a terminal and a device comprising an antenna and an antenna impedance control circuit comprising first and second resistors that can be activated according to the value of a field received by the antenna and whose values ​​are independent of the value of said field received by said antenna, in which: - a first terminal of said first resistor is connected to a first terminal of said antenna; - a second terminal of said second resistor is connected to a second terminal of said antenna different from said first terminal.

[0015] According to one embodiment, said first resistor is activated when said field received by the antenna has an amplitude in a low state, and said second resistor is activated when said field received by the antenna has an amplitude in a low state.

[0016] According to one embodiment, said first resistor is associated with a first switch controlled by a first control voltage depending on said field received by said antenna, and said second resistor is associated with a second switch controlled by a second control voltage of said field received by said antenna.

[0017] According to one embodiment, the first switch and the second switch are identical, and The first control voltage and the second control voltage are identical.

[0018] According to one embodiment, the first control voltage and the second control voltage are supplied by a circuit supplying a voltage image of the amplitude of a radio frequency field received by the antenna 201.

[0019] According to one embodiment, said device includes a control circuit for the impedance seen by said antenna.

[0020] Yet another embodiment provides for a system comprising a device described above and a terminal. Brief description of the drawings

[0021] These features and advantages, as well as others, will be described in detail in the following description of particular embodiments, given by way of non-limiting example, in relation to the accompanying figures, among which:

[0022] Fig. 1 represents, very schematically and partially in block form, a system adapted to implement wireless communication;

[0023] [Fig.2] represents in more detail an embodiment of part of a device of the system of [Fig.1];

[0024] [Fig. 3] represents two sets of curves illustrating the operation of the embodiment of [Fig. 2]; and

[0025] [Fig.4] represents curves illustrating in more detail the operation of the embodiment of [Fig.2]. Description of the implementation methods

[0026] The same elements have been designated by the same reference numerals in the different figures. In particular, structural and / or functional elements common to the different embodiments may have the same reference numerals and may have identical structural, dimensional and material properties.

[0027] For the sake of clarity, only the steps and elements useful for understanding the described embodiments have been represented and are detailed.

[0028] Unless otherwise specified, when referring to two elements connected together, this means directly connected without intermediate elements other than conductors, and when referring to two elements coupled together, this means that these two elements can be connected or linked through one or more other elements.

[0029] In the following description, when reference is made to absolute position qualifiers, such as the terms "front", "back", "top", "bottom", "left", "right", etc., or relative position qualifiers, such as the terms "above", "below", "superior", "inferior", etc., or to orientation qualifiers, such as the terms "horizontal", "vertical", etc., reference is made, unless otherwise specified, to the orientation of the figures.

[0030] Unless otherwise specified, the expressions "approximately", "roughly", and "in the order of" mean within 10%, preferably within 5%.

[0031] The embodiments described below relate to electronic devices adapted to implement wireless data communications, such as Near Field Communication (NFC) or NFC communications. Near Field Communication is based on the use of a radio frequency field to exchange data, and on the modulation of the frequency of this field to encode data. An electronic device adapted to receive data from such Near Field Communication is equipped of an antenna and at least one signal extraction circuit. An antenna impedance management circuit, or antenna impedance control circuit, can also be used to improve the signal reception performance of the device.

[0032] More particularly, the embodiments described below relate to an electronic device comprising an antenna and an antenna impedance control circuit for improving the reception accuracy of a signal transmitted via near-field communication. These embodiments specifically improve the detection of a rising edge in the received signal. One such embodiment is described with reference to Figures 1 and 2. Its operation is described in more detail with reference to Figures 3 and 4.

[0033] Furthermore, the embodiments described above are particularly suitable for use in any type of industrial market where wireless communication, and more particularly wireless communication using a radio frequency field, such as NFC communication, is used. More specifically, such a device adapted to implement wireless communication can be intended for: - the automotive industry, for example in the field of automotive electrification or in the field of Advanced Driver Assistance Systems (ADAS); - the industrial industry, for example in the field of green energy, in the field of infrastructure electrification, the Internet of Things (IoT) and Smart Homes, where electricity and energy consumption and data exchange are key elements; and - the personal electronics industry, for example in the field of mobile telephony and the Internet of Things (IoT), as well as in the field of broadband interfaces.

[0034] Fig. 1 represents, very schematically and partially in block form, an embodiment of a system 100 comprising two electronic devices 101 and 102 adapted to communicate with each other by implementing wireless communication.

[0035] According to one embodiment, the electronic devices 101 and 102 are adapted to communicate Data 100 with each other by implementing near-field communication, or NFC communication. For this purpose, each device 101, respectively 102, comprises at least one antenna 1011, respectively 1021, represented in [Fig. 1] by a coil 1011, respectively 1021.

[0036] According to one embodiment, the device 101 is adapted to receive DatalOO data from the device 102. According to an example, the device 101 is, in addition, adapted to provide DatalOO data to the device 102.

[0037] To this end, according to one embodiment, the device 101 includes an embodiment of a control circuit 1012 (IMP MNG) for the impedance of the antenna 1011. An example of an embodiment of the circuit 1012 is described in detail with reference to [Fig. 2]. The device 101 further includes circuits 1013 (CHIP) for processing received data signals and, where applicable, data transmission circuits.

[0038] According to one embodiment, the device 102 is adapted to send DatalOO data to the device 101. According to an example, the device 102 is, in addition, adapted to receive DatalOO data at the device 101.

[0039] According to one example, the device 102 includes signal and data processing circuits 1022 (CHIP) for sending, and where appropriate receiving, data signals.

[0040] When DatalOO data is sent from device 102 to device 101, device 102 emits a radio frequency field and modulates the amplitude of this field to encode the DatalOO data. The antenna 1011 of device 101 receives this radio frequency field and decodes the DatalOO data by detecting the differences in the amplitude of the radio frequency field.

[0041] [Fig.2] represents an embodiment of part 200 of an electronic device of the type of the electronic device 101 described in relation to [Fig.1].

[0042] According to one example, part 200 comprises an antenna 201 formed by a parallel LC circuit. More particularly, the antenna 201 comprises a coil L201 and a capacitor C201 connected, preferably connected, in parallel with each other. Thus, a first terminal ANT201 of the antenna 201 is connected, preferably connected, to a first terminal of the coil L201 and to a first terminal of the capacitor C201, and a second terminal ANT202 of the antenna 201 is connected, preferably connected, to a second terminal of the coil L201 and to a second terminal of the capacitor C201.

[0043] According to one embodiment, the part 200 further includes a circuit 202 for impedance matching of the antenna 201. The circuit 202 includes two resistors R201 and R202 which are activated according to a voltage value received by the antenna 201.

[0044] According to one example, a first terminal of resistor R201 is connected, preferably connected, to the first terminal ANT201 of antenna 201, and a second terminal of resistor R201 is connected to a node GND200 providing a reference potential, for example, ground. To be switchable, resistor R201 is associated with a switch S201 controlled by a control voltage CTRL201. According to one example, a first terminal of switch S201 is connected, preferably connected, to the second terminal of resistor R201, and a second terminal of switch S201 is connected, preferably connected, to node GND200. According to one mode of In implementation, the resistors R201 and R202 have fixed resistance, resistivity or impedance values ​​that are totally independent of the amplitude of the radio frequency field received by the antenna 201.

[0045] According to one example, one terminal of resistor R202 is connected, preferably connected, to the second terminal ANT202 of antenna 202, and a second terminal of resistor R202 is connected to node GND200. To be switchable, resistor R202 is associated with a switch S202 controlled by a control voltage CTRL202. According to one example, one terminal of switch S202 is connected, preferably connected, to the second terminal of resistor R202, and a second terminal of switch S202 is connected, preferably connected, to node GND200.

[0046] According to a preferred example, the control voltages CTRL201 and CTRL202 control the opening and closing of switches S201 and S202 simultaneously. In one embodiment, switches S201 and S202 are identical, and the control voltages CTRL201 and CTRL202 are also identical.

[0047] According to one example, part 200 further comprises a voltage rectifier circuit B201 for rectifying a voltage supplied by antenna 201. According to one example, the voltage rectifier circuit is a diode bridge comprising, for example, four diodes. A diode bridge configuration is a well-known example of a voltage rectifier circuit and is therefore not described in detail. Thus, a first input node of circuit B201 is connected, preferably connected, to the first terminal ANT201 of antenna 201, and a second input node of circuit B201 is connected, preferably connected, to the second terminal ANT202 of antenna 201. A first output node of circuit B201 is connected, preferably connected, to a node N201, and a second output node of circuit B201 is connected, preferably connected, to the node GND200.

[0048] According to one example, part 200 further includes a filter capacitor C202. According to one example, a first terminal of capacitor C202 is connected, preferably connected, to node N201, and a second terminal of capacitor C202 is connected, preferably connected, to node GND200.

[0049] According to one example, part 200 further comprises a circuit 203 for controlling the impedance seen by said antenna 201. According to one example, circuit 203 allows the impedance of node N201 to be matched. According to one example, circuit 203 comprises two resistors R203 and R204, a voltage comparator AMP201, and a transistor T201. The two resistors R203 and R204 are connected in series between node N201 and node GND200. According to one example, one terminal of resistor R203 is connected, preferably connected, to node N201. A second terminal of resistor R203 is connected, preferably connected, to one terminal of resistor R204. A second terminal of resistor R204 is connected, preferably connected, to the node GND200. A first input terminal (+) of comparator AMP201 is connected, preferably connected, to the middle node between resistors R203 and R204. A second input terminal (-) of comparator AMP201 receives a reference potential Vref. An output terminal of comparator AMP201 is connected, preferably connected, to a control terminal of transistor T201. A first conduction terminal of transistor T201 is connected, preferably connected, to node N201, and a second conduction terminal of transistor T201 is connected, preferably connected, to node GND200. For example, transistor T201 is a metal-oxide-semiconductor field-effect transistor (MOSFET). Furthermore, transistor T201 is an N-channel MOS transistor.

[0050] In one example, part 200 further comprises a circuit 204 for supplying a voltage proportional to the amplitude of a radio frequency field received by the antenna 201. In one example, circuit 204 comprises: - a voltage rectifier circuit B202 of the type of the voltage rectifier circuit B201 described previously; - a parallel RC circuit, comprising a capacitor C203 and a resistor R205; and - an INV201 inverter circuit.

[0051] Thus, a first input node of the B202 circuit is connected, preferably connected, to the first ANT201 terminal of the antenna 201, and a second input node of the B202 circuit is connected, preferably connected, to the second ANT202 terminal of the antenna 201. A first output node of the B202 circuit is connected, preferably connected, to a node N202, and a second output node of the B202 circuit is connected, preferably connected, to the GND200 node.

[0052] One terminal of capacitor C203 is connected, preferably connected, to node N202, and a second terminal of capacitor C203 is connected, preferably connected, to node GND200. One terminal of resistor R205 is connected, preferably connected, to node N202, and a second terminal of resistor R205 is connected, preferably connected, to node GND200. A voltage VRX representing a smoothed image of the voltage supplied by antenna 201 is provided between nodes N202 and GND200.

[0053] An input terminal of the INV201 inverter circuit is connected, preferably connected, to node N202. A voltage N(VRX) representing a smoothed and inverted image of the voltage supplied by antenna 201 is supplied between the output terminal of the INV201 inverter circuit and node GND200.

[0054] The operation of part 200 is described in relation to [Fig.3].

[0055] [Fig.3] comprises two sets (A) and (B) of graphs illustrating the operation of part 200 of the electronic device described in relation to [Fig.2],

[0056] More specifically, series (A) illustrates the operation of a circuit of the type of part 200 described in relation to [Fig. 2] but not including the antenna impedance matching circuit 202. Series (B) illustrates the operation of part 2 described in relation to [Fig. 2]. Comparison of series (A) and (B) highlights the advantages of using the antenna impedance matching circuit 202.

[0057] More specifically, series (A) comprises: - a graph 301 (RF Field) representing an amplitude of a radio frequency field received by antenna 201 of part 200; - a graph 302 (IMP MNG) representing operating modes of the impedance management circuit 203 of part 200; - graphs 303 (ANT ENV) and 304 representing an image voltage of a radio frequency field received by antenna 201; and - a graph 305 (RX OUTPUT) representing data transmitted by the radio frequency field.

[0058] In addition, series (B) comprises: - a graph 311 (RF Field) representing an amplitude of a radio frequency field received by antenna 201 of part 200; - a graph 312 (IMP MNG) representing operating modes of the impedance management circuit 203 of part 200; - a graph 313 (RES LO AD) representing operating modes of circuit 202; - a graph 314 (ANT ENV) representing a voltage image of a radio frequency field received by antenna 201; and - a graph 315 (RX OUTPUT) representing data transmitted by the radio frequency field.

[0059] Figures 301 and 311 show that the radio frequency field received by antenna 201 has an amplitude that initially exhibits a high state, then a low state, and finally a high state. A high state is defined as an amplitude greater than a first threshold value. A low state is defined as an amplitude less than a second threshold value that is lower than the first threshold value.

[0060] When the radio frequency field is in a low state, the impedance management circuit 203 switches to a high impedance mode (H-RES), since the voltage The voltage collected by the antenna is lower than the reference voltage. This is illustrated by graphs 302 and 312.

[0061] In particular, in the case of series (A), the voltage representing the field received by the antenna transitions to a low state when the field is in a low state. However, Figures 303 and 304 show that this voltage can exhibit oscillation phenomena in the low state, which can distort the detection of data transmitted by the radio frequency field. In other words, this oscillation effect can make the detection of a rising edge inaccurate and cause detection delays. Figure 303 shows an oscillation phenomenon appearing on a voltage supplied by a circuit of the type of circuit 204 described in relation to [Fig. 2]. Figure 304 illustrates, by means of dashed lines, the value of this voltage that must be taken into account to obtain the data transmitted by the radio frequency field.

[0062] In the case of series (B), Figure 313 shows that, when the radio frequency field is in a low state, circuit 204 activates resistors R201 and R202 (ACT-RES). By activating these resistors, the antenna impedance is set to a high value, which has the effect of reducing, or even preventing, the occurrence of oscillation phenomena in the VRX voltage.

[0063] This advantage is visible when comparing the time of the rising front illustrated by graphs 305 and 315.

[0064] Fig. 4 is a set of curves further illustrating the operation of part 200 described in relation to Fig. 2.

[0065] The curves in [Fig. 4] were obtained by the inventors during a test implementation phase. [Fig. 4] highlights the advantages of using the antenna impedance matching circuit 202.

[0066] The [Fig.4] comprises: - a curve 401 representing the amplitude of a radio frequency field received by the antenna of part 200; - a 402 curve the voltage supplied, upon reception of the radio frequency field, by an antenna of a circuit not including a 202 circuit; - a curve 403 representing the value of the voltage of curve 402 which must be taken into account to obtain the data transmitted by the radio frequency field; - a curve 404 representing an output data signal obtained from the voltage of curve 402; - a curve 405 the voltage supplied, upon reception of the radio frequency field, by an antenna 201 of the part 200 of the [Fig.2] comprising the circuit 202; - a curve 406 representing the value of the voltage of curve 405 which must be taken into account to obtain the data transmitted by the radio frequency field; - a curve 407 representing an output data signal obtained from the voltage of curve 405; and - a curve 408 representing the evolution of a control voltage of the circuit 202.

[0067] Like the two series (A) and (B) of [Fig.3], the curves show that the use of a circuit of the type of circuit 202 makes it possible to limit the phenomena of oscillations of the amplitude of the voltage collected by the antenna when the voltage is in the low state, and therefore makes the detection of a rising edge more precise.

[0068] It should be noted that rising edge detection is an important feature, particularly when implementing near-field communication using a Type A communication protocol. In this case, detecting a rising edge during data transmission can enable the starting of a counter that measures the time between exchanged messages. Having a device capable of more accurately detecting a rising edge allows, for example, increased compatibility with other electronic devices.

[0069] Various embodiments and variations have been described. A person skilled in the art will understand that certain features of these various embodiments and variations could be combined, and other variations will become apparent to a person skilled in the art.

[0070] Finally, the practical implementation of the embodiments and variants described is within the reach of a person skilled in the art, based on the functional indications given above.

Claims

Demands

1. Electronic device (101) comprising an antenna (1011; 201) and an antenna impedance matching circuit (202) comprising first and second resistors (R201, R202) that can be activated according to the value of a field received by the antenna (1011; 201) and whose values ​​are independent of the value of said field received by said antenna (1011; 201), in which: - a first terminal of said first resistor (R201) is connected to a first terminal of said antenna (1011; 201); - a second terminal of said second resistor (R202) is connected to a second terminal of said antenna (1011; 201) different from said first terminal.

2. A method of wireless communication between a terminal and a device comprising an antenna (1011; 201) and an antenna impedance control circuit (1011; 201) comprising first and second resistors (R201, R202) that can be activated according to the value of a field received by the antenna (1011; 201) and whose values ​​are independent of the value of said field received by said antenna (1011; 201), wherein: - a first terminal of said first resistor (R201) is connected to a first terminal of said antenna (1011; 201); - a second terminal of said second resistor (R202) is connected to a second terminal of said antenna (1011; 201) different from said first terminal.

3. Device according to claim 1, or method according to claim 2, wherein said first resistor (R201) is activated when said field received by the antenna (1011; 201) has an amplitude in a low state, and said second resistor (R202) is activated when said field received by the antenna (1011; 201) has an amplitude in a low state.

4. Device according to claim 1 or 3, or method according to claim 2 or 3, wherein said first resistor (R201) is associated with a first switch (S201) controlled by a first control voltage (CTRL201) dependent on said field received by said antenna (1011; 201), and said second resistor (R202) is associated with a second switch (S202) controlled by a second voltage of command (CTRL202) of said field received by said antenna (1011; 201).

5. Device or method according to claim 4, wherein the first switch (S201) and the second switch (S2002) are identical, and the first control voltage (CTRL201) and the second control voltage (CTRL202) are identical.

6. Device or method according to claim 4 or 5, wherein the first control voltage (CTRL201) and the second control voltage (CTRL202) are supplied by a supply circuit (204) of a voltage image of the amplitude of a radio frequency field received by the antenna 201.

7. Device according to any one of claims 1, 3 to 6, or method according to any one of claims 2 to 6, wherein said device comprises a control circuit (203) of the impedance seen by said antenna (1011; 201).

8. System comprising a device according to any one of claims 1, 3 to 7 and a terminal.

Citation Information

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