Antenna design for active load modulation in a near field communication transponder device
10505254 ยท 2019-12-10
Assignee
Inventors
Cpc classification
H01Q7/00
ELECTRICITY
H01Q9/0478
ELECTRICITY
H01Q1/273
ELECTRICITY
H01Q1/2225
ELECTRICITY
International classification
H01Q7/00
ELECTRICITY
H01Q1/22
ELECTRICITY
G06K19/077
PHYSICS
Abstract
A near field communications (NFC) transponder includes a transmit circuit coupled to a transmit antenna and a receive circuit coupled to a receive antenna. The transmit/receive antennae are configured such that no signal is induced on the receive antenna by operation of the transmit antenna. Advantageously, this permits continued reception by the receive antenna while the transmit antenna is used for transmission using active load modulation.
Claims
1. A near field communications (NFC) transponder, comprising: a transmit circuit having a first output and a second output; a receive circuit having a first input and a second input; a near field transmit only antenna having a first antenna segment coupled between the first and second outputs of the transmit circuit and a ground node and a second antenna segment coupled between the first and second outputs of the transmit circuit and the ground node; and a near field receive only antenna having a first antenna terminal coupled to the first input of the receive circuit and a second antenna terminal coupled to the second input of the receive circuit; wherein the first antenna segment carries a first current producing a first magnetic field and the second antenna segment carries a second current producing a second magnetic field; wherein the first antenna segment of the near field transmit only antenna extends parallel to a first portion of the near field receive only antenna and wherein the second antenna segment of the near field transmit only antenna extends parallel to a second portion of the near field receive only antenna, the first and second magnetic fields canceling each other so as to not induce a signal on the near field receive only antenna.
2. The NFC transponder of claim 1, wherein the first and second antenna segments for the near field transmit only antenna are formed in a first plane and wherein the near field receive only antenna is formed in a second plane.
3. The NFC transponder of claim 2, wherein the first and second planes are parallel planes.
4. The NFC transponder of claim 2, wherein the first and second planes are coplanar planes.
5. The NFC transponder of claim 1, wherein the first and second outputs of the transmit circuit are directly electrically connected to each other and directly electrically connected to a first antenna terminal of each of the first and second antenna segments.
6. The NFC transponder of claim 1, wherein a second antenna terminal of each of the first and second antenna segments is directly electrically connected to the ground node.
7. The NFC transponder of claim 1, wherein the first and second outputs of the transmit circuit are directly electrically connected to balanced inputs of a balun and an unbalanced output of the balun is directly electrically connected to a first antenna terminal of each of the first and second antenna segments.
8. The NFC transponder of claim 7, wherein a second antenna terminal of each of the first and second antenna segments is directly electrically connected to the ground node.
9. The NFC transponder of claim 1, wherein the near field transmit only antenna is formed in a loop that completely surrounds the near field receive only antenna.
10. The NFC transponder of claim 1, wherein the near field receive only antenna is formed in a loop that completely surrounds the near field transmit only antenna.
11. A near field communications (NFC) transponder, comprising: a transmit circuit; a receive circuit having a first input and a second input; a near field transmit only antenna electrically coupled to an output of the transmit circuit, the near field transmit only antenna having a first antenna segment coupled between the output of the transmit circuit and a ground node and a second antenna segment coupled between the output of the transmit circuit and the ground node; wherein the first antenna segment carries a first current producing a first magnetic field and the second antenna segment carries a second current producing a second magnetic field; and a near field receive only antenna loop electrically coupled to an input of the receive circuit; wherein the first antenna segment of the near field transmit only antenna extends parallel to a first portion of the near field receive only antenna loop and wherein the second antenna segment of the near field transmit only antenna extends parallel to a second portion of the near field receive only antenna loop, the first and second magnetic fields canceling each other so as to not induce a signal on the near field receive only antenna loop.
12. The NFC transponder of claim 11, wherein the first and second antenna segments for the near field transmit only antenna are formed in a first plane and wherein the near field receive only antenna loop is formed in a second plane.
13. The NFC transponder of claim 12, wherein the first and second planes are parallel planes.
14. The NFC transponder of claim 12, wherein the first and second planes are coplanar planes.
15. The NFC transponder of claim 11, further including a balun coupled between the output of the transmit circuit and the near field transmit only antenna.
16. The NFC transponder of claim 11, wherein the near field transmit only antenna is formed in a loop that completely surrounds the near field receive only antenna loop.
17. The NFC transponder of claim 11, wherein the near field receive only antenna loop completely surrounds the near field transmit only antenna.
18. A near field communications (NFC) transponder, comprising: a transmit circuit having a first output and a second output; a receive circuit having a first input and a second input; a near field transmit only antenna having a first antenna segment coupled in series with a second antenna segment between the first and second outputs of the transmit circuit; wherein the first antenna segment carries a first current producing a first magnetic field and the second antenna segment carries a second current producing a second magnetic field; and a near field receive only antenna having a first antenna terminal coupled to the first input of the receive circuit and a second antenna terminal coupled to the second input of the receive circuit; wherein the first antenna segment of the near field transmit only antenna extends parallel to a first portion of the near field receive only antenna and wherein the second antenna segment of the near field transmit only antenna extends parallel to a second portion of the near field receive only antenna, the first and second magnetic fields canceling each other so as to not induce a signal on the near field receive only antenna.
19. The NFC transponder of claim 18, wherein the first and second antenna segments for the near field transmit only antenna are formed in a first plane and wherein the near field receive only antenna is formed in a second plane, and wherein the first and second planes are perpendicular planes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the principles of the invention.
(2) In the drawings:
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8) Reference is made to
(9) In an implementation of the transmit circuit 104 where the RF output terminals RFO1 and RFO2 cannot be directly electrically connected together due to the transmit circuit electrical configuration, a balun 122 can instead be used with (balanced) inputs coupled to the RF output terminals RFO1 and RFO2 and a single-ended (unbalanced) output RFO to which the first end terminals of the first and second (segments) portions 110a and 110b of the transmit antenna 112 are directly electrically connected.
(10) The impedances of the transmit antenna 112 and the receive antenna 118 are defined in accordance with the input and output impedance requirements of the terminals RFO1, RFO2, RFO, RFI1 and RFI2. Alternatively, a matching network will transfer the impedances of RFO1, RFO2, RFO, RFI1, and RFI2 to the impedance of the transmit antenna 112 and receive antenna 118.
(11)
(12) In an alternative implementation, as shown in
(13) Although
(14) The arrows 140 show the direction of current flow in the first portion 110a and the second portion 110b of the transmit antenna 112. This current flow produces magnetic field lines 142a and 142b, respectively, which cancel each other and thus do not induce a signal on the receive antenna 118. Because no signal is induced by the transmit antenna 112 on the receive antenna 118 due to current flow in the transmit antenna 112, the receive circuit 106 can continuously monitor the reader terminal field during transmit circuit 104 operation and thus function to receive signals from the reader terminal and maintain synchronization with the reader terminal without interruption.
(15) As previously noted, the integration of NFC functionality on very small devices (such as wearables and mobile phones) necessitates the use of small antennae for the transmit antenna 112 and the receive antenna 118. Indeed,
(16) Because a passive linear system is used, the positions of the antennae shown in
(17)
(18) In a preferred implementation with the antennae planes either parallel or coplanar as shown in
(19) Although
(20) The relative size relationship between the antennae of the transponder and the antenna of the reader as shown in
(21) It will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the spirit or scope of the invention. Thus, it is intended that the present invention cover the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.