LABEL WITH RFID FUNCTION
20230074897 ยท 2023-03-09
Assignee
Inventors
Cpc classification
G06K19/07722
PHYSICS
H01Q1/2208
ELECTRICITY
G06K19/0723
PHYSICS
H01Q9/24
ELECTRICITY
G06K19/0726
PHYSICS
International classification
Abstract
A label with RFID function comprises a support layer and an RFID inlay with an RFID chip and an antenna connected to the RFID chip. The RFID inlay is arranged on the support layer. The antenna comprises at least one capacitive element on which the resonant frequency of the antenna depends. By adding the at least one capacitive element to the antenna, the read/write range of the RFID inlay can be increased.
Claims
1. A label with RFID function, comprising: a support layer (10), an RFID inlay (20) having an RFID chip (21) and an antenna (22) connected to the RFID chip (21), wherein the RFID inlay (20) is disposed on the support layer (10), wherein the antenna (22) comprises at least one capacitive element (110) on which the resonant frequency of the antenna (22) is dependent.
2. The label according to claim 1, wherein the at least one capacitive element (110) comprises at least one first conductive layer (111) and at least one second conductive layer (112) spaced apart from the at least one first conductive layer (111).
3. The label according to claim 2, wherein the at least one capacitive element (110) comprises at least one electrically insulating layer (113) disposed between the at least one first conductive layer (111) and the at least one second conductive layer (112).
4. The label according to claim 2, wherein the at least one capacitive element (110) comprises a first contacting element (114) and a second contacting element (115), wherein the first contacting element (114) is connected to the at least one first conductive layer (111) and the second contacting element (115) is connected to the at least one second conductive layer (112).
5. The label according to claim 3, wherein the at least one capacitive element (110) comprises a plurality of the at least one first and second conductive layers (111, 112) and the at least one electrically insulating layer (113) disposed one above the other.
6. The label according to claim 2, wherein the antenna (22) comprises a conductive path (100) connected to the RFID chip (21), wherein the at least one first conductive layer (111) is formed as a first portion (101) of the conductive path (100) and the at least one second conductive layer (112) is formed as a second portion (102) of the conductive path (100).
7. The label according to claim 6, wherein the conductive path (100) comprises a third portion (103), wherein the third portion (103) of the conductive path (100) is connected to the RFID chip (21), wherein the at least one capacitive element (110) is connected to the third portion (103) of the conductive path (100).
8. The label according to claim 1, wherein the at least one capacitive element (110) is formed as an interdigital capacitor.
9. The label according to claim 1, wherein the antenna (22) comprises a conductive path (100) connected to the RFID chip (21), wherein the at least one capacitive element (110) is connected to the conductive path (100).
10. The label according to claim 9, wherein the at least one capacitive element (110) is formed as a discrete component (110b), in particular as an SMD capacitor.
11. The label according to claim 1, wherein the antenna (22) is embodied as a UHF antenna.
12. A labeled vessel with RFID functionality for holding a liquid, comprising: a label (1) with RFID function according to claim 1, which is arranged on a surface of the vessel (2, 3).
13. The labeled vessel according to claim 12, wherein the vessel (2, 3) comprises a material of plastic, in particular of COC or PP or COP or combinations thereof.
14. The labeled vessel according to claim 12, wherein the vessel (2, 3) is embodied to hold a liquid.
15. A labeled container according to claim 12, wherein the vessel (2, 3) is formed as a vial (2) or a syringe (3).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Other objects and features of the invention will become apparent from the following detailed description considered in connection with the accompanying drawings. It is to be understood, however, that the drawings are designed as an illustration only and not as a definition of the limits of the invention.
[0014] In the drawings,
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0023]
[0024] The antenna 22 has at least one capacitive element 110. The antenna 22 is thereby configured such that, in the label according to the invention, the resonant frequency of the antenna and thus also the read/write range of the RFID inlay 20 is dependent on the at least one capacitive element 110. By connecting the at least one capacitive element to a conductive path of the antenna, the read/write range of the RFID label can thus be influenced and, in particular, increased.
[0025]
[0026] The at least one capacitive element 110 may include at least one first conductive layer 111 and at least one second conductive layer 112, according to an example embodiment shown in
[0027] The conductive path 100 of the antenna 22 includes a third portion 103 that is for matching purposes. The third portion 103 of the conductive path 100 is connected at the end E100 of the conductive path 100 to the RFID chip, which is not shown in
[0028] The principle of extending the read/write range of the RFID inlay by connecting capacitive structures to the conductive path 100 of the antenna 22 is explained clearly below with reference to
[0029]
[0030] By providing the capacitive elements 110, it is possible to virtually extend the electrical length of the antenna compared to the geometric length. The total length of the antenna, which determines its resonant frequency and thus, in the case of an RFID inlay, the read/write range of the RFID inlay, results from the actual geometric length I.sub.antenna of the electrical conductive path 100 and a virtual extension I.sub.virtual, which is generated by the capacitive elements 110. The actual geometric length I.sub.antenna of the conductive path 100 is thus virtually extended by the length I.sub.virtual drawn in dashed lines in
[0031] This means that the resonant frequency of the dipole antenna shown corresponds to a dipole antenna with a conductive path of the total length I.sub.antenna+I.sub.virtual. In the case of an RFID inlay, the RFID antenna can be more compact than comparable antennas without capacitive elements, which would have to be significantly longer to achieve the same read/write range, by connecting at least one capacitive element.
[0032]
[0033] In the embodiment shown in
[0034] The capacitive element 110 has a first contacting element 114 connected to the first conductive layers 111 and a second contacting element 115 connected to the second conductive layers 112. Such an interdigital capacitor can be used as a capacitive element in the antenna structure shown in
[0035]
[0036] As shown in the upper image of
[0037]
[0038] To realize the capacitive element according to the embodiment shown in
[0039] Instead of applying individual layers to the support layer 10, the at least one capacitive element can be formed as a discrete component, for example as an SMD capacitor, according to a further embodiment. The discrete component may also have the structure shown in
[0040] Since the label according to the invention with RFID function can achieve a large read/write range with a short geometric length of the antenna 22, the label 1 is suitable for application to small vessels, in particular vessels with a small usable surface. Possible vessels for sticking the label 1 are the syringe shown in
[0041] In addition to the vessels shown in
[0042] When the label with RFID function is used on containers with pharmaceutical content, the use of the RFID label enables, in particular, smooth and error-free medication management, which, for example, enables inventory monitoring in hospitals or pharmacies, ensures availability and thus helps to guarantee patient safety requirements.
[0043] Although only a few embodiments of the present invention have been shown and described, it is to be understood that many changes and modifications may be made thereunto without departing from the spirit and scope of the invention.
LIST OF REFERENCE SIGNS
[0044] 1 label with RFID function [0045] 2 syringe [0046] 3 vial [0047] 10 support layer [0048] 20 RFID inlay [0049] 21 RFID chip [0050] 22 antenna [0051] 30 adhesive coating [0052] 40 protective layer [0053] 100 conductive path [0054] 101, 102, 103 portions of the conductive path [0055] 110 capacitive element [0056] 111 first conductive layer [0057] 112 second conductive layer [0058] 113 electrically insulating layer [0059] 114, 115 contacting element