RADIO FREQUENCY IDENTIFICATION DEVICE
20170337460 ยท 2017-11-23
Inventors
Cpc classification
G06K19/07749
PHYSICS
International classification
Abstract
An RFID device includes: at least one solar cell including a substrate, a first conductive layer, an electron supplying layer, an electron receiving layer and a second conductive layer sequentially stacked thereon; and a RFID tag coupled to the solar cell through a telecommunication connection structure, and including a first antenna, a second antenna and a RFID chip, and the RFID chip includes a first RFID module, a second RFID module and a radio frequency determination module. The first antenna and the first RFID module are capable of passively receiving a driving signal of an external device and returning tag data, and the radio frequency determination module is capable of automatically determining the external driving signal, and the second RFID module and the second antenna actively transmit the tag data to the external device according to the electric power supplied by the solar CELL.
Claims
1. A radio frequency identification (RFID) device, comprising: at least one solar cell, including: a substrate; a first conductive layer, disposed on the substrate; an electron supplying layer, disposed on the first conductive layer; an electron receiving layer, disposed on the electron supplying layer; and a second conductive layer, disposed on the electron receiving layer; and a RFID tag, installed on the substrate, and coupled to the solar cell through a telecommunication connection structure, and the RFID tag including a first antenna, a second antenna and a RFID chip including a first RFID module coupled to the first antenna, a second RFID module coupled to the second antenna, a radio frequency determination module coupled to the first RFID module and the second RFID module, and the first antenna and the first RFID module passively receiving a driving signal from an external device and returning tag data, and the second RFID module and the second antenna actively transmitting the tag data to the external device according to electric power supplied by the solar cell when the radio frequency determination module automatically determines an external driving signal, and a switching unit installed between the RFID chip and the first antenna and the second antenna, and provided for manually switching between the first antenna and RFID module or the second antenna and RFID module to transmit the tag data.
2. (canceled)
3. The RFID device according to claim 1, wherein the solar cell further comprises a mixed electron supplying/receiving layer disposed between the electron supplying layer and the electron receiving layer.
4. The RFID device according to claim 3, further comprising a bonding layer disposed between the first conductive layer and the substrate, and disposed between the RFID tag and the substrate.
5. The RFID device according to claim 4, further comprising a first protective layer, disposed on the solar cell and the RFID tag.
6. The RFID device according to claim 5, further comprising a second protective layer disposed on another side of the substrate opposite to the bonding layer.
7. The RFID device according to claim 5, wherein the first protective layer further has a notch formed at a position corresponsive to the RFID tag.
8. The RFID device according to claim 6, further comprising an encapsulation layer disposed between the bonding layer and the first protective layer, or disposed between the first protective layer and the second protective layer.
9. The RFID device according to claim 1, wherein the substrate is a hard or soft opaque substrate.
10. The RFID device according to claim 1, wherein the substrate is a hard or soft transparent substrate.
11. The RFID device according to claim 10, wherein the substrate is a translucent plastic substrate or translucent glass substrate.
12. The RFID device according to claim 11, wherein the translucent plastic substrate is made of a material selected from the group consisting of PET, PE, PMMA, PI, PA, PU and acrylic.
13. The RFID device according to claim 11, wherein the translucent plastic substrate has a thickness from 10 um to 500 um.
14. The RFID device according to claim 4, wherein the bonding layer is made of a material selected from the group consisting of acrylic, epoxy resin, silicon dioxide and any combination thereof.
15. The RFID device according to claim 4, wherein the bonding layer has a thickness from 1 um to 5 um.
16. The RFID device according to claim 1, wherein the first conductive layer is partially etched to selectively form a conductive circuit.
17. The RFID device according to claim 1, wherein the first conductive layer is partially etched to selectively form the antenna.
18. The RFID device according to claim 1, wherein the first conductive layer is made of an organic material, an inorganic material, or a combination thereof.
19. The RFID device according to claim 18, wherein the organic material is one selected from the group consisting of PEDOT, carbon nanotube, and a combination thereof.
20. The RFID device according to claim 18, wherein the inorganic material is a metal or a metallic oxide.
21. The RFID device according to claim 1, wherein the first conductive layer has a transmittance from 70% to 95%.
22. The RFID device according to claim 1, wherein the first conductive layer has a thickness from 100 nm to 10 um.
23. The RFID device according to claim 1, wherein the second conductive layer and the telecommunication connection structure are formed by screen printing a silver paste conductive coating.
24. The RFID device according to claim 1, wherein the second conductive layer and the telecommunication connection structure has a thickness from 1 um to 50 um.
25. The RFID device according to claim 6, wherein the first protective layer and the second protective layer are made of a transparent plastic or glass and has a thickness from 50 um to 500 um.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0038]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0039] The technical contents of this disclosure will become apparent with the detailed description of preferred embodiments accompanied with the illustration of related drawings as follows. It is intended that the embodiments and figures disclosed herein are to be considered illustrative rather than restrictive.
[0040] With reference to
[0041] Specifically, the solar cell 10 comprises a substrate 11, a first conductive layer 12, an electron supplying layer 13, an electron receiving layer 14 and a second conductive layer 15 and further comprises a mixed electron supplying/receiving layer 16. The first conductive layer 12 is disposed on the substrate 11; the electron supplying layer 13 is disposed on the first conductive layer 12; the electron receiving layer 14 is disposed on the electron supplying layer 13; the second conductive layer 15 is disposed on the electron receiving layer 14, and the mixed electron supplying/receiving layer 16 is disposed between the electron supplying layer 13 and the electron receiving layer 14, wherein the first conductive layer 12 is preferably disposed on the substrate 11 through a bonding layer 40. The RFID tag 20 is installed on the substrate 11 and coupled to the first conductive layer 12 of the solar cell 10 the through the telecommunication connection structure 30, wherein the RFID tag 20 is preferably disposed on the substrate 11 through the bonding layer 40. The RFID tag 20 comprises a first antenna 21, a second antenna 22 and a RFID chip 23, and the RFID chip 23 comprises a first RFID module 231 coupled to the first antenna 21, a second RFID module 232 coupled to the second antenna 22, and a radio frequency determination module 233 coupled between the first RFID module 231 and the second RFID module 232, and the first antenna 21 and the first RFID module 231 are provided for passively receiving a driving signal of an external device and returning tag data. The radio frequency determination module 233 is capable of automatically determining the external driving signal, and the second RFID module 232 and the second antenna 22 actively transmit the tag data to the external device according to the electric power supplied by the solar cell 10. In short, the RFID tag 20 has both ACTIVE and passive functions, and when the passive function is performed, the power consumption of the solar cell 10 can be reduced. In addition, the RFID tag 20 further comprises a switching unit 24 installed between the RFID chip 23 and the first antenna 21 and the second antenna 22 as shown in
[0042] Wherein, the first conductive layer 12 is partially etched to selectively form the conductive circuit, or the first conductive layer 12 is partially etched to selectively form the antenna.
[0043] Wherein, the substrate 11 is a hard or soft opaque substrate or transparent substrate. If the transparent substrate is adopted, then it may be a translucent plastic substrate or a translucent glass substrate made of PET, PE, PMMA, PI, PA, PU or acrylic and has a thickness from 10 um to 500 um, but the invention is not limited to such arrangements only. The first conductive layer 12 is made of an organic material, an inorganic material, or a combination of the two, and the organic material is PEDOT, carbon nanotube, or a combination of the two, and the inorganic material is a metal or a metallic oxide, and the first conductive layer 12 has a transmittance from 70% to 95% and a thickness from 100 nm to 10 um, but the invention is not limited to such arrangements only. The second conductive layer 15 and the telecommunication connection structure 30 are formed and screen printed by a silver paste conductive coating and has a thickness from 1 um to 50 um, but the invention is not limited to such arrangement only. The bonding layer 40 is made of acrylic, epoxy resin, silicon dioxide, or any combination of the above and has a thickness from 1 um to 5 um, but the invention is not limited to such arrangements only.
[0044] With reference to
[0045] In summation of the description above, the RFID device of the present invention integrates the RFID tag with passive and active functions and the solar cell, so that the solar cell formed by a miniaturization process can reduce the total volume, and can convert light energy into electric energy to be supplied to the RFID tag, so as to achieve the energy saving effect In addition, the RFID device is capable of executing a corresponsive function to cope with different distances, so as to transmit the tag data in the best mode.
[0046] The present invention breaks through the prior art and definitely achieves the intended effects, and the invention is novel and is not apparent to or easily perceived by persons having ordinary skill in the art. In addition, the present invention is novel, inventive, useful, and in compliance with patent application requirements, and thus is duly filed for patent application.
[0047] While the ideas and technical characteristics of this disclosure have been described by means of specific embodiments, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of this disclosure set forth in the claims.