IP Library › Granted Patent US 12,015,195
Granted Patent B2
US 12,015,195 · App. 17/607,435 · Granted Jun 18, 2024

High gain and large beamwidth Rotman-Lens-based and mm-wave energy harvester systems and associated methods

Inventors: Aline Eid (Atlanta, GA); Jimmy Georges Donald Hester (Atlanta, GA); Emmanouil Manos Tentzeris (Atlanta, GA)
Assignee: Georgia Tech Research Corporation
H01Q1/248H01Q21/065H01Q25/008H02J50/001H02J50/27
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Quick Facts
Patent No.
US 12,015,195
App. No.
17/607,435
Granted
Jun 18, 2024
Kind
B2
Abstract

The disclosed technology includes device, systems, techniques, and methods for mm-wave energy harvesting utilizing a Rotman-Lens-based rectenna system. An energy harvester system can include one or more antenna, a Rotman Lens having a beam port side and an antenna side in electrical communication with the one or more antenna, and a rectifier network in electrical communication with the beam port side of the Rotman Lens. The energy harvester system can also include a power combining network in electrical communication with the rectifier network and having an output. The rectifier network can include a plurality of rectifiers connected to the beam port side of the Rotman Lens. Further, each of the plurality of rectifiers can include a rectifying diode. The power combining network can include a plurality of bypass diodes.

Claims (84)

1. An energy harvesting system comprising:

a transceiver comprising an antenna;

a Rotman Lens having a beam port side and a transceiver side, the transceiver side configured to be in electrical communication with the transceiver; and

rectifier network in electrical communication with the beam port side of the Rotman Lens;

wherein the system is configured to transition between an initial unpowered state and a powered state, the system having no access to power in the initial unpowered state and the system having access to power via wireless power harvesting in the powered state.

2. The system of claim 1 , wherein the antenna comprises a serially-fed patch antenna.

3. The system of claim 1 , wherein the antenna comprises an omni-directional antenna.

4. The system of claim 1 further comprising one or more additional antennae;

wherein the transceiver side of the Rotman Lens is an antenna side of the Rotman Lens comprising antenna ports; and

wherein each antenna port of the antenna side of the Rotman Lens is in electrical communication with a respective antenna of the antennae.

5. The system of claim 4 further comprising:

tapers between the antenna side of the Rotman Lens and the antennae; and

tapers between the beam port side of the Rotman Lens and the rectifier network.

6. The system of claim 1 , wherein components of the system including the transceiver, the Rotman Lens, and the rectifier network present a planar form factor where the components are on the same plane of a substrate.

7. The system of claim 6 , wherein the substrate comprises a flexible substrate; and

wherein the components of the system are printed on the flexible substrate.

8. The system of claim 1 further comprising:

a power combining network:

comprising bypass diodes; and

in electrical communication with the rectifier network;

wherein the beam port side of the Rotman Lens comprises beam ports;

wherein the rectifier network comprises rectifiers, each rectifier:

comprising a rectifying diode; and

connected to a respective beam port of the beam ports;

wherein the rectifier network comprises a total number N of the rectifying diodes; and

wherein the power combining network comprises a total number of the bypass diodes selected from the group consisting of 2*N and 2*(N−1).

9. The system of claim 1 , wherein the rectifier network comprises a plurality of DC block capacitors.

10. A flexible energy harvesting system comprising:

a flexible substrate comprising a Rotman-based rectenna architecture comprising:

a Rotman Lens having a beam port side and a transceiver side, the transceiver side configured to be in electrical communication with a transceiver; and

a rectifier network in electrical communication with the beam port side of the Rotman Lens.

11. The system of claim 10 , wherein the first flexible substrate further comprises:

a power combining network:

comprising a plurality of bypass diodes; and

in electrical communication with the rectifier network.

12. The system of claim 10 , wherein the energy harvesting system is configured provide at least 110° angular coverage at 28 GHz.

13. The system of claim 10 , wherein the Rotman-based rectenna architecture further comprises:

a power combining network:

comprising bypass diodes; and

in electrical communication with the rectifier network;

wherein the beam port side of the Rotman Lens comprises beam ports;

wherein the rectifier network comprises rectifiers, each rectifier:

comprising a rectifying diode; and

connected to a respective beam port of the beam ports;

wherein the rectifier network comprises a total number N of the rectifying diodes; and

wherein the power combining network comprises a total number of the bypass diodes selected from the group consisting of 2*N and 2*(N−1).

14. An energy harvesting system comprising:

one or more antennae;

a Rotman Lens having a beam port side and an antenna side, the antenna side in electrical communication with the one or more antennae;

a rectifier network in electrical communication with the beam port side of the Rotman Lens; and

a power combining network in electrical communication with the rectifier network;

wherein the rectifier network comprises rectifiers, each rectifier comprising a rectifying diode, with the rectifier network comprising a total number N of rectifying diodes;

wherein the power combining network comprises one or more bypass diodes; and

wherein the number of bypass diodes of the power combining network is selected from the group consisting of 2*N and 2*(N−1).

15. An energy-autonomous, self-powered harvesting system configured to provide wide angle coverage at at least 28 GHz comprising:

a Rotman Lens having a beam port side and a transceiver side, the transceiver side configured to be in electrical communication with a transceiver; and

a rectifier network in electrical communication with the beam port side of the Rotman Lens;

wherein the system is further configured to transition between an initial unpowered state and a powered state, the system having no access to power in the initial unpowered state and the system having access to power via wireless power harvesting in the powered state; and

wherein components of the system including the Rotman Lens and the rectifier network present a planar form factor where the components are on the same plane on a substrate.

16. An electronic device comprising:

a memory;

a transceiver comprising an antenna array;

a load;

an energy harvesting system comprising:

a Rotman Lens having a beam port side and a transceiver side;

a rectifier network in electrical communication with the beam port side of the Rotman Lens;

an energy harvesting processor, wherein the transceiver side of the Rotman Lens is in electrical communication with the antenna array of the transceiver; and

a power combining network in electrical communication with the rectifier network and having an output;

a first power source in electrical communication with the energy harvesting system; and

a second power source in electrical communication with the energy harvesting system;

wherein the energy harvesting system is an energy-autonomous, self-powered harvesting system configured to transition between an initial unpowered state and a powered state, the system having no access to power in the initial unpowered state and the system having access to power via wireless power harvesting in the powered state; and

wherein the first power source and the second power source are connected to the energy harvesting system via a switch.

17. The electronic device of claim 16 , wherein the memory comprises instructions that, when executed by the energy harvesting processor, are configured to cause the system to:

determine a first power level associated with the first power source;

compare the first power level to a predetermined power threshold; and

responsive to determining that the first power level falls below the predetermined power threshold, transmit instructions to cause the output of the power combining network to be in electrical communication with the first power source.

18. A method of manufacturing a flexible, energy-autonomous, self-powered harvesting system comprising:

printing, on a first flexible substrate, a Rotman-based rectenna architecture comprising:

a Rotman Lens having a beam port side and a transceiver side; and

a rectifier network in electrical communication with the beam port side of the Rotman Lens.

19. The method of claim 18 , wherein printing on the first flexible substrate further comprises printing one or more antennae, wherein the transceiver side of the Rotman Lens is an antenna side that is in electrical communication with the one or more antennae; and

wherein the method further comprises:

printing, on a second flexible substrate, a power summation network; and

connecting the Rotman-based rectenna architecture of the first flexible substrate to the power summation network of the second flexible substrate through a plurality of individual interconnects.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 5, 2022
From: EID, ALINE; HESTER, JIMMY GEORGES DONALD; TENTZERIS, MANOS
To: GEORGIA TECH RESEARCH CORPORATION
Reel/Frame 058556/0110 →
Continuity (2)
Provisional Application 62840798 · Apr 30, 2019
Related Publication 20220131258A1 · Apr 28, 2022