IP Library Granted Patent US 7,342,441
Granted Patent B2
US 7,342,441 · App. 11/418,118 · Granted Mar 11, 2008

Heterodyne receiver array using resonant structures

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Quick Facts
Patent No.
US 7,342,441
App. No.
11/418,118
Granted
Mar 11, 2008
Kind
B2
Abstract

An electronic receiver array for decoding data encoded into electromagnetic radiation (e.g., light) is described. The light is received at an ultra-small resonant structure. The resonant structure generates an electric field in response to the incident light and light received from a local oscillator. An electron beam passing near the resonant structure is altered on at least one characteristic as a result of the electric field. Data is encoded into the light by a characteristic that is seen in the electric field during resonance and therefore in the electron beam as it passes the electric field. Alterations in the electron beam are thus correlated to data values encoded into the light.

Claims (34)

1. A receiver array to spatially demodulate a modulated signal from electromagnetic radiation, comprising:

at least one local oscillator providing locally generated electromagnetic radiation; and

plural receivers, each of said plural receivers comprising:

an input for receiving remotely generated electromagnetic radiation corresponding to the modulated signal;

a resonant structure adjacent to, but not directly in, the path of a passing charged particle beam that receives at least a portion of the remotely and locally generated electromagnetic radiation and resonates at a frequency that is a function of the frequencies of the locally and remotely generated electromagnetic radiation; and

at least one charged particle absorption element receiving at least a portion of the charged beam as a function of the frequencies of the locally and remotely generated electromagnetic radiation such that the modulated signal can be extracted from the remotely generated electromagnetic radiation.

2. The receiver according to claim 1 wherein the resonant structure is a rectangular shape or a C shape.

3. The receiver according to claim 1 wherein the resonant structure is a shape having a relatively small face to the charged particle beam relative to the total perimeter of the resonant structure.

4. The receiver according to claim 3 wherein the resonant structure is triangular and a point of the triangle is facing the charged particle beam.

5. The receiver according to claim 1 wherein the resonant structure is a shape that concentrates an electric field induced by the electromagnetic radiation near the passing charged particle beam.

6. The receiver according to claim 1 , further including:

a detector to detect whether the electrode is receiving at least the portion of the charged particle beam.

7. The receiver according to claim 1 , further including:

a detector to detect which of the first and second charged particle absorption elements is receiving the charged particle beam.

8. The receiver according to claim 1 wherein the first charged particle absorption element is a Faraday cup and the second charged particle absorption element is an electrode.

9. The receiver according to claim 1 , further including a source of electrons such that a beam of electrons acts as the beam of charged particles.

10. The receiver according to claim 1 , wherein the resonant structure has a dimension smaller than the wavelength of the electromagnetic radiation.

11. The receiver according to claim 1 , wherein the at least one local oscillator comprises an ultra-small resonant structure.

12. The receiver according to claim 1 , wherein the at least one local oscillator comprises a variable oscillator tuned to a selected frequency.

13. The receiver according to claim 1 , wherein the at least one local oscillator comprises one of plural selectively-controlled local oscillators.

14. The receiver according to claim 1 , wherein the at least one local oscillator comprises one of plural selectively-activated ultra-small resonant structure selected by at least one deflector.

15. A method of spatially demodulating a modulated signal from electromagnetic radiation, comprising:

receiving locally generated electromagnetic radiation from at least one local oscillator; and

demodulating the modulated signal at plural receivers, the demodulating comprising:

receiving remotely generated electromagnetic radiation corresponding to the modulated signal;

receiving, at a resonant structure adjacent to, but not directly in, the path of a passing charged particle beam, at least a portion of the remotely and locally generated electromagnetic radiation;

resonating the resonant structure at a frequency that is a function of the frequencies of the locally and remotely generated electromagnetic radiation; and

receiving, at least one charged particle absorption element, at least a portion of the charged beam as a function of the frequencies of the locally and remotely generated electromagnetic radiation such that the modulated signal can be extracted from the remotely generated electromagnetic radiation.

16. The method of demodulating according to claim 15 wherein the resonant structure is a rectangular shape or a C shape.

17. The method of demodulating according to claim 15 wherein the resonant structure is a shape having a relatively small face to the charged particle beam relative to the total perimeter of the resonant structure.

18. The method of demodulating according to claim 15 wherein the resonant structure is a shape that concentrates an electric field induced by the electromagnetic radiation near the passing charged particle beam.

19. The method of demodulating according to claim 15 , further including detecting which of the first and second charged particle absorption elements is receiving the charged particle beam.

20. The method of demodulating according to claim 15 , wherein the at least one local oscillator comprises an ultra-small resonant structure.

21. The method of demodulating according to claim 15 , wherein the at least one local oscillator comprises one of plural selectively-activated ultra-small resonant structure selected by a deflector.

Assignments (7)
CORRECTIVE ASSIGNMENT TO CORRECT THE TO REMOVE PATENT 7,559,836 WHICH WAS ERRONEOUSLY CITED IN LINE 27 OF SCHEDULE I AND NEEDS TO BE REMOVED AS FILED ON 4/10/2012. PREVIOUSLY RECORDED ON REEL 028022 FRAME 0961. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT. Recorded Apr 25, 2018
From: ADVANCED PLASMONICS, INC.
To: V.I. FOUNDERS, LLC
Reel/Frame 046011/0827 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNMENT PREVIOUSLY RECORDED AT REEL: 028022 FRAME: 0961. ASSIGNOR(S) HEREBY CONFIRMS THE CORRECTIVE ASSIGNMENT TO CORRECT THE #27 IN SCHEDULE I OF ASSIGNMENT SHOULD BE: TRANSMISSION OF DATA BETWEEN MICROCHIPS USING A PARTICLE BEAM, PAT. NO 7569836.. Recorded Dec 21, 2017
From: ADVANCED PLASMONICS, INC.
To: V.I. FOUNDERS, LLC
Reel/Frame 044945/0570 →
NUNC PRO TUNC ASSIGNMENT Recorded Oct 9, 2012
From: APPLIED PLASMONICS, INC.
To: ADVANCED PLASMONICS, INC.
Reel/Frame 029095/0525 →
NUNC PRO TUNC ASSIGNMENT Recorded Oct 3, 2012
From: VIRGIN ISLAND MICROSYSTEMS, INC.
To: APPLIED PLASMONICS, INC.
Reel/Frame 029067/0657 →
SECURITY AGREEMENT Recorded Apr 10, 2012
From: ADVANCED PLASMONICS, INC.
To: V.I. FOUNDERS, LLC
Reel/Frame 028022/0961 →
SECURITY AGREEMENT Recorded Dec 4, 2009
From: APPLIED PLASMONICS, INC.
To: V.I. FOUNDERS, LLC
Reel/Frame 023594/0877 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2006
From: GORRELL, JONATHAN; DAVIDSON, MARK
To: VIRGIN ISLANDS MICROSYSTEMS, INC.
Reel/Frame 017810/0819 →