IP Library Granted Patent US 8,817,891
Granted Patent B2
US 8,817,891 · App. 13/377,124 · Granted Aug 26, 2014

Milli-meter-wave-wireless-interconnect (M2W2-interconnect) method for short-range communications with ultra-high data rate capability

Inventors: Sai-Wang Tam (Rosemead, CA); Mau-Chung Frank Chang (Los Angeles, CA)
Assignee: The Regents of the University of California
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Quick Facts
Patent No.
US 8,817,891
App. No.
13/377,124
Granted
Aug 26, 2014
Kind
B2
Abstract

A millimeter wave wireless (M2W2) interconnect is used for transmitting and receiving signals at millimeter-wave frequencies for short-range wireless communication with high data rate capability. The transmitter and receiver antennae may comprise an on-chip differential dipole antenna or a bond wire differential dipole antenna. The bond wire differential dipole antenna is comprised of a pair of bond wires connecting between a pair of pads on an integrated circuit (IC) die and a pair of floating pads on a printed circuit board (PCB).

Claims (32)

1. A wireless interconnect for transmitting and receiving signals at specified frequencies for short-range communication with high data rate capability, comprising:

a transmitter for modulating a carrier signal with an input data stream, wherein the modulated carrier signal is then fed to a transmitter antenna that radiates the modulated carrier signal; and

a receiver for receiving the radiated carrier signal at a receiver antenna and for converting the received carrier signal to a full swing digital signal as an output data stream;

wherein the transmitter and receiver use asynchronous modulation and differential signaling for communicating between integrated circuit chips or printed circuit boards; and

wherein the transmitter or receiver antenna comprises a bond-wire dipole antenna, and the bond-wire dipole antenna is comprised of a pair of bond wires connecting between a pair of pads on a integrated circuit (IC) die mounted on a printed circuit board (PCB) and a pair of floating pads on the PCB.

2. The wireless interconnect of claim 1 , wherein the wireless interconnect is a millimeter wave wireless (M2W2) interconnect and the specified frequencies are millimeter-wave frequencies.

3. The wireless interconnect of claim 2 , wherein the modulated carrier signal is a millimeter-wave carrier signal.

4. The wireless interconnect of claim 1 , wherein the specified frequencies are transmitted concurrently in a plurality of different frequency bands to implement multiple parallel communication links.

5. The wireless interconnect of claim 1 , wherein the transmitter or receiver antenna comprises an on-chip differential dipole antenna.

6. The wireless interconnect of claim 1 , wherein the transmitter includes a voltage-controlled oscillator that generates the carrier signal.

7. The wireless interconnect of claim 1 , wherein the transmitter includes an amplitude-shift keying (ASK) modulator in which a pair of on-off switches directly modulates the carrier signal using the input data stream.

8. The wireless interconnect of claim 1 , wherein the modulated carrier signal is amplified by the transmitter before being radiated by the transmitter antenna.

9. The wireless interconnect of claim 1 , wherein the received carrier signal is amplified by the receiver after being received by the receiver antenna.

10. The wireless interconnect of claim 1 , wherein the receiver includes a self-mixer comprising a differential-mutual-mixer that acts as an envelope detector and converts the received carrier signal by demodulating the received carrier signal to a base-band signal.

11. The wireless interconnect of claim 10 , wherein the base-band signal is amplified to the full swing digital signal.

12. The wireless interconnect of claim 1 , wherein the receiver only detects changes in amplitude of the carrier signal and does not detect changes in phase or frequency variations of the carrier signal, and thus the receiver operates asynchronously without a phase-lock loop, while eliminating any need for carrier signal re-generation.

13. A method for transmitting and receiving signals at specified frequencies for short-range communication with high data rate capability using a wireless interconnect, comprising:

modulating, in a transmitter, a carrier signal with an input data stream, wherein the modulated carrier signal is then fed to a transmitter antenna that radiates the modulated carrier signal; and

receiving, in a receiver, the radiated carrier signal at a receiver antenna and for converting the received carrier signal to a full swing digital signal as an output data stream;

wherein asynchronous modulation and differential signaling are used in the transmitter and receiver for communicating between integrated circuit chips or printed circuit boards; and

wherein the transmitter or receiver antenna comprises a bond-wire dipole antenna, and the bond-wire dipole antenna is comprised of a pair of bond wires connecting between a pair of pads on a integrated circuit (IC) die mounted on a printed circuit board (PCB) and a pair of floating pads on the PCB.

14. The method of claim 13 , wherein the wireless interconnect is a millimeter wave wireless (M2W2) interconnect and the specified frequencies are millimeter-wave frequencies.

15. The method of claim 14 , wherein the modulated carrier signal is a millimeter-wave carrier signal.

16. The method of claim 13 , wherein the specified frequencies are transmitted concurrently in a plurality of different frequency bands to implement multiple parallel communication links.

17. The method of claim 13 , wherein the transmitter or receiver antenna comprises an on-chip differential dipole antenna.

18. The method of claim 13 , wherein the transmitter includes a voltage-controlled oscillator that generates the carrier signal.

19. The method of claim 13 , wherein the transmitter includes an amplitude-shift keying (ASK) modulator in which a pair of on-off switches directly modulates the carrier signal using the input data stream.

20. The method of claim 13 , wherein the modulated carrier signal is amplified by the transmitter before being radiated by the transmitter antenna.

21. The method of claim 13 , wherein the received carrier signal is amplified by the receiver after being received by the receiver antenna.

22. The method of claim 13 , wherein the receiver includes a self-mixer comprising a differential-mutual-mixer that acts as an envelope detector and converts the received carrier signal by demodulating the received carrier signal to a base-band signal.

23. The method of claim 22 , wherein the base-band signal is amplified to the full swing digital signal.

24. The method of claim 13 , wherein the receiver only detects changes in amplitude of the carrier signal and does not detect changes in phase or frequency variations of the carrier signal, and thus the receiver operates asynchronously without a phase-lock loop, while eliminating any need for carrier signal re-generation.

Continuity (2)
Provisional Application 61185946 · Jun 10, 2009
Related Publication 20120082194A1 · Apr 5, 2012