IP Library Granted Patent US 10,606,306
Granted Patent B2
US 10,606,306 · App. 16/263,705 · Granted Mar 31, 2020

Method of reducing power dissipation in a clock distribution network for integrated circuit

Inventor: Tomas Alexander Dusatko (Santa Clara, CA)
Assignee: INPHI CORPORATION
G06F1/10G06F1/32H01F17/0006H01L23/66H03H7/0123H03H11/28H01L2223/6627H03H7/09H03H7/383
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Quick Facts
Patent No.
US 10,606,306
App. No.
16/263,705
Filed
Jan 31, 2019
Granted
Mar 31, 2020
Kind
B2
Art Unit
2842
USPC
327/565
Abstract

A method and circuit are provided to reduce power consumption of high-speed clocks that are distributed across an integrated circuit (IC). Example implementations seek to reduce the amount of power dissipated in typical clock distribution networks by turning the combination of a multi-port electrical network and transmission line into a multi-resonant structure. In an implementation, the multi-port electrical network is coupled between first and second segments of the transmission line. The multi-port electrical network includes series and shunt reactive circuit elements, such as series inductive reactance and a shunt inductive susceptance, configured to produce first and second resonances that cooperate to create a bandpass response across clock distribution frequencies. This bandpass response is created by the multi-resonant structure, which is a combination of the transmission line and the multi-port electrical network. Various implementations are provided, including single-ended, differential, multi-section, multi-output, and point-to-multi-point implementations, each with an optional low-speed mode switch.

Claims (30)

1. A clock distribution network comprising:

a transmission line having a first segment and a second segment;

a multi-port electrical network coupled between the first segment and second segment of the transmission line, the multi-port electrical network comprising a passive electrical network configured to produce a first resonance and a second resonance that cooperate to create a bandpass response across a plurality of clock distribution frequencies associated with a bandwidth of a combination of the transmission line and the multi-port electrical network; and

a single input and multiple outputs.

2. The clock distribution network of claim 1 wherein the multi-port electrical network comprises series and shunt reactive circuit.

3. The clock distribution network of claim 2 wherein the series and shunt reactive circuit elements comprise a plurality of series inductive reactances and an equal number of shunt inductive susceptances configured to create a plurality of resonances.

4. The clock distribution network of claim 1 wherein the passive electrical network comprises passive elements which only present a frequency-dependent, complex impedance to the transmission line segments connected to the multi-port electrical network.

5. The clock distribution network of claim 1 wherein the passive electrical network comprises passive elements, the passive elements having an equivalent impedance that varies with frequency and having a value that is unchanged with changes in frequency.

6. The clock distribution network of claim 1 wherein the passive electrical network comprises a two-port passive network.

7. The clock distribution network of claim 1 wherein the passive electrical network comprises a three-element inductive network.

8. The clock distribution network of claim 1 further comprising a multi-resonant structure comprising a combination of the multi-port electrical network and the transmission line.

9. A clock distribution network comprising:

a transmission line having a first segment and a second segment;

a multi-port electrical network coupled between the first segment and second segment of the transmission line, the multi-port electrical network comprising a passive electrical network configured to produce a first resonance and a second resonance that cooperate to create a bandpass response across a plurality of clock distribution frequencies associated with a bandwidth of a combination of the transmission line and the multi-port electrical network; and

a point-to-multipoint implementation sending a clock from a single input point to multiple output points.

10. The clock distribution network of claim 9 further comprising a single input and multiple outputs.

11. The clock distribution network of claim 9 wherein the multi-port electrical network comprises series and shunt reactive circuit.

12. The clock distribution network of claim 11 wherein the series and shunt reactive circuit elements comprise a plurality of series inductive reactances and an equal number of shunt inductive susceptances configured to create a plurality of resonances.

13. The clock distribution network of claim 9 wherein the passive electrical network comprises passive elements which only present a frequency-dependent, complex impedance to the transmission line segments connected to the multi-port electrical network.

14. The clock distribution network of claim 9 wherein the passive electrical network comprises passive elements, the passive elements having an equivalent impedance that varies with frequency and having a value that is unchanged with changes in frequency.

15. The clock distribution network of claim 9 wherein the passive electrical network comprises a two-port passive network.

16. The clock distribution network of claim 9 wherein the passive electrical network comprises a three-element inductive network.

17. The clock distribution network of claim 9 further comprising a multi-resonant structure comprising a combination of the multi-port electrical network and the transmission line.

18. A clock distribution network comprising:

a transmission line having a first segment and a second segment; and

a multi-port electrical network coupled between the first segment and second segment of the transmission line, the multi-port electrical network comprising a passive electrical network configured to produce a first resonance and a second resonance that cooperate to create a bandpass response across a plurality of clock distribution frequencies associated with a bandwidth of a combination of the transmission line and the multi-port electrical network,

wherein the multi-port electrical network comprises series and shunt reactive circuit, and

wherein the series and shunt reactive circuit elements comprise a plurality of series inductive reactances and an equal number of shunt inductive susceptances configured to create a plurality of resonances.

19. The clock distribution network of claim 18 wherein the passive electrical network comprises passive elements which only present a frequency-dependent, complex impedance to the transmission line segments connected to the multi-port electrical network.

20. The clock distribution network of claim 18 wherein the passive electrical network comprises passive elements, the passive elements having an equivalent impedance that varies with frequency and having a value that is unchanged with changes in frequency.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 27, 2021
From: CAVIUM INTERNATIONAL
To: MARVELL ASIA PTE LTD.
Reel/Frame 057336/0873 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 25, 2021
From: MARVELL TECHNOLOGY CAYMAN I
To: CAVIUM INTERNATIONAL
Reel/Frame 057279/0519 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 23, 2021
From: INPHI CORPORATION
To: MARVELL TECHNOLOGY CAYMAN I
Reel/Frame 056649/0823 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 31, 2019
From: DUSATKO, TOMAS ALEXANDER
To: INPHI CORPORATION
Reel/Frame 048209/0581 →
Continuity (3)
Continuation 15910875 · Mar 2, 2018
Continuation 15403041 · Jan 10, 2017
Related Publication 20190163230A1 · May 30, 2019