IP Library Granted Patent US 10,333,529
Granted Patent B1
US 10,333,529 · App. 16/111,880 · Granted Jun 25, 2019

Method of forming a conversion circuit and structure therefor

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,333,529
App. No.
16/111,880
Granted
Jun 25, 2019
Kind
B1
Abstract

In one embodiment, a differential to single ended conversion circuit is configured to convert a differential signal to a single ended signal without using an operational amplifier and without using a current source to charge a capacitor.

Claims (39)

1. A conversion circuit for a phase looked loop comprising:

a first signal input configured to receive a first portion of a differential signal from a differential loop filter, and a second signal input configured to receive a second portion of the differential signal from the differential loop filter;

a power supply input;

a common return input;

a first capacitor having a first terminal coupled to a common mode node, the first capacitor having a second terminal;

a second capacitor having a first terminal coupled to the common mode node, the second capacitor having a second terminal;

a first switch having a first terminal coupled to the first signal input and having a second terminal coupled to the second terminal of the first capacitor;

a second switch having a first terminal coupled to the first signal input and having a second terminal coupled to the second terminal of the second capacitor;

a third switch having a first terminal coupled to the second signal input and having a second terminal coupled to the common mode node;

a fourth switch having a first terminal coupled to the power supply input and having a second terminal coupled to the second terminal of the first capacitor;

a fifth switch having a first terminal coupled to the common return input and having a second switch coupled to the second terminal of the second capacitor;

a sixth switch having a first terminal coupled to the common mode node and a second terminal coupled to an output node of the conversion circuit; and

a control circuit configured to enable the first switch the second switch and the third switch substantially simultaneously and configured to disable the first switch, the second switch, and the third switch substantially simultaneously, the control circuit configured to enable the fourth switch, the fifth switch, a and the sixth switch substantially simultaneously and to disable the fourth switch, the fifth switch, and the sixth switch substantially simultaneously wherein the control circuit enables the fourth switch, the fifth switch, and the sixth switch in a substantially non-overlapping manner relative to enablement of the first switch, the second switch, and the third switch.

2. The conversion circuit of claim 1 further including an output capacitor coupled between the output node and the common return input.

3. The conversion circuit of claim 1 further including a buffer circuit coupled between the output node and an output of the conversion circuit.

4. The conversion circuit of claim 3 wherein the buffer circuit has an input coupled to the output node to receive a signal formed at the output node, and has an output coupled to the output of the conversion circuit.

5. The conversion circuit of claim 3 wherein the buffer circuit includes a transistor having a control electrode coupled to the output node, and a first current carrying electrode coupled to the output of the conversion circuit.

6. The conversion circuit of claim 1 wherein the conversion circuit is devoid of an operational amplifier.

7. The conversion circuit of claim 1 wherein the conversion circuit is devoid of a current source.

8. A method of forming a conversion circuit for a phase lock loop comprising:

forming a first input and a second input to receive a differential signal from a differential loop filter;

forming a first conversion capacitor coupled to a second conversion capacitor;

configuring the conversion circuit to selectively charge the first conversion capacitor and the second conversion capacitor to a value of the differential signal; and

configuring the conversion circuit to thereafter selectively couple the first conversion capacitor and the second conversion capacitor in series, and selectively couple a reference voltage in parallel therewith.

9. The method of claim 8 wherein forming the first conversion capacitor coupled to the second conversion capacitor includes commonly coupling the first conversion capacitor and the second conversion capacitor to a conversion node.

10. The method of claim 9 including commonly coupling a first terminal of the first conversion capacitor to the conversion node, and coupling a first terminal of the second conversion capacitor to the conversion node.

11. The method of claim 8 wherein configuring the conversion circuit to selectively charge the first conversion capacitor and the second conversion capacitor includes configuring the conversion circuit to selectively couple the first conversion capacitor and the second conversion capacitor in parallel with the differential signal.

12. The method of claim 8 wherein configuring the conversion circuit to selectively charge the first conversion capacitor and the second conversion capacitor includes configuring the conversion circuit to selectively couple the first input to a first terminal of the first conversion capacitor and to a first terminal of the second conversion capacitor, and to selectively couple the second input to a second terminal of the first conversion capacitor and to a second terminal of the second conversion capacitor.

13. The method of claim 8 wherein configuring the conversion circuit to thereafter selectively couple the first conversion capacitor and the second conversion capacitor in series includes configuring the conversion circuit to selectively couple a power supply voltage in parallel therewith.

14. The method of claim 8 wherein configuring the conversion circuit to thereafter selectively couple the first conversion capacitor and the second conversion capacitor in series includes coupling a first terminal of the first conversion capacitor to a first terminal of the second conversion capacitor, selectively coupling the reference voltage to a second terminal of the first conversion capacitor, and selectively coupling a second terminal of the second conversion capacitor to a common return of the reference voltage.

15. The method of claim 8 further including coupling a first switch between the first input and a conversion node that is commonly coupled to a first terminal of the first conversion capacitor and a first terminal of the second conversion capacitor.

16. The method of claim 15 further including coupling a second switch between the second input and a second terminal of the first conversion capacitor, and coupling a third switch between the second input and a second terminal of the second conversion capacitor.

17. The method of claim 16 further including coupling a fourth switch between the conversion node and an output of the conversion circuit.

18. The method of claim 17 including coupling the fourth switch between the conversion node and a first terminal of an output.

19. The method of claim 17 further including coupling a fifth switch between the second terminal of the first conversion capacitor and the reference voltage.

20. A method of forming a conversion circuit for converting a differential signal to a single ended signal for a phase locked loop comprising:

providing inputs to receive a differential signal from a differential loop filter;

configuring the conversion circuit to store a value of the differential signal to form a stored signal; and

configuring the conversion circuit to add a fraction of a value of a reference signal to the stored signal to form a single ended output signal.

Assignments (3)
RELEASE OF SECURITY INTEREST IN PATENTS RECORDED AT REEL 047399, FRAME 0631 Recorded Jun 23, 2023
From: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
To: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC; FAIRCHILD SEMICONDUCTOR CORPORATION
Reel/Frame 064078/0001 →
SECURITY INTEREST Recorded Nov 1, 2018
From: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC; FAIRCHILD SEMICONDUCTOR CORPORATION
To: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
Reel/Frame 047399/0631 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2018
From: KANEMATSU, MASAYUKI
To: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
Reel/Frame 046697/0929 →