IP Library › Granted Patent US 11,611,335
Granted Patent B2
US 11,611,335 · App. 17/538,291 · Granted Mar 21, 2023

Duty-cycle corrector phase shift circuit

Inventor: Wei Shuo Lin (Hsinchu, TW)
Assignee: Taiwan Semiconductor Manufacturing Company, Ltd.
H03K5/1565H03L7/0812H03L7/095
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 11,611,335
App. No.
17/538,291
Granted
Mar 21, 2023
Kind
B2
Abstract

One embodiment of a duty-cycle corrector phase shift (DCCPS) circuit includes a voltage-controlled delay line circuit, a duty-cycle correct circuit, an error amplifier circuit, and DC sampler circuits. Another embodiment of a duty-cycle corrector phase shift circuit includes a digital-controlled delay line circuit, a duty-cycle correct circuit, DC sampler circuits, a comparator circuit, a counter circuit, a control circuit, and a lock detector circuit. In some instances, the DCCPS circuit provides a clock signal with a duty-cycle of approximately fifty percent (50%) and a given phase shift between an input clock signal and the output clock signal.

Claims (53)

1. A correcting and phase shifting circuit, comprising:

a voltage-controlled delay line (VCDL) circuit operable to receive a clock input signal;

a duty-cycle corrector (DCC) circuit operably connected to an output of the VCDL circuit and operable to adjust a duty cycle of the clock input signal;

an error amplifier circuit operably connected to an input of the VCDL circuit;

a first DC sampler circuit operably connected to a first input of the error amplifier circuit; and

a second DC sampler circuit operably connected to a second input of the error amplifier circuit.

2. The correcting and phase shifting circuit of claim 1 , further comprising a clock tree circuit operably connected to an output of the DCC circuit.

3. The correcting and phase shifting circuit of claim 2 , further comprising:

a first select circuit operably connected to an output of the clock tree circuit;

a second select circuit operably connected to an input of the first DC sampler circuit; and

a third select circuit operably connected to an input of the second DC sampler circuit.

4. The correcting and phase shifting circuit of claim 2 , further comprising a clock tree replica circuit operably connected between the output of the DCC circuit and to an input of the clock tree circuit.

5. The correcting and phase shifting circuit of claim 1 , further comprising a digital circuit operably connected to inputs of the first and the second DC sampler circuits and another input of the VCDL circuit, the digital circuit operable to receive the clock input signal and output two pulse signals.

6. The correcting and phase shifting circuit of claim 5 , further comprising;

a clock buffer replica circuit operably connected to a first input of the digital circuit; and

a clock buffer circuit operably connected to a second input of the digital circuit.

7. The correcting and phase shifting circuit of claim 5 , further comprising;

a phase modulator circuit operably connected to a first input of the digital circuit; and

a clock buffer circuit operably connected to a second input of the digital circuit.

8. The correcting and phase shifting circuit of claim 1 , further comprising a low dropout circuit operably connected to another input of the VCDL circuit.

9. The correcting and phase shifting circuit of claim 1 , further comprising a low dropout circuit operably connected between the input of the VCDL circuit and an output of the error amplifier circuit.

10. A method of operating a duty-cycle correcting and phase shifting circuit, comprising:

receiving a clock input signal;

determining a phase shift between the clock input signal and a clock output signal of the duty-cycle correcting and phase shifting circuit;

based on a determination that the phase shift is not at least substantially at a first given value, adjusting, using a voltage-controlled delay line circuit in the duty-cycle correcting and phase shifting circuit, a delay of the clock input signal until the phase shift is at least substantially at the first given value;

determining a duty cycle of the clock input signal and a duty cycle of the clock output signal; and

based on a determination that the duty cycles are not at least substantially at a second given value, adjusting, using a duty cycle corrector circuit in the duty-cycle correcting and phase shifting circuit, a duty cycle of the clock input signal until the duty cycles of the clock input and the clock output signals are at least substantially at the second given value.

11. The method of claim 10 , wherein:

the first given value is one of ninety degrees or two hundred and seventy degrees; and

the second given value is fifty percent.

12. The method of claim 10 , further comprising:

providing the clock output signal to a clock tree circuit.

13. A correcting and phase shifting circuit, comprising:

a voltage-controlled delay line (VCDL) circuit operable to receive a clock input signal;

a duty-cycle corrector (DCC) circuit operably connected to an output of the VCDL circuit and operable to adjust a duty cycle of the clock input signal;

a clock tree circuit operably connected to an output of the DCC circuit;

an error amplifier circuit operably connected to an input of the VCDL circuit;

a first DC sampler circuit operably connected between an output of the clock tree and a first input of the error amplifier circuit; and

a second DC sampler circuit operably connected between the output of the clock tree and a second input of the error amplifier circuit.

14. The correcting and phase shifting circuit of claim 13 , further comprising:

a first select circuit operably connected to an output of the clock tree circuit;

a second select circuit operably connected to an input of the first DC sampler circuit; and

a third select circuit operably connected to an input of the second DC sampler circuit.

15. The correcting and phase shifting circuit of claim 13 , further comprising a clock tree replica circuit operably connected between the output of the DCC circuit and to an input of the clock tree circuit.

16. The correcting and phase shifting circuit of claim 13 , further comprising a digital circuit operably connected to inputs of the first and the second DC sampler circuits and another input of the VCDL circuit, the digital circuit operable to receive the clock input signal and output two pulse signals.

17. The correcting and phase shifting circuit of claim 16 , further comprising;

a clock buffer replica circuit operably connected to a first input of the digital circuit; and

a clock buffer circuit operably connected to a second input of the digital circuit.

18. The correcting and phase shifting circuit of claim 16 , further comprising;

a phase modulator circuit operably connected to a first input of the digital circuit; and

a clock buffer circuit operably connected to a second input of the digital circuit.

19. The correcting and phase shifting circuit of claim 13 , further comprising a low dropout circuit operably connected between the input of the VCDL circuit and an output of the error amplifier circuit.

20. The correcting and phase shifting circuit of claim 13 , further comprising a low dropout circuit operably connected to another input of the VCDL circuit.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 30, 2021
From: LIN, WEI SHUO
To: TAIWAN SEMICONDUCTOR MANUFACTURING COMPANY, LTD.
Reel/Frame 058244/0633 →
Continuity (2)
Provisional Application 63185159 · May 6, 2021
Related Publication 20220360258A1 · Nov 10, 2022
Cited By (1)
US 12,381,544