IP Library › Granted Patent US 12,609,653
Granted Patent B2
US 12,609,653 · App. 18/918,040 · Granted Apr 21, 2026

Multi-core VCO with robust unwanted mode suppression and circular coil topology

Inventors: Suoping Hu (San Jose, CA); Wanghua Wu (Santa Clara, CA); Taeyoung Kang (Irvine, CA); Zhiyu Chen (San Jose, CA)
Assignee: SAMSUNG ELECTRONICS CO., LTD.
H03B5/1212H03B5/06H03B2200/004H03B2200/009
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Quick Facts
Patent No.
US 12,609,653
App. No.
18/918,040
Granted
Apr 21, 2026
Kind
B2
Abstract

A system and a method for voltage-controlled oscillator (VCO are disclosed. A first VCO core includes a first cross-coupled (CC) transistor pair having a first conductivity type and a second cross-coupled transistor pair having a second conductivity type. A second VCO core includes a third CC transistor pair having the first conductivity type and a fourth CC transistor pair having the second conductivity type. A first synchronization trace connects the first CC transistor pair to the third CC transistor pair. A second synchronization trace connects the second CC transistor pair to the fourth CC transistor pair. The first and second VCO cores are arranged on a circular path on a substrate and disposed opposite with each other with respect to a center of the circular path.

Claims (57)

1 . An apparatus comprising:

a first voltage-controlled oscillator (VCO) core including a first cross-coupled (CC) transistor pair having a first conductivity type and a second CC transistor pair having a second conductivity type;

a second VCO core including a third CC transistor pair having the first conductivity type and a fourth CC transistor pair having the second conductivity type;

a first synchronization trace directly connecting the first CC transistor pair to the third CC transistor pair; and

a second synchronization trace directly connecting the second CC transistor pair to the fourth CC transistor pair,

wherein the first and second VCO cores are arranged on a first circular path on a substrate and disposed opposite each other with respect to a center of the circular path, and

wherein at least one of the first synchronization trace or the second synchronization trace crosses the center.

2 . The apparatus of claim 1 , wherein the first VCO core further includes a first variable capacitor to tune an oscillation frequency and the second VCO core further includes a second variable capacitor to tune the oscillation frequency.

3 . The apparatus of claim 2 , wherein the first and second synchronization traces synchronize in-phase signals through the first and second VCO cores in differential mode.

4 . The apparatus of claim 1 , wherein the first and second synchronization traces suppress unwanted modes and reduce latch-up effect.

5 . The apparatus of claim 1 further comprising:

a third voltage-controlled oscillator (VCO) core including a fifth CC transistor pair having the first conductivity type and a sixth CC transistor pair having the second conductivity type;

a fourth VCO core including a seventh CC transistor pair having the first conductivity type and an eighth CC transistor pair having the second conductivity type;

a third synchronization trace directly connecting the fifth CC transistor pair to the seventh CC transistor pair; and

a fourth synchronization trace directly connecting the sixth CC transistor pair to the eighth CC transistor pair,

wherein the first, second, third, and fourth VCO cores are evenly spaced on the first circular path on the substrate.

6 . The apparatus of claim 1 further comprising:

first and second tank inductors associated with the first and second VCO cores, respectively, on the first circular path, each of the first and second tank inductors being disposed between adjacent VCO cores of the first and second VCO cores; and

a tail inductor circuit having eight tail inductors coupled to the first and second VCO cores and arranged on a second circular path surrounding the first circular path.

7 . The apparatus of claim 6 , wherein the tail inductor circuit includes a first pair of tail inductors directly connected to opposite sides of the first CC transistor pair and a second pair of tail inductors directly connected to opposite sides of the second CC transistor pair for the each of the N first and second VCO cores.

8 . The apparatus of claim 1 , wherein the first CC transistor pair and the second CC transistor pair form a negative resistance circuit.

9 . The apparatus of claim 6 further comprising first and second decoupling capacitors at corners of the second circular path to reduce return current and parasitic inductances.

10 . The apparatus of claim 6 , wherein the tail inductor circuit resonates at a second-order harmonic in common mode.

11 . A method comprising:

forming a first voltage-controlled oscillator (VCO) core on a substrate including a first cross-coupled (CC) transistor pair having a first conductivity type and a second CC transistor pair having a second conductivity type;

forming a second VCO core on the substrate including a third CC transistor pair having the first conductivity type and a fourth CC transistor pair having the second conductivity type;

arranging the first and second VCO cores on a first circular path opposite with each other with respect to a center of the first circular path;

disposing a first synchronization trace on the substrate to directly connect the first CC transistor pair to the third CC transistor pair; and

disposing a second synchronization trace on the substrate to directly connect the second CC transistor pair to the fourth CC transistor pair,

wherein at least one of the first synchronization trace or the second synchronization trace crosses the center.

12 . The method of claim 11 , wherein forming the first VCO core comprises forming a first variable capacitor to tune an oscillation frequency and wherein forming the second VCO core comprises forming a second variable capacitor to tune the oscillation frequency.

13 . The method of claim 11 , wherein the first and second synchronization traces synchronize in-phase signals through the first and second VCO cores in differential mode.

14 . The method of claim 11 , wherein the first and second synchronization traces suppress unwanted modes and reduce latch-up effect.

15 . The method of claim 11 further comprising:

forming a third VCO core on the substrate including a fifth CC transistor pair having the first conductivity type and a sixth CC transistor pair having the second conductivity type;

forming a fourth VCO core on the substrate including a seventh CC transistor pair having the first conductivity type and an eighth CC transistor pair having the second conductivity type;

spacing evenly the first, second, third, and fourth VCO cores on the first circular path;

disposing a third synchronization trace on the substrate to directly connect the fifth CC transistor pair to the seventh CC transistor pair; and

disposing a fourth synchronization trace on the substrate to directly connect the sixth CC transistor pair to the eighth CC transistor pair.

16 . The method of claim 11 further comprising:

forming first and second tank inductors associated with corresponding first and second VCO cores, respectively, on the first circular path, each of the first and second tank inductors being disposed between adjacent VCO cores of the first and second VCO cores; and

forming a tail inductor circuit having eight tail inductors coupled to the first and second VCO cores on a second circular path surrounding the first circular path.

17 . The method of claim 16 , wherein forming the first and second VCO cores comprises forming a negative resistance circuit including the first CC transistor pair and the second CC transistor pair.

18 . The method of claim 17 , wherein forming the tail inductor circuit comprises:

forming a first pair of tail inductors directly connected to opposite sides of the first CC transistor pair for each of the first and second VCO cores; and

forming a second pair of tail inductors directly connected to opposite sides of the second CC transistor pair for each of the first and second VCO cores.

19 . The method of claim 16 further comprising forming first and second decoupling capacitors at corners of the second circular path to reduce return current and parasitic inductances.

20 . A system comprising:

a signal processing circuit to provide a signal;

a mixer that mixes the signal with a mixing frequency to translate the signal to a converted signal; and

a voltage-controlled oscillator (VCO) to generate the mixing frequency, the VCO comprising:

a first VCO core disposed on a substrate and including a first cross-coupled (CC) transistor pair having a first conductivity type and a second CC transistor pair having a second conductivity type;

a second VCO core disposed on the substrate and including a third CC transistor pair having the first conductivity type and a fourth CC transistor pair having the second conductivity type;

a first synchronization trace disposed on the substrate to directly connect the first CC transistor pair to the third CC transistor pair; and

a second synchronization trace disposed on the substrate to directly connect the second CC transistor pair to the fourth CC transistor pair,

wherein the first and second VCO cores are arranged on a circular path and disposed opposite with each other with respect to a center of the circular path, and

wherein at least one of the first synchronization trace or the second synchronization trace crosses the center.

Continuity (2)
Provisional Application 63674238 · Jul 22, 2024
Related Publication 20260025101A1 · Jan 22, 2026
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