IP Library Granted Patent US 9,007,138
Granted Patent B2
US 9,007,138 · App. 13/907,068 · Granted Apr 14, 2015

Oscillator with startup circuitry

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Quick Facts
Patent No.
US 9,007,138
App. No.
13/907,068
Granted
Apr 14, 2015
Kind
B2
Abstract

An oscillator that includes a first source current leg and first sink current leg to source current and sink current, respectively, during a startup mode of oscillator operation. The oscillator includes a second source current leg and a second sink current leg to source current and sink current, respectively, during a second mode of oscillator operation.

Claims (85)

1. An oscillator circuit comprising:

a clock output to provide an output clock signal;

a first circuit comprising:

an output node to provide an output signal, a frequency of the output clock signal is dependent upon a frequency of the output signal;

a source current node for receiving a source current;

a sink current node for providing a sink current;

a first source current leg coupled to source current, when enabled, to the source current node;

a first sink current leg coupled to sink current, when enabled, from the sink current node;

a second source current leg coupled to source current, when enabled, to the source current node;

a second sink current leg coupled to sink current, when enabled, from the sink current node;

wherein the frequency of the output node is dependent on amount of source current sourced to the source current node and an amount of sink current sinked from the sink current node;

a control circuit to control an enablement of the first source current leg, the first sink current leg, the second source current leg, and the second sink current leg, wherein the first source current leg and the first sink current leg are enabled during a startup mode of the oscillator circuit and the second source current leg and the second sink current leg are enabled subsequent to the startup mode of the oscillator circuit,

wherein current sourced to the source current node by the first source current leg varies more with temperature and voltage than current sourced to the source current node by the second source current leg, and current sinked from the sink current node by the first sink current leg varies more with temperature and voltage than current sinked from the sink current node by the second sink current leg.

2. The circuit of claim 1 wherein:

the first source current leg includes a first resistor, the first source current leg sources current to the source current node through the first resistor;

the first sink current leg includes a second resistor, the first sink current leg sinks current from the sink current node through the second resistor.

3. The circuit of claim 1 wherein:

the second source current leg includes a first transistor, the second source current leg sources current to the source current node through the first transistor, a biasing of the first transistor is controlled by a first bias signal provided to a control terminal of the first transistor, the first bias signal controls an amount of current provided by the second source current leg to the source current node;

wherein the second sink current leg includes a second transistor, the second sink current leg sinks current from the sink current node through the second transistor, a biasing of the second transistor is controlled by a second bias signal provided to a control terminal of the second transistor, the second bias signal controls an amount of current sinked by the second source current leg from the sink current node.

4. The circuit of claim 3 further comprising:

a reference current circuit, the first bias signal and the second bias signal are generated using a reference current generated by the reference current circuit.

5. The circuit of claim 1 wherein the control circuit includes a counter coupled to count clock pulses produced by the oscillator circuit, wherein during a start up mode, the control circuit enables the second source current leg and the second sink current leg in response to the counter counting a predetermined number of pulses.

6. The circuit of claim 5 wherein during a startup mode, the control circuit disables the first source current leg and the first sink current leg in response to the counter counting a predetermined number of pulses.

7. The circuit of claim 1 further comprising a capacitor having a first terminal connected to the output node, the output node charging and discharging the capacitor at a frequency of the output signal.

8. The circuit of claim 1 wherein the first circuit includes a first transistor of a first conductivity type and a second transistor of a second conductivity type opposite the first conductivity type, a first current terminal of the first transistor is connected to the source current node, a second current terminal of the first transistor is connected to a first current terminal of the second transistor and to the output node, the second current terminal of the second transistor is connected to the sink current node, a control terminal of the first transistor and a control terminal of the second transistor are each connected to the input node.

9. The circuit of claim 8 wherein the output is connected to an input node of the first circuit, wherein the input node controls whether current is being sourced to or sinked from the output node of the first circuit.

10. An oscillator circuit comprising:

a clock output to provide an output clock signal;

a first circuit comprising:

an output node to provide an output signal, a frequency of the output clock signal is dependent upon a frequency of the output signal;

a source current node for receiving a source current;

a sink current node for providing a sink current;

a first source current leg coupled to source current, when enabled, to the source current node;

a first sink current leg coupled to sink current, when enabled, from the sink current node;

a second source current leg coupled to source current, when enabled, to the source current node;

a second sink current leg coupled to sink current, when enabled, from the sink current node;

wherein the frequency of the output node is dependent on amount of source current sourced to the source current node and an amount of sink current sinked from the sink current node;

a control circuit to control an enablement of the first source current leg, the first sink current leg, the second source current leg, and the second sink current leg, wherein the first source current leg and the first sink current leg are enabled during a startup mode of the oscillator circuit and the second source current leg and the second sink current leg are enabled subsequent to the startup mode of the oscillator circuit;

wherein the first source current leg includes a first resistor, the first source current leg sources current to the source current node through the first resistor, and the first sink current leg includes a second resistor, the first sink current leg sinks current from the sink current node through the second resistor;

wherein the second source current leg includes a first transistor, the second source current leg sources current to the source current node through the first transistor, a biasing of the first transistor is controlled by a first bias signal provided to a control terminal of the first transistor, the first bias signal controls an amount of current provided by the second source current leg to the source current node;

wherein the second sink current leg includes a second transistor, the second sink current leg sinks current from the sink current node through the second transistor, a biasing of the second transistor is controlled by a second bias signal provided to a control terminal of the second transistor, the second bias signal controls an amount of current sinked by the second source current leg from the sink current node;

a reference current circuit, the first bias signal and the second bias signal are generated using a reference current generated by the reference current circuit, wherein the reference current circuit provides a stable signal to indicate whether the reference current is in a stable state; and

wherein during a startup mode, the control circuit enables the second source current leg and the second sink current leg in response to the stable signal indicating that the reference current has transitioned to a stable state.

11. The circuit of claim 10 wherein during a startup mode, the control circuit disables the first source current leg and the first sink current leg in response to the stable signal indicating that the reference current has transitioned to a stable state.

12. An oscillator circuit comprising:

a clock output to provide an output clock signal;

a first circuit comprising:

an output node to provide an output signal, a frequency of the output clock signal is dependent upon a frequency of the output signal;

a source current node for receiving a source current;

a sink current node for providing a sink current;

a first source current leg coupled to source current, when enabled, to the source current node;

a first sink current leg coupled to sink current, when enabled, from the sink current node;

a second source current leg coupled to source current, when enabled, to the source current node;

a second sink current leg coupled to sink current, when enabled, from the sink current node;

wherein the frequency of the output node is dependent on amount of source current sourced to the source current node and an amount of sink current sinked from the sink current node;

a control circuit to control an enablement of the first source current leg, the first sink current leg, the second source current leg, and the second sink current leg, wherein the first source current leg and the first sink current leg are enabled during a startup mode of the oscillator circuit and the second source current leg and the second sink current leg are enabled subsequent to the startup mode of the oscillator circuit;

wherein the first source current leg includes a first resistor, the first source current leg sources current to the source current node through the first resistor, and the first sink current leg includes a second resistor, the first sink current leg sinks current from the sink current node through the second resistor;

wherein the second source current leg includes a first transistor, the second source current leg sources current to the source current node through the first transistor, a biasing of the first transistor is controlled by a first bias signal provided to a control terminal of the first transistor, the first bias signal controls an amount of current provided by the second source current leg to the source current node;

wherein the second sink current leg includes a second transistor, the second sink current leg sinks current from the sink current node through the second transistor, a biasing of the second transistor is controlled by a second bias signal provided to a control terminal of the second transistor, the second bias signal controls an amount of current sinked by the second source current leg from the sink current node;

a reference current circuit, the first bias signal and the second bias signal are generated using a reference current generated by the reference current circuit, wherein the reference current circuit is characterized as a band gap circuit.

13. A method of starting an oscillator circuit comprising:

providing a clock signal at an output of the oscillator circuit during a first mode, wherein the providing a clock signal during the first mode includes alternatingly sourcing current to a first node of the oscillator circuit using a first source current leg and sinking current from the first node using a first sink current leg;

after the first mode, providing a clock signal at the output of the oscillator circuit during a second mode, wherein the providing a clock signal during the second mode includes alternatingly sourcing current to the first node of the oscillator circuit using a second source current leg and sinking current from the first node using a second sink current leg;

wherein source current is not sourced to the first node from the second source current leg and sink current is not sinked from the first node by the second sink current leg during the first mode;

wherein source current is not sourced to the first node from the first source current leg and sink current is not sinked from the first node by the first sink current leg during the second mode;

wherein current sourced to the first node by the first source current leg varies more with temperature and voltage than current sourced to the first node by the second source current leg; and

wherein current sinked from the first node by the first sink current leg varies more with temperature and voltage than current sinked from the first node by the second sink current leg.

14. The method of claim 13 , wherein the oscillator circuit transitions from the first mode to the second mode based on an output of the oscillator circuit producing a predetermined number of clock pulses.

15. The method of claim 13 further comprising:

providing a reference current by a reference circuit;

wherein the providing a clock signal at the output of the oscillator circuit during a second mode includes using the reference current to control an amount of current sourced to the first node by the second current source leg and to control an amount of current sinked from the first node by the second current sink leg.

16. The method of claim 13 wherein the first node is connected to a capacitor, wherein sourcing current to the first node charges the capacitor and sinking current from the first node discharges the capacitor, wherein a frequency of the clock signal is dependent on a rate of charge and discharge of capacitor.

17. A method of starting an oscillator circuit comprising:

providing a clock signal at an output of the oscillator circuit during a first mode, wherein the providing a clock signal during the first mode includes alternatingly sourcing current to a first node of the oscillator circuit using a first source current leg and sinking current from the first node using a first sink current leg;

after the first mode, providing a clock signal at the output of the oscillator circuit during a second mode, wherein the providing a clock signal during the second mode includes alternatingly sourcing current to the first node of the oscillator circuit using a second source current leg and sinking current from the first node using a second sink current leg, wherein source current is not sourced to the first node from the second source current leg and sink current is not sinked from the first node by the second sink current leg during the first mode, wherein source current is not sourced to the first node from the first source current leg and sink current is not sinked from the first node by the first sink current leg during the second mode;

providing a reference current by a reference circuit, wherein the providing a clock signal at the output of the oscillator circuit during a second mode includes using the reference current to control an amount of current sourced to the first node by the second current source leg and to control an amount of current sinked from the first node by the second current sink leg, wherein the oscillator circuit transitions from the first mode to the second mode based on an indication that the reference current is stable.

18. An oscillator circuit comprising:

a clock output to provide an output clock signal;

a capacitor, a frequency of the output clock signal is dependent on a rate of charge and discharge of the capacitor;

a first source current leg coupled to source current, when enabled, to charge the capacitor during a startup mode of operation;

a first sink current leg coupled to sink current, when enabled, to discharge the capacitor during the startup mode of operation;

a second source current leg coupled to source current, when enabled, to charge the capacitor during a second mode of operation after the startup mode of operation;

a second sink current leg coupled to sink current, when enabled, to discharge the capacitor during the second mode;

wherein current sourced by the first source current leg varies more with temperature and voltage than current sourced by the second source current leg;

wherein current sinked by the first sink current leg varies more with temperature and voltage than current sinked by the second sink current leg.

Assignments (15)
RELEASE OF SECURITY INTEREST Recorded Sep 10, 2019
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP B.V.
Reel/Frame 050744/0097 →
CORRECTIVE ASSIGNMENT TO CORRECT THE TO CORRECT THE APPLICATION NO. FROM 13,883,290 TO 13,833,290 PREVIOUSLY RECORDED ON REEL 041703 FRAME 0536. ASSIGNOR(S) HEREBY CONFIRMS THE THE ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS.. Recorded Feb 20, 2019
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: SHENZHEN XINGUODU TECHNOLOGY CO., LTD.
Reel/Frame 048734/0001 →
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE PATENTS 8108266 AND 8062324 AND REPLACE THEM WITH 6108266 AND 8060324 PREVIOUSLY RECORDED ON REEL 037518 FRAME 0292. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS. Recorded Feb 1, 2017
From: CITIBANK, N.A.
To: MORGAN STANLEY SENIOR FUNDING, INC.
Reel/Frame 041703/0536 →
MERGER Recorded Jan 3, 2017
From: FREESCALE SEMICONDUCTOR, INC.
To: NXP USA, INC.
Reel/Frame 041144/0363 →
SUPPLEMENT TO THE SECURITY AGREEMENT Recorded Jun 16, 2016
From: FREESCALE SEMICONDUCTOR, INC.
To: MORGAN STANLEY SENIOR FUNDING, INC.
Reel/Frame 039138/0001 →
ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS Recorded Jan 13, 2016
From: CITIBANK, N.A.
To: MORGAN STANLEY SENIOR FUNDING, INC.
Reel/Frame 037518/0292 →
PATENT RELEASE Recorded Dec 21, 2015
From: CITIBANK, N.A., AS COLLATERAL AGENT
To: FREESCALE SEMICONDUCTOR, INC.
Reel/Frame 037357/0844 →
PATENT RELEASE Recorded Dec 21, 2015
From: CITIBANK, N.A., AS COLLATERAL AGENT
To: FREESCALE SEMICONDUCTOR, INC.
Reel/Frame 037357/0804 →
PATENT RELEASE Recorded Dec 21, 2015
From: CITIBANK, N.A., AS COLLATERAL AGENT
To: FREESCALE SEMICONDUCTOR, INC.
Reel/Frame 037357/0819 →
SECURITY AGREEMENT Recorded Nov 6, 2013
From: FREESCALE SEMICONDUCTOR, INC.
To: CITIBANK, N.A., AS NOTES COLLATERAL AGENT
Reel/Frame 031591/0266 →
SUPPLEMENT TO IP SECURITY AGREEMENT Recorded Sep 20, 2013
From: FREESCALE SEMICONDUCTOR, INC.
To: CITIBANK, N.A., AS NOTES COLLATERAL AGENT
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SUPPLEMENT TO IP SECURITY AGREEMENT Recorded Sep 20, 2013
From: FREESCALE SEMICONDUCTOR, INC.
To: CITIBANK, N.A., AS COLLATERAL AGENT
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SUPPLEMENT TO IP SECURITY AGREEMENT Recorded Sep 20, 2013
From: FREESCALE SEMICONDUCTOR, INC.
To: CITIBANK, N.A., AS NOTES COLLATERAL AGENT
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SUPPLEMENT TO IP SECURITY AGREEMENT Recorded Sep 20, 2013
From: FREESCALE SEMICONDUCTOR, INC.
To: CITIBANK, N.A., AS NOTES COLLATERAL AGENT
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ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2013
From: MULLER, GILLES J.; CUNNINGHAM, JEFFREY C.; RAMANAN, KARTHIK
To: FREESCALE SEMICONDUCTOR, INC.
Reel/Frame 030525/0632 →