IP Library Granted Patent US 9,614,351
Granted Patent B1
US 9,614,351 · App. 15/080,529 · Granted Apr 4, 2017

Low-power, direct-drive driver circuit for driving an externally modulated laser (EML), and methods

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Quick Facts
Patent No.
US 9,614,351
App. No.
15/080,529
Granted
Apr 4, 2017
Kind
B1
Abstract

A low-power, direct-drive EML driver circuit is provided that reduces power consumption by reducing the amount of current needed to create the necessary voltage swing in the drive signal. In addition, the EML driver circuit has an impedance matching network that has reduced complexity and that can be made at reduced costs compared to the impedance matching network of a typical EML driver circuit.

Claims (38)

1. An externally modulated laser (EML) driver circuit comprising:

driver electronics that generate a differential driver signal comprising first and second driver signals;

a differential transistor pair comprising first and second transistors, each transistor having first, second and third terminals, the first terminals being connected to first terminals of first and second resistors of the EML driver circuit, second terminals of the first and second resistors being connected to a supply voltage, the second terminals of the first and second transistors being connected together, the third terminals of the first and second transistors being connected to the driver electronics for receiving the first and second driver signals, respectively; and

at least a third transistor having first, second and third terminals, the first terminal of the third transistor being connected to a supply voltage, the second terminal of the third transistor being connected to a first output terminal of the EML driver circuit, the third terminal of the third transistor being connected to the first terminal of one of the first and second transistors.

2. The EML driver circuit of claim 1 , further comprising:

an impedance matching network, the impedance matching network having an input terminal that is connected to the first output terminal of the EML driver circuit, the impedance matching network having at least first and second output terminals for connection to first and second input terminals of an EML chip having at least a first EML thereon.

3. The EML driver circuit of claim 2 , further comprising:

the EML chip, the first and second input terminals of the EML chip being connected to the first and second output terminals of the impedance matching network.

4. The EML driver circuit of claim 2 , wherein the driver electronics, the differential transistor pair and the third transistor are integrated together on a first integrated circuit (IC) chip and wherein the impedance matching network is external to the first IC chip.

5. The EML driver circuit of claim 2 , wherein the driver electronics, the differential transistor pair, the third transistor and the impedance matching network are integrated together on a first integrated circuit (IC) chip.

6. The EML driver circuit of claim 2 , wherein the impedance matching network comprises at least a first inductor, a first alternating current (AC) decoupling capacitor and a first termination resistor, and wherein a resistance value of the first terminal resistor is greater than 50 ohms.

7. The EML driver circuit of claim 6 , wherein the impedance matching network further comprises:

at least second and third inductors and a first termination capacitor.

8. The EML driver circuit of claim 6 , wherein the first and second resistors each having a resistance that is greater than 50 Ohms.

9. The EML driver circuit of claim 1 , wherein the first and second resistors each having a resistance that is greater than 100 Ohms.

10. The EML driver circuit of claim 9 , wherein the first and second resistors each have a resistance that is equal to or greater than 250 Ohms.

11. The EML driver circuit of claim 1 , wherein the EML driver circuit is a single-ended driver circuit that outputs a single-ended EML drive signal from the first output terminal of the EML driver circuit.

12. The EML driver circuit of claim 11 , wherein the single-ended EML drive signal has a frequency that is greater than or equal to 25 Gigahertz (GHz).

13. The EML driver circuit of claim 12 , wherein the driver electronics use a pulse amplitude modulation (PAM)-4 modulation technique to modulate the single-ended drive signal.

14. The EML driver circuit of claim 1 , wherein the third terminal of the third transistor is connected to the first terminal of the first transistor, and wherein the EML driver circuit further comprises:

at least a fourth transistor having first, second and third terminals, the first terminal of the fourth transistor being connected to a supply voltage, the second terminal of the fourth transistor being connected to a second output terminal of the EML driver circuit, the third terminal of the fourth transistor being connected to the first terminal of the second transistor, and wherein the EML driver circuit outputs a differential EML drive signal from the first and second output terminals of the EML driver circuit.

15. The EML driver circuit of claim 14 , further comprising:

an impedance matching network, the impedance matching network having first and second input terminals that are connected to the first and second output terminals, respectively, of the EML driver circuit, the impedance matching network having at least first, second, third and fourth output terminals for connection to first, second, third and fourth input terminals, respectively, of an EML chip having at least a first EML thereon.

16. The EML driver circuit of claim 15 , wherein the impedance matching network comprises at least a first, second, third, fourth, fifth and sixth inductors, first and second alternating current (AC) decoupling capacitors, first and second termination resistors, and a termination capacitor, and wherein a resistance value of the first and second terminal resistors is greater than 50 ohms.

17. The EML driver circuit of claim 15 , wherein the differential EML drive signal has a frequency that is greater than or equal to 25 Gigahertz (GHz).

18. The EML driver circuit of claim 15 , wherein the driver electronics use a pulse amplitude modulation (PAM)-4 modulation technique to modulate the differential drive signal.

19. A direct-drive externally modulated laser (EML) driver circuit comprising:

driver electronics that generate a differential driver signal comprising first and second driver signals;

a differential circuit comprising at least first and second transistors and first and second resistors, each transistor having first, second and third terminals, the first terminals being connected to first terminals of the first and second resistors, respectively, second terminals of the first and second resistors being connected to a first supply voltage, each resistor having a resistance value that is greater than 50 ohms, the second terminals of the first and second transistors being connected together, the third terminals of the first and second transistors being connected to the driver electronics for receiving the first and second driver signals, respectively;

a voltage buffer having an input terminal and an output terminal, the input terminal of the voltage buffer being connected to the first terminal of the first transistor, the output terminal of the voltage buffer being connected to a first output terminal of the EML driver circuit, wherein a single-ended EML drive signal is output from the first output terminal of the EML driver circuit; and

an impedance matching network having at least a first input terminal, a first output terminal, a first inductor, a first capacitor and a first resistor, the first input terminal being connected to the first output terminal of the EML driver circuit, the first output terminal being disposed for connection to an input terminal of an EML chip, wherein a resistance value of the first resistor of the impedance matching network is greater than 50 ohms.

20. The direct-drive EML circuit of claim 19 , wherein the first and second resistors of the differential circuit each have a resistance value that is equal to or greater than 250 ohms.

21. A direct-drive externally modulated laser (EML) driver circuit comprising:

driver electronics that generate a differential driver signal comprising first and second driver signals;

a differential circuit comprising at least first and second transistors and first and second resistors, each transistor having first, second and third terminals, the first terminals being connected to first terminals of the first and second resistors, respectively, second terminals of the first and second resistors being connected to a first supply voltage, each resistor having a resistance value that is greater than 50 ohms, the second terminals of the first and second transistors being connected together, the third terminals of the first and second transistors being connected to the driver electronics for receiving the first and second driver signals, respectively;

a first voltage buffer having an input terminal and an output terminal, the input terminal of the voltage buffer being connected to the first terminal of the first transistor, the output terminal of the first voltage buffer being connected to a first output terminal of the EML driver circuit;

a second voltage buffer having an input terminal and an output terminal, the input terminal of the second voltage buffer being connected to the first terminal of the second transistor, the output terminal of the second voltage buffer being connected to a second output terminal of the EML driver circuit, wherein a differential EML drive signal is output from the first and second output terminals of the EML driver circuit; and

an impedance matching network having at least first and second input terminals, at least first and second output terminals, and a plurality of inductors, capacitors and resistors, the first and second input terminals of the impedance matching network being connected to the first and second output terminals of the EML driver circuit, respectively, the first and second output terminals of the impedance matching network being disposed for connection to first and second input terminals, respectively, of an EML chip.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 14, 2020
From: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
To: BROADCOM INTERNATIONAL PTE. LTD.
Reel/Frame 053771/0901 →
CORRECTIVE ASSIGNMENT TO CORRECT THE EXECUTION DATE PREVIOUSLY RECORDED AT REEL: 047422 FRAME: 0464. ASSIGNOR(S) HEREBY CONFIRMS THE MERGER. Recorded Mar 6, 2019
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 048883/0702 →
MERGER Recorded Oct 5, 2018
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 047422/0464 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 21, 2016
From: ASMANIS, GEORGIOS; CHAAHOUB, FAOUZI
To: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
Reel/Frame 039096/0332 →