IP Library Granted Patent US 8,483,571
Granted Patent B2
US 8,483,571 · App. 12/828,278 · Granted Jul 9, 2013

Optical beam splitter for use in an optoelectronic module, and a method for performing optical beam splitting in an optoelectronic module

Inventors: Laurence R. McColloch (Santa Clara, CA); Pengyue Wen (San Jose, CA)
Assignee: Avago Technologies General IP (Singapore) Pte. Ltd.
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Quick Facts
Patent No.
US 8,483,571
App. No.
12/828,278
Granted
Jul 9, 2013
Kind
B2
Abstract

An optical beam splitter for use in an optoelectronic module and method are provided. The optical beam splitter is configured to split a main beam produced by a laser into at least first and second light portions that have different optical power levels. The first light portion, which is to be coupled into an end of a transmit optical fiber of an optical communications link, has an optical power level that is within eye safety limits and yet has sufficient optical power to avoid signal degradation problems. The optical power level of the first light portion is less than the optical power level of the second light portion. The optical beam splitter is capable of being implemented in a unidirectional or a bidirectional optical link.

Claims (34)

1. An optical beam splitter for use in an optoelectronic module, the optical beam splitter comprising:

a substrate having at least upper and lower surfaces that are substantially parallel to one another;

at least a first diffractive optical element formed on the outside of the lower surface of the substrate, the first diffractive optical element receiving a main beam of light produced by a light source and splitting the main beam into at least first and second light portions L 1 and L 2 , respectively, and tilting at least the first light portion L 1 at a first preselected non-zero tilt angle relative to an imaginary line that is normal to the lower surface of the substrate and that extends between the lower and upper surfaces of the substrate, the first and second light portions L 1 and L 2 each having a particular percentage of an optical power of the main light beam, and wherein the second light portion L 2 has a substantially larger percentage of the optical power of the main light beam than the first portion L 1 ; and

at least a first refractive optical element formed on the outside of the upper surface of the substrate, the first refractive optical element receiving the tilted first light portion L 1 and directing the first light portion L 1 onto a lens assembly of the optoelectronic module to optically couple the first light portion L 1 into an end of an optical fiber coupled to the lens assembly, and wherein the optical power of the first light portion L 1 that is directed onto the lens assembly is within a human eye safety limit.

2. The optical beam splitter of claim 1 , wherein the first light portion L 1 has about 20% of the optical power of the main light beam and wherein the second light portion L 2 has about 80% of the optical power of the main light beam.

3. The optical beam splitter of claim 2 , wherein the first diffractive element directs the second light portion L 2 onto an optical beam stop.

4. The optical beam splitter of claim 1 , wherein the first diffractive optical element splits the main light beam into the first and second light portions L 1 and L 2 and into a third light portion L 3 , and wherein the optical beam splitter further comprises:

at least a first mirroring optical element formed on the upper surface of the substrate, and wherein the first mirroring optical element receives the third light portion L 3 and directs the third light portion L 3 through the bottom surface of the substrate onto a monitor light detector of the optoelectronic module that is used to monitor an optical output power level of the light source of the optoelectronic module.

5. The optical beam splitter of claim 4 , wherein at least the first mirroring optical element and the first refractive optical element are formed of replicated epoxy.

6. The optical beam splitter of claim 1 , wherein light passing out of an end of an optical fiber coupled to the lens assembly is directed by the lens assembly onto the first refractive element, and wherein the first refractive element tilts the received light at a predetermined angle relative to an imaginary line that is normal to the upper surface of the substrate and that extends between the upper and lower surfaces of the substrate and directs the tilted received light onto the first diffractive optical element, and wherein the first diffractive optical element directs the tilted received light toward to the upper surface of the substrate, and wherein the optical beam splitter further comprises:

at least a second mirroring optical element formed on the upper surface of the substrate, and wherein the second mirroring optical element reflects the light directed by the first diffractive optical element toward the upper surface of the substrate toward the lower surface of the substrate; and

at least a second refractive optical element formed on the lower surface of the substrate, the second refractive optical element directing the light reflected by the second mirroring optical element onto a receiver light detector of the optoelectronic module disposed adjacent the lower surface of the substrate.

7. The optical beam splitter of claim 6 , wherein at least the first and second refractive optical elements are formed of replicated epoxy.

8. The optical beam splitter of claim 6 , wherein the first diffractive optical element and the second mirroring optical element are formed of metal.

9. The optical beam splitter of claim 1 , wherein the first preselected tilt angle is between about 5 degrees and 10 degrees.

10. The optical beam splitter of claim 9 , wherein the first preselected tilt angle is about 8 degrees.

11. A method of performing optical beam splitting in an optoelectronic module, the method comprising:

with a first diffractive optical element formed on the outside of a lower surface of a substrate, receiving a main beam of light produced by a light source of the optoelectronic module;

with the first diffractive optical element, splitting the main beam into at least first and second light portions L 1 and L 2 , respectively, and tilting at least the first light portion L 1 at a first preselected non-zero tilt angle relative to an imaginary line that is normal to the lower surface of the substrate and that extends between the lower and upper surfaces of the substrate, wherein the first and second light portions L 1 and L 2 each have a particular percentage of an optical power of the main light beam, and wherein the second light portion L 2 has a substantially larger percentage of the optical power of the main light beam than the first portion L 1 ; and

with at least a first refractive optical element formed on the outside of the upper surface of the substrate, receiving the tilted first light portion L 1 and directing the first light portion L 1 onto a lens assembly of the optoelectronic module to optically couple the first light portion L 1 into an end of an optical fiber coupled to the lens assembly, and wherein the optical power of the first light portion that is directed by the first refractive optical element onto the lens assembly is within a human eye safety limit.

12. The method of claim 11 , wherein the first diffractive element directs the second light portion L 2 onto an optical beam stop.

13. The method of claim 11 , wherein the first diffractive optical element splits the main light beam into the first and second light portions L 1 and L 2 and into a third light portion L 3 , and wherein the method further comprises:

with a first mirroring optical element formed on the upper surface of the substrate, receiving the third light portion L 3 and directing the third light portion L 3 through the lower surface of the substrate onto a monitor light detector of the optoelectronic module that is used to monitor an optical output power level of the light source of the optoelectronic module.

14. The method of claim 13 , wherein at least the first mirroring optical element and the first refractive optical element are formed of replicated epoxy.

15. The method of claim 11 , further comprising:

with the first refractive optical element, receiving light passing out of an end of an optical fiber coupled to the lens assembly and directing the received light onto the first diffractive optical element;

with the first diffractive element, receiving the light directed by the first refractive element onto the first diffractive element and directing the received light toward to the upper surface of the substrate;

with a second mirroring optical element formed on the upper surface of the substrate, reflecting the light directed by the first diffractive optical element toward the upper surface of the substrate toward the lower surface of the substrate; and

with a second refractive optical element formed on the lower surface of the substrate, directing the light reflected by the second mirroring optical element onto a receiver light detector of the optoelectronic module.

16. The method of claim 15 , wherein at least the first and second refractive optical elements are formed of replicated epoxy.

17. The method of claim 15 , wherein the first diffractive optical element and the second mirroring optical element are formed of metal.

18. The method of claim 11 , wherein the first preselected tilt angle is between about 5 degrees and 10 degrees.

19. The method of claim 18 , wherein the first preselected tilt angle is about 8 degrees.

20. The method of claim 11 , wherein the first light portion L 1 has about 20% of the optical power of the main light beam and wherein the second light portion has about 80% of the optical power of the main light beam.

Assignments (10)
MERGER Recorded Mar 3, 2023
From: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED; BROADCOM INTERNATIONAL PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 062952/0850 →
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 EFFECTIVE DATE OF MERGER TO 09/05/2018 PREVIOUSLY RECORDED AT REEL: 047230 FRAME: 0133. ASSIGNOR(S) HEREBY CONFIRMS THE MERGER. Recorded Oct 29, 2018
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 047630/0456 →
MERGER Recorded Oct 4, 2018
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 047230/0133 →
TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS Recorded Feb 3, 2017
From: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
To: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
Reel/Frame 041710/0001 →
PATENT SECURITY AGREEMENT Recorded Feb 11, 2016
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
Reel/Frame 037808/0001 →
TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENT RIGHTS (RELEASES RF 032851-0001) Recorded Feb 2, 2016
From: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
To: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
Reel/Frame 037689/0001 →
PATENT SECURITY AGREEMENT Recorded May 8, 2014
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
Reel/Frame 032851/0001 →
MERGER Recorded May 1, 2013
From: AVAGO TECHNOLOGIES FIBER IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
Reel/Frame 030331/0544 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 16, 2010
From: MCCOLLOCH, LAURENCE R.; WEN, PENGYUE
To: AVAGO TECHNOLOGIES FIBER IP (SINGAPORE) PTE. LTD.
Reel/Frame 024695/0221 →
Continuity (1)
Related Publication 20120002284A1 · Jan 5, 2012