IP Library Granted Patent US 12,517,385
Granted Patent B2
US 12,517,385 · App. 17/649,605 · Granted Jan 6, 2026

High isolation and low insertion loss optical isolator

Inventors: Shuyu Wu (Fuzhou, CN); Dong Lin (Fuzhou, CN); Yunbing Xu (Fuzhou, CN)
Assignee: II-VI DELAWARE, INC.
G02F1/093G02B6/002G02B6/2746G02B2006/12157
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Quick Facts
Patent No.
US 12,517,385
App. No.
17/649,605
Granted
Jan 6, 2026
Kind
B2
Abstract

An optical isolator has high isolation and low insertion loss in bandwidth. An input fiber collimator, isolator cores, and an output fiber collimator are connected in sequence in an optical path. Acute ends of wedge surfaces of lenses and fiber heads of the collimators are polished to form small platforms. Faraday crystals of the cores are optically active and are different in wavelength; birefringent wedges of the cores are different in wedge angle; and an optical axis of the birefringent wedges at an emitting end of the first core is perpendicular to an optical axis of the birefringent wedges at an incident end of the second core. The two stages of Faraday crystals with different wavelengths are overlaid to extend and widen isolation performance in bandwidth, and a small-spot collimator design is adopted so coupling loss is low, performance is stable, and reliability is high.

Claims (48)

1 . An optical isolator, comprising:

an input fiber collimator, a dual-stage optical isolator core, and an output fiber collimator connected in sequence in a direction of an optical path;

the input and output fiber collimators each having a lens and a fiber head, acute ends of wedge surfaces of the lenses and the fiber heads being polished to form platforms; and

the dual-stage optical isolator core at least including a first-stage optical isolation assembly and a second-stage optical isolation assembly, each of the first-stage and second-stage optical isolation assemblies at least including two birefringent wedge pieces, and one Faraday optically active crystal placed between the corresponding two birefringent wedge pieces;

the Faraday optically active crystals for the first-stage and second-stage optical isolation assemblies being different in wavelength,

the birefringent wedge pieces for the first-stage optical isolation assembly having at least one first wedge angle and the birefringent wedge pieces for the second-stage optical isolation assembly having at least one second wedge angle, wherein the at least one first wedge angle and the at least one second wedge angle are different from each other,

one of the birefringent wedge pieces for the first-stage optical isolation assembly is a birefringent wedge piece at an emitting end of the first-stage optical isolation assembly, one of the birefringent wedge pieces for the second-stage optical isolation assembly is a birefringent wedge piece at an incident end of the second-stage optical isolation assembly, the birefringent wedge piece at the emitting end having an optical axis perpendicular to a second optical axis of the birefringent wedge piece at the incident end,

wherein the birefringent wedge pieces for the first-stage optical isolation assembly each having the same first wedge angle and the birefringent wedge pieces for the second-stage optical isolation assembly each having the same second wedge angle.

2 . The optical isolator of claim 1 , wherein the input fiber collimator and the output fiber collimator have the optical path therebetween lacking adhesive.

3 . The optical isolator of claim 1 , wherein each of the Faraday optically active crystals is of a type having a magnetic field itself or a type needing an externally applied magnetic field.

4 . The optical isolator of claim 1 , wherein the at least one first wedge angle of each of the birefringent wedge pieces in the first-stage optical isolation assembly is ½ of the wedge angle of each of the birefringent wedge pieces in the second-stage optical isolation assembly.

5 . The optical isolator of claim 1 , wherein the at least one first wedge angle of each of the birefringent wedge pieces in the first-stage optical isolation assembly is 2 times the wedge angle of each of the birefringent wedge pieces in the second-stage optical isolation assembly.

6 . The optical isolator of claim 1 , wherein the birefringent wedge pieces in the first-stage optical isolation assembly and the second-stage optical isolation assembly are both made of a Yttrium orthovanadate (YVO4) material, the at least one first wedge angle of each of the birefringent wedge pieces in the first-stage optical isolation assembly is 4 degrees, and the at least one second wedge angle of each of the birefringent wedge pieces in the second-stage optical isolation assembly is 8 degrees.

7 . An optical isolator, comprising:

an input fiber collimator, a dual-stage optical isolator core, and an output fiber collimator connected in sequence in a direction of an optical path;

the input and output fiber collimators each having a lens and a fiber head, acute ends of wedge surfaces of the lenses and the fiber heads being polished to form platforms, wherein width dimensions of the platforms are not higher than ¼ of diameters of the lenses or the fiber heads; and

the dual-stage optical isolator core at least including a first-stage optical isolation assembly and a second-stage optical isolation assembly, each of the first-stage and second-stage optical isolation assemblies at least including two birefringent wedge pieces, and one Faraday optically active crystal placed between the corresponding two birefringent wedge pieces;

the Faraday optically active crystals for the first-stage and second-stage optical isolation assemblies being different in wavelength,

the birefringent wedge pieces for the first-stage and second-stage optical isolation assemblies being different in wedge angle,

one of the birefringent wedge pieces for the first-stage optical isolation assembly is a birefringent wedge piece at an emitting end of the first-stage optical isolation assembly, one of the birefringent wedge pieces for the second-stage optical isolation assembly is a birefringent wedge piece at an incident end of the second-stage optical isolation assembly, the birefringent wedge piece at the emitting end having an optical axis perpendicular to a second optical axis of the birefringent wedge piece at the incident end.

8 . The optical isolator of claim 7 , wherein the birefringent wedge pieces for the first-stage optical isolation assembly each having the same first wedge angle and the birefringent wedge pieces for the second-stage optical isolation assembly each having the same second wedge angle.

9 . An optical isolator, comprising:

an input fiber collimator, a dual-stage optical isolator core, and an output fiber collimator connected in sequence in a direction of an optical path;

the input and output fiber collimators each having a lens and a fiber head, acute ends of wedge surfaces of the lenses and the fiber heads being polished to form platforms, wherein each of the input and output fiber collimators is a small-spot collimator having a spot value smaller than or equal to 300 μm; and

the dual-stage optical isolator core at least including a first-stage optical isolation assembly and a second-stage optical isolation assembly, each of the first-stage and second-stage optical isolation assemblies at least including two birefringent wedge pieces, and one Faraday optically active crystal placed between the corresponding two birefringent wedge pieces;

the Faraday optically active crystals for the first-stage and second-stage optical isolation assemblies being different in wavelength,

the birefringent wedge pieces for the first-stage and second-stage optical isolation assemblies being different in wedge angle,

one of the birefringent wedge pieces for the first-stage optical isolation assembly is a birefringent wedge piece at an emitting end of the first-stage optical isolation assembly, one of the birefringent wedge pieces for the second-stage optical isolation assembly is a birefringent wedge piece at an incident end of the second-stage optical isolation assembly, the birefringent wedge piece at the emitting end having an optical axis perpendicular to a second optical axis of the birefringent wedge piece at the incident end.

10 . An optical isolator, comprising:

a first fiber collimator, a first isolator core, a second isolator core, and a second fiber collimator connected in sequence in a direction of an optical path;

the first and second fiber collimators each having a lens and a fiber head, acute ends of wedge surfaces of the lenses and the fiber heads being polished to form platforms;

the first isolator core at least including: at least two first birefringent wedges having at least one wedge angle, and a first Faraday crystal, the first Faraday crystal being optically active and being placed between the first birefringent wedges, one of the first birefringent wedges being at an emitting end of the optical isolator and having a first optical axis;

the second isolator core at least including: at least two second birefringent wedges having at least one wedge angle, and a second Faraday crystal, the second Faraday crystal being optically active and being placed between the second birefringent wedges, the second Faraday crystal being different in wavelength from the first Faraday crystal, the at least two second birefringent wedges being different in wedge angle from the at least two first birefringent wedges, one of the second birefringent wedges being at an incident end of the optical isolator and having a second optical axis being perpendicular to the first optical axis.

11 . The optical isolator of claim 10 , wherein the first and second fiber collimators have the optical path therebetween lacking adhesive.

12 . The optical isolator of claim 10 , wherein each of the first and second Faraday crystals comprises a type having a magnetic field itself, or a type needing an externally applied magnetic field.

13 . The optical isolator of claim 10 , wherein the at least one first wedge angle of each of the first birefringent wedges is ½ of the at least one second wedge angle of each of the second birefringent wedges.

14 . The optical isolator of claim 10 , wherein the at least one first wedge angle of each of the first birefringent wedges is 2 times the at least one second wedge angle of each of the second birefringent wedges.

15 . The optical isolator of claim 10 , wherein the first and second birefringent wedges comprise a yttrium orthovanadate (YVO4) material, the at least one first wedge angle of each of the first birefringent wedges is 4 degrees, and the at least one second wedge angle of each of the second birefringent wedges is 8 degrees.

16 . An optical isolator, comprising:

a first fiber collimator, a first isolator core, a second isolator core, and a second fiber collimator connected in sequence in a direction of an optical path;

the first and second fiber collimators each having a lens and a fiber head, acute ends of wedge surfaces of the lenses and the fiber heads being polished to form platforms wherein width dimensions of the platforms are not higher than ¼ of diameters of the lenses or the fiber heads;

the first isolator core at least including: first birefringent wedges, and a first Faraday crystal, the first Faraday crystal being optically active and being placed between the first birefringent wedges, the first birefringent wedge at an emitting end of the optical isolator having a first optical axis;

the second isolator core at least including: second birefringent wedges, and a second Faraday crystal, the second Faraday crystal being optically active and being placed between the second birefringent wedges, the second Faraday crystal being different in wavelength from the first Faraday crystal, the second birefringent wedges being different in wedge angle from the first birefringent wedges, the second birefringent wedge at an incident end of the optical isolator having a second optical axis being perpendicular to the first optical axis.

17 . An optical isolator, comprising:

a first fiber collimator, a first isolator core, a second isolator core, and a second fiber collimator connected in sequence in a direction of an optical path;

the first and second fiber collimators each having a lens and a fiber head, acute ends of wedge surfaces of the lenses and the fiber heads being polished to form platforms, wherein each of the first and second fiber collimators comprises a small-spot collimator having a spot value smaller than or equal to 300 μm

the first isolator core at least including: first birefringent wedges, and a first Faraday crystal, the first Faraday crystal being optically active and being placed between the first birefringent wedges, the first birefringent wedge at an emitting end of the optical isolator having a first optical axis;

the second isolator core at least including: second birefringent wedges, and a second Faraday crystal, the second Faraday crystal being optically active and being placed between the second birefringent wedges, the second Faraday crystal being different in wavelength from the first Faraday crystal, the second birefringent wedge being different in wedge angle from the first birefringent wedges, the second birefringent wedges at an incident end of the optical isolator having a second optical axis being perpendicular to the first optical axis.

Assignments (2)
SECURITY INTEREST Recorded Jul 1, 2022
From: II-VI INCORPORATED; II-VI DELAWARE, INC.; M CUBED TECHNOLOGIES, INC.; II-VI PHOTONICS (US), INC.; PHOTOP TECHNOLOGIES, INC.; COHERENT, INC.
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 060562/0254 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2022
From: WU, SHUYU; LIN, DONG; XU, YUNBING
To: II-VI DELAWARE, INC.
Reel/Frame 058847/0985 →
Priority Claims (1)
CN 202110187987.2 · Feb 7, 2021 · national
Continuity (1)
Related Publication 20220291535A1 · Sep 15, 2022
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