Transmissive photonic crystal fiber ring resonator employing single optical beam-splitter
09915786 ยท 2018-03-13
Assignee
Inventors
- Lishuang Feng (Beijing, CN)
- Junjie Wang (Beijing, CN)
- Yinzhou Zhi (Beijing, CN)
- Hongchen Jiao (Beijing, CN)
- Qiwei Wang (Beijing, CN)
- Wenshuai Song (Beijing, CN)
Cpc classification
G01C19/72
PHYSICS
G02B6/262
PHYSICS
International classification
Abstract
A transmissive photonic crystal fiber ring resonator employing single optical beam-splitter comprises: a first fiber-optic collimator, a second fiber-optic collimator, a first photonic crystal fiber collimator, a second photonic crystal fiber collimator, an optical beam-splitter, and a fixture. The first fiber-optic collimator, the second fiber-optic collimator, the first photonic crystal fiber collimator, the second photonic crystal fiber collimator, and the optical beam-splitter are fixed on the fixture; the fiber pigtails of the first fiber-optic collimator and the second fiber-optic collimator are the input/output ports; the fiber pigtails of the first photonic crystal fiber collimator and the second photonic crystal fiber collimator are connected. The number of components of the photonic crystal fiber ring resonator is reduced by half: only one optical beam-splitter and two photonic crystal fiber collimators besides two fiber-optic collimators; therefore, the resonator structure can be simplified and the size can be reduced.
Claims
1. A transmissive photonic crystal fiber ring resonator employing single optical beam-splitter, comprising: a first fiber-optic collimator, a second fiber-optic collimator, a first photonic crystal fiber collimator, a second photonic crystal fiber collimator, an optical beam-splitter, and a fixture, wherein the first fiber-optic collimator, the second fiber-optic collimator, the first photonic crystal fiber collimator, the second photonic crystal fiber collimator, and the optical beam-splitter are fixed on the fixture; fiber pigtails of the first fiber-optic collimator and the second fiber-optic collimator are the input/output ports; fiber pigtails of the first photonic crystal fiber collimator and the second photonic crystal fiber collimator are connected to each other; the first fiber-optic collimator and the first photonic crystal fiber collimator are placed at one side of the optical beam-splitter, and they are aligned according to the law of reflection of light; the second fiber-optic collimator and the second photonic crystal fiber collimator are placed at another side of the optical beam-splitter, and they are also aligned according to the law of reflection of light; the first photonic crystal fiber collimator, the second photonic crystal fiber collimator, and the optical beam-splitter are aligned according to the law of refraction of light and the law of rectilinear propagation of light.
2. The transmissive photonic crystal fiber ring resonator of claim 1, wherein the said first fiber-optic collimator and the second fiber-optic collimator are both conventional fiber-optic collimators, each of which comprises a conventional optical fiber and a collimator lens group.
3. The transmissive photonic crystal fiber ring resonator of claim 2, wherein the said conventional optical fiber refers to the kind of optical fiber whose core-index is higher than the cladding-index and whose way of lightwave guiding is based on the principle of total internal reflection.
4. The transmissive photonic crystal fiber ring resonator of claim 2, wherein the said first photonic crystal fiber collimator and the second photonic crystal fiber collimator are both photonic crystal fiber collimators, each of which comprises a photonic crystal fiber and a collimator lens group.
5. The transmissive photonic crystal fiber ring resonator of claim 4, wherein the said photonic crystal fiber refers to the kind of optical fiber whose cross-section has periodic micro-structures.
6. The transmissive photonic crystal fiber ring resonator of claim 2, wherein the said collimator lens group refers to the kind of optical element that comprises one lens or more and can collimate or collect light beam.
7. The transmissive photonic crystal fiber ring resonator of claim 1, wherein the said optical beam-splitter is an optical dielectric plate, whose two interfaces are coated or uncoated.
8. The transmissive photonic crystal fiber ring resonator of claim 1, wherein the angles between the said optical beam-splitter and the working axes of the first fiber-optic collimator, the second fiber-optic collimator, the first photonic crystal fiber collimator and the second photonic crystal fiber collimator are equal, which is represented by (0<<90).
9. The transmissive photonic crystal fiber ring resonator of claim 4, wherein the said collimator lens group refers to the kind of optical element that comprises one lens or more and can collimate or collect light beam.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2) 1the first fiber-optic collimator 2the second fiber-optic collimator 3the first photonic crystal fiber collimator 4the second photonic crystal fiber collimator 5optical beam-splitter 51the first beam-splitting interface 52the second beam-splitting interface 6fixture
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(3) In the following detailed description, reference is made to the accompanying drawings that form a part hereof, and in which is shown by way of specific illustrative embodiments in which the invention may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice the invention, and it is to be understood that other embodiments may be utilized and that logical, mechanical and electrical changes may be made without departing from the scope of the present invention. The following detailed description is, therefore, not to be taken in a limiting sense.
(4) A transmissive photonic crystal fiber ring resonator employing single optical beam-splitter, shown in
(5) The first fiber-optic collimator 1, the second fiber-optic collimator 2, the first photonic crystal fiber collimator 3, the second photonic crystal fiber collimator 4, and the optical beam-splitter 5 are fixed on the fixture 6;
(6) The first fiber-optic collimator 1 and the second fiber-optic collimator 2 are both conventional fiber-optic collimators, each of which comprises a conventional optical fiber and a collimator lens group;
(7) The said conventional optical fiber refers to the kind of optical fiber whose core-index is higher than the cladding-index and, meanwhile, whose way of lightwave guiding is based on the principle of total internal reflection.
(8) The first photonic crystal fiber collimator 3 and the second photonic crystal fiber collimator 4 are both photonic crystal fiber collimators, each of which comprises a photonic crystal fiber and a collimator lens group.
(9) The said photonic crystal fiber refers to the kind of optical fiber whose cross-section has periodic micro-structures, including but not limited to hollow-core optical fiber and solid-core optical fiber;
(10) The pigtail of the first fiber-optic collimator 1 is an input/output port, and the pigtail of the second fiber-optic collimator 2 is also an input/output port;
(11) The pigtails of the first photonic crystal fiber collimator 3 and the second photonic crystal fiber collimator 4 are connected;
(12) The optical beam-splitter 5 is an optical dielectric flat. The first beam-splitting interface 51 and the second beam-splitting interface 52 can be coated or uncoated;
(13) The fixture 6 is made of crystallized glass, quartz, invar or other low-thermal-expansion materials so that the temperature-induced changes of the relative positions of the first fiber-optic collimator 1, the second fiber-optic collimator 2, the first photonic crystal fiber collimator 3, the second photonic crystal fiber collimator 4 and the optical beam-splitter 5 can be controlled below the designed value in the operating temperature range. The fixture 6 can be any shape.
(14) The first fiber-optic collimator 1 and the first photonic crystal fiber collimator 3 are placed in the same side of the optical beam-splitter 5, and they are aligned according to the law of reflection of light; the second fiber-optic collimator 2 and the second photonic crystal fiber collimator 4 are placed in the other side of the optical beam-splitter 5, and they are also aligned according to the law of reflection of light; the first photonic crystal fiber collimator 3, the second photonic crystal fiber collimator 4, and the optical beam-splitter 5 are aligned according to the law of refraction of light and the law of rectilinear propagation of light.
(15) The said collimator lens group refers to the kind of optical element that comprises one lens or more and can collimate or collect light beam;
(16) The angles between the optical beam-splitter 5 and the working axes of the first fiber-optic collimator 1, the second fiber-optic collimator 2, the first photonic crystal fiber collimator 3 and the second photonic crystal fiber collimator 4 are equal, which can be represented by (0<<90). Especially, is recommended to be the complementary angle of the Brewster angle;
(17) As shown in
(18) Unlike the conventional reflective resonator employing single optical beam-splitter or the transmissive resonator employing dual optical beam-splitters, the present invention proposes a kind of special optical structure, which makes it possible that a resonator employing single optical beam-splitter 5 can exhibit characteristics of transmissive resonance peaks. The embodiment of the present disclosure possesses, therefore, advantages of single optical beam-splitter, transmissive output, high finesse, small size and easy packaging.
(19) Although specific embodiments have been illustrated and described herein, it will be appreciated by those of ordinary skill in the art that any arrangement, which is calculated to achieve the same purpose, may be substituted for the specific embodiment shown. This application is intended to cover any adaptations or variations of the present invention. Therefore, it is manifestly intended that this invention be limited only by the claims and the equivalents thereof.