The present invention relates to a multi-core multi-mode fiber coupling device configured to simultaneously convert light beams in a single mode from a plurality of fibers into a higher order mode to thereby have ability to effectively couple the plurality of single mode fibers and a multi-core multi-mode fiber, and a method of coupling a plurality of optical fibers and a multi-core multi-mode fiber using such a device.
In recent years, the limit in transmission capacity of optical fibers has become a problem, and studies on Space Division Multiplexing (SDM) are thus being intensively made in order to solve such a problem. For this reason, multi-core fibers having a plurality of cores in a single fiber, and/or multi-mode fibers capable of transmitting a plurality of propagation modes through a single core are subject to study.
In the Japanese Patent Application Laid Open No. 2013-182222 publication (the following Patent reference 1), there is a multi-core fiber coupling device disclosed. This multi-core fiber coupling device is configured to couple a plurality of single mode fibers and a multi-core fiber.
In a non-Patent reference 1, there is a technology adapted for stretching a bundle fiber in a tapered shape to couple a multi-core fiber of 7-core and single mode fibers disclosed. With this technology, a plurality of single mode fibers are bundled and stretched to implement fusion splicing to the multi-core fiber.
Patent reference 1: Japanese Patent Application Laid Open No. 2013-182222 publication
Non-patent reference 1: B. Zhu, et. al “Space-, Wavelength-, Polarization-Division Multiplexed Transmission of 56-Tb/s over a 76.8-km Seven-Core Fiber,” in Optical Fiber Communication Conference, OSA Technical Digest (CD)(Optical Society of America, 2011), paper PDPB7.
As described above, the limit in the transmission capacity of the optical fiber is considered to be a problem. For this reason, it is desirable to develop a multi-core multi-mode fiber coupling device which is able to transmit a large number of information, and to propose a multi-core multi-mode fiber coupling method using such a device.
The present invention is fundamentally based on the finding that outgoing light beams from a plurality of multi-core couplers are subjected to mode multiplexing using an optical coupler (optical mode combiner) so that the multi-core multi-mode fiber coupling can be made.
The present invention relates to a multi-core multi-mode fiber coupling device. This device comprises: a first group 11 of fibers, which will be hereinafter simply referred to as a first fiber group 11; a first light converging system 13, a first mode converter 15; a second group 21 of fibers, which will be hereinafter simply referred to as a second fiber group 21; a second light converging system 23; and a spatial coupling system 33 for multi-core fiber, which will be hereinafter simply referred to as a multi-core fiber spatial coupling system 33. The first mode converter 15 simultaneously implements thereat mode conversion to light beams from the first fiber group 11. The multi-core fiber spatial coupling system 33 multiplexes light beams originating from the first fiber group 11, which have been subjected to mode conversion, and light beams originating from the second fiber group 21 to transmit the light beam or beams thus obtained to a multi-core fiber 31.
The first light converging system 13 is an optical system for converging a group of outgoing light beams from the first fiber group 11. The first mode converter 15 is an optical device for converting the mode of the group of outgoing light beams from the first fiber group 11, which have been converged by means of the first light converging system 13, into a first mode. The second light converging system 23 is an optical system for converging a group of outgoing light beams from the second fiber group 21.
The multi-core fiber spatial coupling system 33 is an optical system for multiplexing the group of light beams from the first mode converter 15 and the group of light beams from the second mode converter 23 to guide the multiplexed light beam or beams into the multi-core fiber 31.
When the first mode is the base mode, respective light beams, which have been converged by means of the first light converging system 13, are passed through the first mode converter 15 which provides a distribution to allow a difference between phases adjacent in a spatial light in correspondence with the propagation mode within the optical fiber to be π (180°) to thereby have ability to perform conversion into a higher order mode. The multi-core multi-mode fiber coupling device of the present invention simultaneously implements mode conversion to a plurality of outgoing light beams from the first fiber group 11 by converging light beams into the first mode converter 15. It is preferable that the first mode converter 15 is a phase plate arranged at a position in which the group of outgoing light beams from the first fiber group 11 are allowed to coincide with each other by the first light converging system 13. This position may be also a position for realizing an optimum mode conversion efficiency as will be described later.
A more preferred example of the multi-core multi-mode fiber coupling device is a device further comprising: a third group 41 of fibers, which will be hereinafter simply referred to as a third fiber group 41; a third light converging system 43; and a third mode converter 45. The third light converging system 43 is an optical system for converging a group of outgoing light beams from the third fiber group 41. The third mode converter 45 is an optical device for performing mode conversion into a second mode of the group of outgoing light beams from the third fiber group 41, which have been converged by means of the third light converging system 43.
In the case of the above-mentioned example, the multi-core fiber spatial coupling system 33 guides the group of outgoing light beams from the first mode converter 15, the group of outgoing light beams from the second light converging system 23 and the group of outgoing light beams from the third mode converter 45, into the multi-core fiber 31.
The present invention also provides a multi-core multi-mode fiber coupling method using the above-described multi-core multi-mode fiber coupling device. This method comprises steps described below.
A group of outgoing light beams are emitted from the first fiber group 11. The group of outgoing light beams from the first fiber group 11 are converged by means of the first light converging system 13. The group of outgoing light beams from the first fiber group 11, which have been converged by means of the first light converging system 13, are subjected to mode conversion into the first mode by means of the first mode converter 15.
The group of outgoing light beams are emitted from the second fiber group 21. The group of outgoing light beams from the second fiber group 21 are converged by means of the second light converging system 23. The group of outgoing light beams from the first mode converter 15 and the group of outgoing light beams from the second light converging system 23 are guided into the multi-core fiber 31 by means of the multi-core fiber spatial coupling system 33.
In accordance with the present invention, since multi-core multi-mode coupling device can be provided by means of a plurality of multi-core couplers and optical coupler (optical mode combiner), it is possible to realize multi-core multi-mode fiber coupling with lesser number of parts or components.
Preferred embodiments for carrying out the present invention will now be described with reference to the attached drawings. It is to be noted that the present invention is not limited to embodiments described below, but may include an embodiment or embodiments which has or have been modified or changed as occasion demands within the scope that the person skilled in the art knows from the embodiments described below.
The present invention relates to a multi-core multi-mode fiber coupling device. The multi-core multi-mode fiber coupling device is configured to couple light beams from a plurality of light sources with a multi-core multi-mode fiber. Namely, such a device refers to a device adapted to guide light beams caused to be in a multi-mode including a plurality of higher order mode into respective cores of a multi-core fiber having a plurality of cores in a single optical fiber. There is no need for all cores included in the multi-core fiber to be used for optical information communication, but, e.g., any one of the central core and/or peripheral cores may be used for detection, and any feedback may be employed in advance as occasion demands.
The first fiber group 11 refers to a group of two optical fibers or more which are provided at positions spatially away from each other. An example of the optical fibers constituting the first fiber group is a single mode fiber.
The first light converging system 13 is an optical system for converging a group of outgoing light beams from the first fiber group 11. An example of the first light converging system 13 is a prism or a mirror for guiding a plurality of outgoing light beams from the first fiber group 11 into the first mode converter 15 (e.g., phase plate). When the first light converging system 13 is a mirror, an optical path is adjusted so that light beams from a plurality of optical fibers existing spatially away from each other arrive at a predetermined position of a wavelength plate. In this way, a plurality of light beams from the first fiber group 11 are guided to a predetermined position of the first mode converter 15 by means of the first light converging system 13. However, in the case of an arrangement which can conduct a guide to a predetermined position of the first mode converter 15 without relying on the first light converging system 13, it is not necessarily required to use the first light converging system 13.
The first mode converter 15 is an optical device for converting the mode of a group of outgoing light beams from the first fiber group 11, which have been converged by means of the first light converging system 13, into the first mode. An example of the first mode converter 15 is a phase plate. It is preferable that the first mode converter 15 is a phase plate arranged in a position where the group of outgoing light beams from the first fiber group 11 coincide with each other by means of the first light converging system 13. In the first mode converter 15, light beams included in the group of outgoing light beams from the first fiber group 11 may be simultaneously subjected to mode conversion, thereby making it possible to easily attain the multi-core multi-mode fiber coupling.
The mode converter is known as disclosed in, e.g. the Japanese Patent Application Laid Open No. 2009-047784 publication, and the Japanese Patent Application Laid Open No. 2010-122688 publication. The mode converter can convert light beams of the base mode into light beams of any higher order mode. An output from the first fiber has ordinarily basic (base) mode (TEM00). Light beams of the basic mode are subjected to mode conversion as occasion demands at the first mode converter 15. An example of the mode after it has undergone mode conversion is a first order mode (TEM01 or TEM10). Any mode (e.g., TEM11 or TEM02) except for the above may be used. On the other hand, it is preferable that a group of outgoing light beams from the first mode converter 15, which arrives at a multi-core multi-mode fiber, are different in the mode from any other group of light beams.
For example, when three kinds of groups of light beams are input into the multi-core multi-mode fiber, it is preferable to employ three modes of the base mode (the case where, e.g. an output from the single mode fiber is not subjected to mode conversion), TEM01 and TEM10. Such modes are introduced into the multi-core multi-mode fiber, and any mode may be employed if it can be separated by using known means in a multi-core multi-mode fiber of the receiving side.
A preferred example of the multi-core multi-mode fiber coupling device is an example in which light beams are converged on a predetermined position of the first mode converter 15 by means of the first light converging system 13.
Ordinarily, the multi-core fiber has a plurality of cores in positions symmetrical with respect to the central core. Moreover, the phase plate is such that the boundary between the thin part 17 and the thick part 18 linearly exists. In the present invention, light beams from the fiber, which have been once converged at this boundary, are guided into respective cores of the multi-core.
The second light converging system 23 is an optical system for converging a group of outgoing light beams from the second fiber group 21. In this example, such a second mode converter adapted to perform mode conversion of the mode of the group of outgoing light beams from the second fiber group 21, which have been converged by the second light converging system 23, is not indispensable. This is because it is sufficient that any light signal in the base mode is included in the multi-core multi-mode fiber. On the other hand, the mode of a group of outgoing light beams from the second fiber group 21, which have been converged by means of the second light converging system 23, may be subjected to mode change or conversion by means of the second mode converter.
The multi-core fiber spatial coupling system 33 is an optical system for guiding a group of outgoing light beams from the first mode converter 15 and a group of outgoing light beams from the second light converging system 23 into the multi-core fiber 31. The multi-core fiber spatial coupling system 33 guides respective plural light beams, which are included in the group of rays of outgoing light beams from the first mode converter 15 and the group of outgoing light beams from the second light converging system 23, into a corresponding one or ones of a plurality of cores of the multi-core multi-mode fiber. An example of such an optical system is an optical system in the multi-core fiber coupling device disclosed in the Japanese Patent Application Laid Open No. 2013-182222 publication.
An example of the multi-core fiber spatial coupling system 33 is configured to comprise, as illustrated in
As described above, light beams included in the group of outgoing light beams from the first fiber group 11 are simultaneously subjected to mode conversion at the first mode converter 15, thereby making it possible to easily attain multi-core multi-mode fiber coupling.
The light beams which have been emitted from the multi-core multi-mode fiber 31 are separated by a multi-core fiber coupling lens (multi-core fiber separation lens) 61 so that they are transmitted into a plurality of fibers 65 by means of an optical system 63.
The present invention also provides a multi-core multi-mode fiber coupling method using the above-described multi-core multi-mode fiber coupling device. This method comprises steps described below.
A group of outgoing light beams are emitted from the first fiber group 11. The group of outgoing light beams from the first fiber group 11 are converged by means of the first light converging system 13. The group of outgoing light beams from the first fiber group 11, which have been converged by means of the first light converging system 13, are subjected to mode conversion into the first mode by means of the first mode converter 15.
A group of outgoing light beams are emitted from the second fiber group 21. The group of outgoing light beams from the second fiber group 21 are converged by means of the second light converging system 23. The group of outgoing light beams from the first mode converter 15 and the group of outgoing light beams from the second light converging system 23 are guided into the multi-core fiber 31 by means of the multi-core fiber spatial coupling system 33.
In the case of this example, the multi-core fiber spatial coupling system 33 guides a group of outgoing light beams from the first mode converter 15, a group of outgoing light beams from the second light converging system 23, and a group of outgoing light beams from the third mode converter 45 into the multi-core fiber 31.
The present invention also provides a multi-core multi-mode fiber coupling method using the above-described multi-core multi-mode fiber coupling device. This method comprises steps described below.
A group of outgoing light beams are emitted from the first fiber group 11. The group of outgoing light beams from the first fiber group 11 are converged by means of the first light converging system 13. The group of outgoing light beams from the first fiber group 11, which have been converged by means of the first light converging system 13, are subjected to mode conversion into the first mode by means of the first mode converter 15.
A group of outgoing light beams are emitted from the second fiber group 21. The group of outgoing light beams from the second fiber group 21 are converged by means of the second light converging system 23.
A group of outgoing light beams are emitted from the third fiber group 41. The group of outgoing light beams from the third fiber group 41 are converged by means of the third light converging system 43. The group of outgoing light beams from the third fiber group 41, which have been converged by means of the third light converging system 43, are subjected to mode conversion into the second mode (the third mode when light beams of the second fiber group have been subjected to mode conversion into the second mode) by means of the third mode converter 45. The group of outgoing light beams from the first mode converter 15, the group of outgoing light beams from the second light converging system 23 and the group of outgoing light beams from the third mode converter 45 are guided into the multi-core fiber 31 by means of the multi-core fiber spatial coupling system 33.
The present invention can be utilized in the field of the optical fiber communication using spatial division multiplexing and multi-core multi-mode fiber.
11 . . . First fiber group
13 . . . First light converging system
15 . . . First mode converter
21 . . . Second fiber group
23 . . . Second light converging system
31 . . . Multi-core fiber
33 . . . Multi-core fiber spatial coupling system
41 . . . Third fiber group
43 . . . Third light converging system
45 . . . Third mode converter
61 . . . Multi-core fiber coupling lens
63 . . . Optical system
65 . . . Fiber
Number | Date | Country | Kind |
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2014-090704 | Apr 2014 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2015/060708 | 4/6/2015 | WO | 00 |