WAVELENGTH DEMULTIPLEXER AND WAVELENGTH MULTIPLEXER USING SAME

20170118545 ยท 2017-04-27

Assignee

Inventors

Cpc classification

International classification

Abstract

A wavelength demultiplexer is equipped with a spectroscopic means (which separates light that is input from multiple input light paths, and outputs the light to multiple output light paths) and a light path switching device (a device that switches the light paths that are input to the spectroscopic means, with the switching being performed by an external operation), and the light path switching device may be a device that distributes the input from one input port to multiple output ports. The light path switching device and the spectroscopic means are polarization-independent, with the input light paths, the output light paths, and the light paths between the light path switching device and the spectroscopic means being polarization-maintaining light paths, so the relative polarization configuration is the same for the input light and the output light.

Claims

1. A wavelength demultiplexer comprising: spectroscopic means; and a light path switching device, the spectroscopic means being a device that separates lights input from multiple input light paths and outputs the separated lights to multiple output light paths, the light path switching device being a device that switches light paths which are input to the spectroscopic means, at least the light paths which are input to the spectroscopic means being switchable by an external operation.

2. The wavelength demultiplexer according to claim 1, wherein the light path switching device is a device that significantly distributes, for at least one input port, an input from the input port to multiple output ports.

3. The wavelength demultiplexer according to claim 1, wherein the light path switching device is provided with, on an input port side thereof and an output port side thereof, delay means for reducing an influence of a difference in light path length.

4. The wavelength demultiplexer according to claim 1, wherein the light path switching device and the spectroscopic means are polarization-independent, and input light paths of the light path switching device, the output light paths of the spectroscopic means, and light paths connecting the light path switching device and the spectroscopic means are polarization-maintaining light paths, so that a relative polarization configuration for an arrangement order of the input light paths of input light to the light path switching device and a relative polarization configuration for an arrangement order of the output light paths, corresponding to the arrangement order of the input light paths, of output light from the spectroscopic means are made the same.

5. The wavelength demultiplexer according to claim 1, wherein a transmission characteristic of the spectroscopic means from an input side thereof to an output side thereof for light paths that are input from the light path switching device is that a frequency width exhibiting flatness with a tolerance of 1 dB is greater than or equal to 37% of an adjacent optical frequency interval on the output side.

6. A wavelength multiplexer, wherein a wavelength-multiplexed signal is obtained by inputting light from an output side of the wavelength demultiplexer according to claim 1 and outputting light from an input side of the light path switching device.

7. The wavelength demultiplexer according to claim 2, wherein the light path switching device is provided with, on an input port side thereof and an output port side thereof, delay means for reducing an influence of a difference in light path length.

Description

BRIEF DESCRIPTION OF DRAWINGS

[0025] FIG. 1 is a diagram illustrating a conventional example of a delivery-and-coupling optical switch board.

[0026] FIG. 2 is a diagram illustrating the characteristics of an AWG used in the present invention.

[0027] FIG. 3 is a diagram illustrating a wavelength demultiplexer in an example configuration of a remote node (RN).

[0028] FIG. 4 is a diagram illustrating a wavelength demultiplexer of the present invention.

[0029] FIG. 5 is a block diagram illustrating an example of a light path switching device having delay means.

[0030] FIG. 6 include diagrams illustrating cases in which wavelength-multiplexed signals to be input have (a) variations in the spacing between a subcarrier and a modulated wave, and (b) signal strengths which differ from channel to channel.

DESCRIPTION OF EMBODIMENTS

[0031] An embodiment of the present invention will be described in detail hereinafter with reference to the drawings. In the following description, devices having the same function or similar functions are denoted by the same numerals unless there is some special reason.

Example 1

[0032] FIG. 4 illustrates a block diagram of a wavelength demultiplexer of the present invention. In this example, a 1616-port variable-splitting-ratio matrix optical switch is used as a light path switching device 3. Each element of this optical switch is a thermo-optic switch having a Mach-Zehnder configuration, and the light path switching device 3 is controlled by a controller 4. The output of the light path switching device 3 is input to the ninth to twenty-fourth ports of an AWG of a spectroscopic means 2. To the wavelength demultiplexer, an optical signal obtained by frequency multiplexing a modulated wave and a subcarrier in respective frequency bands which are obtained as a result of division so as to match the channel configuration of the AWG is input.

[0033] This configuration makes it possible to switch the light paths that are input to the spectroscopic means 2, and allows an optical signal extracted for each wavelength from multiple light paths to be obtained in a specific output light path of the AWG.

[0034] As a multiple-input multiple-output light path switching device, there are known a lattice matrix switch implemented by a gate switch, a non-blocking switch implemented by a crossbar switch, and so on. Furthermore, as a switch element, there are known a variety of switch elements such as of a directional coupler type, a Mach-Zehnder interferometer type, a semiconductor optical absorption type, and a variable reflecting mirror type. The present invention is also applicable to other cases as well as the cases described above.

[0035] For example, in a case where the AWG described above has characteristics of a 25-GHz-spacing arrangement, from the principle in FIG. 3, two input ports having a frequency interval of 25 GHz, 50 GHz, 75 GHz, 100 GHz, or the like are selected, making it easy to separate and obtain a RoF signal having a frequency difference of 25 GHz, 50 GHz, 75 GHz, 100 GHz, or the like from output ports.

[0036] In the configuration in FIG. 4, polarization-maintaining light paths are used for the input light paths of the optical switch as the light path switching device 3, the output light paths of the AWG of the spectroscopic means 2, and light paths connecting the optical switch and the AWG, and the optical switch and the AWG, which are of a polarization-independent type, are used. This makes it possible to hold the relative polarization configuration for the arrangement order of the input light paths of input light to the light path switching device and to make this relative polarization configuration the same as the relative polarization configuration for the arrangement order of the output light paths, corresponding to the arrangement order of the input light paths, of output light from the spectroscopic means. The term relative polarization configuration, as used here, refers to, for example, the arrangement in the same polarization direction or at the same order or difference in polarization ellipticity and polarization azimuth angle.

[0037] In FIG. 5, in a case where the light path switching device 3 is a matrix optical switch, in order to make delay times caused by the difference in light path length which is due to the difference in path uniform, delay means for compensating for the difference in light path length are provided for the input light paths and output light paths of the light path switching device 3. FIG. 5 depicts a case in which the duration of the delay between gate switches is uniformly t1 in the lateral direction and is uniformly t2 in the vertical direction, and the (m+1) light paths in the vertical direction and (n+1) light paths in the lateral direction are included. The zeroth to (nt1)-th delay elements 5a are provided in a horizontal line with the difference in delay time being t1 and the zeroth to (mt2)-th delay elements 5b are provided in a vertical line with the difference in delay time being t2. Thus, the delay times taken for light to travel through the delay element light path switching device 3 are made equal. In this manner, making the delay times required for traveling equal can also support extremely short pulses.

[0038] In addition, it is desirable to even out the difference in delay time for each channel in the AWG described above by using a delay element, as necessary. This delay element can be configured to also serve as a delay element on the output side of the light path switching device.

[0039] In addition, a constituent switch included in the optical switch may also be implemented by using a variable-splitting-ratio switch that not only performs a normal ON/OFF operation but also makes the splitting ratio variable. This enables a change at a ratio that allows an effect to be confirmed. This allows various outputs to be obtained from a specific light path of the spectroscopic means, and allows the wavelength demultiplexer to be also provided with various outputs.

[0040] For example, as illustrated in FIG. 6(a), a wavelength-multiplexed signal to be input has variations in the spacing between a subcarrier and a modulated wave. In this case, due to the transmission characteristics of each channel of the AWG, a modulated wave deviated from the center of the channel is attenuated. However, a subcarrier which is substantially at the center of the channel is less attenuated than the modulated wave described above. It is thus required to suppress the strength of the subcarrier. In this situation, the variable-splitting-ratio switch described above is capable of adjusting the strength of the subcarrier and using the strength of the subcarrier to create a balance with the strength of the modulated wave. Furthermore, as illustrated in Fig. (b), the situation in which the signal strength differs from channel to channel may occur in a signal in which multiplexed signals from two signal sources are multiplexed, for example. In such a wavelength-multiplexed signal described above, the combination of a subcarrier with low strength and a modulated wave with high strength is demodulated by using a photodiode, resulting in a distorted output signal being obtained, as in diode detection of an overmodulated signal in AM modulation, which is not desirable. That is, in this case, it is desirable to adjust the modulated wave with high strength by using the variable-splitting-ratio switch described above to achieve a balance in strength between the subcarrier and the modulated wave.

[0041] It is also desirable that, although not illustrated in the drawings, the control of the light path switching device 3 by the controller 4 include control in which the frequency interval or signal strengths described above are fed back to achieve a balance of signal strengths in the respective channels of the AWG.

Example 2

[0042] More specifically, the light path switching device 3 in FIG. 4 is obtained by, for example, forming a Mach-Zehnder interferometer on a PLC (Planar Lightwave Circuit), in which one light path heater is used for heating to change the interference state to form a switch, and is a commercially available product having 16-ch input16-ch output (NTT Electronics Corporation). In addition, the AWG of the spectroscopic means 2 is that having 32-ch input40-ch output with a channel spacing of 25 GHz. The transmission spectrum of a flat-top type is desirable, and, for example, the 1-dB bandwidth is greater than or equal to 9.3 GHz for a wavelength of 1556.353 to 1548.509 nm (0.2 nm/ch), which accounts for 37% of the channel spacing.

Example 3

[0043] A wavelength-multiplexed signal can be obtained by inputting, from the output side of the wavelength demultiplexer described above, a modulated wave and a subcarrier in respective frequency bands obtained as a result of division so as to match the channel configuration of the AWG and by outputting them from the input side of the light path switching device. That is, the wavelength demultiplexer described above operates as a wavelength multiplexer.

INDUSTRIAL APPLICABILITY

[0044] The present invention is applied to a millimeter-wave frequency band RoF network. This makes it possible to select, as desired, the combination of an optical carrier and a sideband wave and to easily change the frequency band of a millimeter wave to be transmitted.

[0045] In addition, the millimeter-wave accommodation in a RoF signal in the millimeter-wave frequency band is performed by using light having a wavelength with which easy wavelength multiplexing is achievable. For example, light having the same wavelength as that of the carrier among wavelengths selected for the transmission of the RoF signal is used.

REFERENCE SIGNS LIST

[0046] 1 wavelength demultiplexer [0047] 2 spectroscopic means [0048] 3 light path switching device [0049] 4 controller [0050] 5a, 5b delay element