Optical module, optical system, and optical output method

The optical module simplifies phase adjustment by using light intensity-based control, stabilizing light intensity and reducing signal degradation through thermoelectric element modulation, eliminating the need for complex control circuits.

JP7736082B2Active Publication Date: 2025-09-09NEC CORP
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Patent Information

Application Number
JP2023559322
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-11-11
Publication Date
2025-09-09
Estimated Expiration
2041-11-11

AI Technical Summary

Technical Problem

Existing optical modules require complex configurations with control circuits for phase modulation, leading to inefficiencies and signal degradation due to stimulated Brillouin scattering.

Method used

An optical module that adjusts the phase of light based on light intensity using a thermoelectric element to control the refractive index of a waveguide, eliminating the need for a dither signal and simplifying the configuration.

Benefits of technology

Enables phase adjustment with a simple configuration, stabilizing light intensity and reducing signal degradation by dynamically switching between temperature controls to maintain optimal phase and intensity.

✦ Generated by Eureka AI based on patent content.

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Abstract

A light module (1), in order to adjust the phase of light using a simple configuration, comprises: a light outputting means (20) for outputting light; a phase control means (17) for adjusting the phase of the light; and a detection means (16) for detecting the intensity of the light. The phase control means (17) adjusts the phase of the light on the basis of the intensity.
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Description

[Technical Field]

[0001] The present invention relates to, for example, an optical module or the like that is capable of adjusting the phase of light with a simple configuration. [Background technology]

[0002] In optical transceivers, in order to output light of a specific wavelength, amplified spontaneous emission (ASE) output from an optical amplifier such as a semiconductor optical amplifier (SOA) is used. In some cases, the laser light is transmitted through a wavelength filter such as a ring resonator. For example, in a related wavelength tunable light source described in Patent Document 1, a semiconductor optical amplifier is hybrid-mounted on a silicon substrate on which an optical waveguide device is integrated. The optical waveguide device includes a waveguide-type wavelength filter using two ring resonators, a phase adjuster, and a partial reflection mirror. The laser resonator is configured to be formed by a path passing through the semiconductor optical amplifier, the waveguide-type wavelength filter, and the partial reflection mirror.

[0003] In this case, it is generally known that the light is modulated using a low-frequency electrical signal called a dither signal to adjust the phase of the light that has passed through the wavelength filter. Because the oscillation frequency is constantly changed by the low-frequency signal, signal degradation due to stimulated Brillouin scattering in optical fiber communications can also be suppressed. Other related techniques are disclosed in Patent Documents 2, 3 and 4. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 2019-040099 [Patent Document 2] Japanese Patent Application Laid-Open No. 2006-245346 [Patent Document 3] Japanese Patent Application Laid-Open No. 2016-102926 [Patent Document 4] Special Publication No. 2019-503080 Summary of the Invention [Problem to be solved by the invention]

[0005] However, in the general configuration using the dither signal as described above, a control circuit for modulation is required, which causes problems such as a complicated configuration.

[0006] An object of the present invention is to provide an optical module or the like that is capable of adjusting the phase of light with a simple configuration. [Means for solving the problem]

[0007] The present invention provides an optical module, a light output means for outputting light; a phase control means for adjusting the phase of the light; a detection means for detecting the intensity of the light, The phase control means adjusts the phase of the light based on the intensity.

[0008] The present invention also provides an optical system, comprising: a light output means for outputting light; a phase control means for adjusting the phase of the light; a detection means for detecting the intensity of the light, The phase control means adjusts the phase of the light based on the intensity.

[0009] The present invention also provides a light output method, comprising: It emits light, detecting the intensity of the light; The phase of the light is adjusted based on the intensity. [Effects of the Invention]

[0010] According to the present invention, it is possible to adjust the phase of light with a simple configuration. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a block diagram showing an example of the configuration of an optical module according to a first embodiment of the present invention. [Figure 2] FIG. 2 is a diagram for explaining details of the optical module according to the first embodiment of the present invention. [Figure 3] 5 is a flowchart showing an example of the operation of the optical module according to the first embodiment of the present invention. [Figure 4] FIG. 10 is a block diagram showing a modified example of the configuration of the optical module according to the first embodiment of the present invention. [Figure 5] 10 is a flowchart showing a modified example of the operation of the optical module according to the first embodiment of the present invention. [Figure 6] FIG. 10 is a block diagram showing an example of the configuration of an optical module according to a second embodiment of the present invention. [Figure 7] FIG. 6 is a diagram for explaining details of an optical module according to a second embodiment of the present invention. [Figure 8] 10 is a flowchart showing an example of the operation of the optical module according to the second embodiment of the present invention. [Figure 9] 10 is a flowchart showing a modified example of the operation of the optical module according to the second embodiment of the present invention. [Figure 10] 10A and 10B are diagrams illustrating a modified example of the operation of the optical module according to the second embodiment of the present invention. [Figure 11] FIG. 10 is a block diagram showing an example of the configuration of an optical module according to a third embodiment of the present invention. [Figure 12] 10 is a flowchart showing an example of the operation of the optical module according to the third embodiment of the present invention. [Figure 13] FIG. 1 is a diagram illustrating an example of an information processing device that realizes an optical module or the like according to a first, second, and third embodiments of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0012] First Embodiment An optical module 1 according to a first embodiment will be described with reference to Fig. 1, Fig. 2, and Fig. 3. Fig. 1 is a block diagram showing an example of the configuration of the optical module 1. Fig. 2 is a diagram for explaining the details of the optical module 1. Fig. 3 is a flowchart for explaining an example of the operation of the optical module 1.

[0013] As shown in Fig. 1, the optical module 1 includes a reflecting means 11, an optical amplifying means 12, a wavelength filtering means 13, a partial reflecting means 14, a branching means 15, a light receiving means 16, a phase controlling means 17, and a thermoelectric element 18. The reflecting means 11, the optical amplifying means 12, the wavelength filtering means 13, and the partial reflecting means 14 are included in an optical outputting means 20. The optical module 1 is a light source provided in, for example, an optical transceiver. For example, the optical module 1 can be used as a light source for transmission by modulating the light output from the branching means 15 of the optical module 1 with a modulator (not shown in Fig. 1). In Fig. 1, solid lines connecting each component indicate optical paths, and dotted lines connecting each component indicate electrical connections.

[0014] The reflecting means 11 is optically connected to the optical amplifying means 12. The reflecting means 11 is a mirror that reflects light incident from the optical amplifying means 12 toward the optical amplifying means 12. The reflecting means 11 is formed of, for example, a highly reflective film.

[0015] The optical amplifying means 12 is optically connected to the reflecting means 11 and the wavelength filtering means 13. The optical amplifying means 12 outputs light to the reflecting means 11 and the wavelength filtering means 13. The optical amplifying means 12 is, for example, an optical amplifier that outputs broadband ASE light. The optical amplifying means 12 is, for example, an SOA.

[0016] The wavelength filter means 13 is optically connected to the optical amplification means 12 and the partial reflection means 14. The wavelength filter means 13 transmits only light of a portion of the wavelengths of light incident by the optical amplification means 12 or the partial reflection means 14. For example, the wavelength filter means 13 transmits light of a wavelength of 1550 nm. The wavelength filter means 13 is, for example, a wavelength filter such as a ring resonator. The wavelength filter means 13 may be composed of, for example, multiple ring resonators.

[0017] The partial reflection means 14 is optically connected to the wavelength filter means 13 and the branching means 15. The partial reflection means 14 reflects a portion of the light that has passed through the wavelength filter means 13 and is incident thereon, and transmits the remaining portion toward the branching means 15. The light reflected by the partial reflection means 14 propagates toward the reflection means 11. As a result, only the light of the wavelength selected by the wavelength filter means 13 is amplified between the reflection means 11 and the partial reflection means 14, resulting in laser oscillation.

[0018] The branching means 15 is optically connected to the partial reflection means 14, the light receiving means 16, and a modulator (not shown) outside the optical module 1. The branching means 15 branches the light transmitted by the partial reflection means 14. One of the lights branched by the branching means 15 is output to the outside of the optical module 1. The other of the lights branched by the branching means 15 is output to the light receiving means 16. The branching means 15 is, for example, a waveguide with one input and two outputs.

[0019] The light receiving means 16 is optically connected to the branching means 15 and electrically connected to the phase control means 17. The light receiving means 16 receives the other light branched by the branching means 15. The light receiving means 16 detects the intensity of the received light and outputs it to the phase control means 17. The light receiving means 16 is, for example, a photodiode. The light receiving means 16 corresponds to the detection means.

[0020] The phase control means 17 is electrically connected to the light receiving means 16 and the thermoelectric element 18. The phase control means 17 adjusts the phase of the light output from the wavelength filter means 13. For example, the phase control means 17 changes the power applied to the thermoelectric element 18 provided near the waveguide through which the light output from the wavelength filter means 13 propagates, thereby changing the temperature in the waveguide. The thermoelectric element 18 is, for example, a heater electrode. The thermoelectric element 18 is also thermally connected to the waveguide through which the light output from the wavelength filter means 13 propagates. In this way, the phase control means 17 can change the refractive index of a part of the waveguide through which the light output from the wavelength filter means 13 propagates by applying heat, thereby changing the phase of the light propagating in the waveguide. However, the phase control means 17 may also control the refractive index of the waveguide by injecting a current into a part of the waveguide.

[0021] Next, the phase control means 17 will be described in detail with reference to Fig. 2. Fig. 2 is a diagram showing the relationship between the phase power controlled by the phase control means 17 and the current corresponding to the intensity of light detected by the light receiving means 16. The phase power mentioned above is the power used by the phase control means 17 to control the phase of light propagating through the waveguide. More specifically, the phase power refers to the power supplied to the thermoelectric element 18 provided near the waveguide in order to adjust the temperature in the waveguide through which the light output from the wavelength filter means 13 propagates.

[0022] The phase control means 17 can switch between a first control that increases the temperature in the waveguide through which the light output from the wavelength filter means 13 propagates and a second control that decreases the temperature in the waveguide. In the following example, the phase control means 17 executes the first control by increasing the phase power supplied to the thermoelectric element 18 and executes the second control by decreasing the phase power supplied to the thermoelectric element 18. In this case, the arrow extending from left to right in FIG. 2 corresponds to the first control. Also, the arrow extending from right to left in FIG. 2 corresponds to the second control. The phase control means 17 executes each of the first control and the second control while maintaining the light intensity by operating according to the flowchart described below. Note that the phase control means 17 may execute the first control by decreasing the phase power supplied to the thermoelectric element 18 and execute the second control by increasing the phase power supplied to the thermoelectric element 18.

[0023] Next, the operation of the optical module 1 will be described with reference to FIGS. 2 and 3. FIG. 3 is a flowchart showing the operation of the optical module 1. At the start of the operation shown in FIG. 3, the optical amplifier 12 outputs light, causing light from the partial reflector 14 to be transmitted. At the start of the operation of the optical module 1, the user of the optical module 1 is assumed to have previously determined the phase power required to achieve a predetermined target value or higher for the optical intensity. For example, in the example of FIG. 2, the user is assumed to have determined that the optical intensity will be maximized when the phase power is 8.65 mW or higher and 8.85 mW or lower. As a result, the phase control unit 17 of the optical module 1 is assumed to supply a phase power of 8.65 mW or higher and 8.85 mW or lower to the thermoelectric element 18 at the start of the operation.

[0024] The phase control means 17 reduces the power (phase power) for changing the phase (S101). By the process of S101, the phase control means 17 performs the second control described above, which reduces the temperature in the waveguide through which the light output from the wavelength filter means 13 propagates. For example, in the example of FIG. 2, the phase control means 17 sequentially changes the phase power in increments of 0.025 mW. Note that the increase in the phase power is not limited to 0.025 mW. For example, in the example of FIG. 2, the phase control means 17 reduces the phase power from 8.65 mW to 8.625 mW.

[0025] The phase control means 17 also determines whether the optical intensity has decreased (S102). If the phase control means 17 determines that the optical intensity has decreased (Yes in S102), it performs the process of S103, which will be described later. On the other hand, if the phase control means 17 does not determine that the optical intensity has decreased (No in S102), it performs the process of S102 again. That is, the phase control means 17 repeatedly determines whether the optical intensity has decreased while continuing to decrease the phase power until it determines that the optical intensity has decreased. For example, in the example of FIG. 2, the phase control means 17 determines that the optical intensity has decreased when the phase power is decreased from 8.65 mW to 8.625 mW.

[0026] The phase control means 17 increases the power (phase power) for changing the phase (S103). By the process of S103, the phase control means 17 performs the first control described above, which increases the temperature in the waveguide through which the light output from the wavelength filter means 13 propagates. For example, in the example of FIG. 2, the phase control means 17 detects that the optical intensity has decreased when the phase power is decreased from 8.65 mW to 8.625 mW, and increases the phase power from 8.625 mW to 8.65 mW. In this way, the phase control means 17 can change the phase power while maintaining the optical intensity at its maximum.

[0027] The phase control means 17 also determines whether the optical intensity has decreased (S104). If the phase control means 17 determines that the optical intensity has decreased (Yes in S104), it performs the process of S101. On the other hand, if the phase control means 17 does not determine that the optical intensity has decreased (No in S104), it performs the process of S104 again. That is, the phase control means 17 repeatedly determines whether the optical intensity has decreased while continuing to increase the phase power until it determines that the optical intensity has decreased. For example, in the example of FIG. 2, the phase control means 17 decreases the phase power from 8.875 mW to 8.85 mW in response to a decrease in the optical intensity after increasing the phase power from 8.85 mW to 8.875 mW. In this way, in the optical module 1, the phase control means 17 changes the phase power until the optical intensity decreases. Therefore, by detecting the amplitude range, it is possible to always grasp the amount of phase power at which the optical output is maximized.

[0028] 3 when it receives a stop instruction from another external device. The optical module 1 operates by repeating the processes of S101, S102, S103, and S104 until it ends its operation. Specifically, the phase control means 17 executes a first control (S103) to increase the temperature in the waveguide through which the light propagates and a second control (S101) to decrease the temperature in the waveguide. Furthermore, the phase control means 17 executes one of the first control and the second control, and when the intensity of the light decreases, it executes the other of the first control and the second control.

[0029] As a result, the optical module 1 can maintain the intensity of light transmitted through the partial reflection means 14. For example, in the optical module 1, the temperature of a thermoelectric element provided for the wavelength filter means 13 may be changed to control the wavelength of light transmitted through the wavelength filter means 13. In this case, heat from the thermoelectric element provided for the wavelength filter means 13 may change the relationship between the phase power and the light intensity, as shown in FIG. 2. In this case, if the phase power is kept constant, the light intensity becomes unstable. However, in the optical module 1, when the light intensity decreases, the optical module 1 switches from one of the first control and the second control to the other. Therefore, the optical module 1 can stabilize the light intensity even if the relationship between the phase power and the light intensity changes.

[0030] Furthermore, in the optical module 1, the phase control means 17 adjusts the phase of the light based on the intensity of the light detected by the light receiving means 16. Therefore, in the optical module 1, it is not necessary to adjust the phase of the light using a dither signal, and the phase of the light can be adjusted with a simple configuration.

[0031] Next, the optical module 1A will be described with reference to Fig. 4. The optical module 1A is a first modification of the optical module 1. Like the optical module 1, the optical module 1A has a reflecting means 11, optical amplification means 12, wavelength filter means 13, partial reflection means 14, branching means 15, light receiving means 16, phase control means 17 and thermoelectric element 18.

[0032] The optical module 1A differs from the optical module 1 in some aspects of its operation. 10 is a flowchart showing the operation of the optical module 1A. Specifically, the optical module 1A performs a process of S101A (to be described later) instead of the process of S101, and performs a process of S102 (to be described later) instead of the process of S103. Perform 3A processing. Specifically, in the optical module 1A, the phase control means 17 increases the power (phase power) for changing the phase (S101A). For example, the phase control means 17 sequentially increases the phase power by 0.025 mW. Note that the increase in the phase power is not limited to 0.025 mW. By the process of S101A, the phase control means 17 performs the first control described above, which increases the temperature in the waveguide through which the light output from the wavelength filter means 13 propagates.

[0033] Furthermore, in the optical module 1A, the phase control means 17 reduces the power for changing the phase (phase power) (S103A). By the process of S103A, the phase control means 17 performs the second control described above, which reduces the temperature in the waveguide through which the light output from the wavelength filter means 13 propagates. This allows the phase control means 17 to change the phase power while maintaining the optical intensity at a maximum.

[0034] Next, optical module 1B will be described with reference to Fig. 5. Optical module 1B is a second modified example of optical module 1. Like optical module 1, optical module 1B includes reflecting means 11, optical amplifying means 12, wavelength filtering means 13, partial reflecting means 14, branching means 15, light receiving means 16, phase controlling means 17, and thermoelectric element 18.

[0035] The optical module 1B differs from the optical module 1 in operation. FIG. 5 is a flowchart showing the operation of the optical module 1B. Specifically, the optical module 1B performs the processes S101B to S108B described below. It is assumed that the phase control means 17 grasps the relationship between phase power and optical intensity at the start of operation of the optical module 1B. Specifically, the phase control means 17 supplies a predetermined value of phase power and then changes the value of the phase power in a positive direction and a negative direction from the predetermined value. A change in the phase power in the positive direction means that the phase power increases. A change in the phase power in the negative direction means that the phase power decreases. The phase control means 17 acquires the optical intensity when the phase power is changed in both directions from the light receiving means 16. Based on the change in optical intensity, the phase control means 17 then identifies the direction in which the optical intensity should be increased, either the positive direction or the negative direction. In the following description of the operation, the positive direction is defined as the first direction in which the optical intensity increases, and the negative direction is defined as the second direction. The above explanation is merely an example, and the negative direction may be the first direction in which the light intensity increases, and in this case the positive direction is the second direction.

[0036] The phase control means 17 changes the phase power in a first direction for a certain period of time (S101B). The phase control means 17 determines whether the optical intensity has increased (S102B). Specifically, the phase control means 17 determines whether the optical intensity detected after the processing of S101B is higher than the optical intensity detected before the processing of S102B. If the phase control means 17 determines that the optical intensity has increased (Yes in S102B), it performs the processing of S103B, which will be described later. If the phase control means 17 does not determine that the optical intensity has increased (No in S102B), it performs the processing of S105B, which will be described later.

[0037] The phase control means 17 changes the phase power in a first direction (S103B). For example, the phase control means 17 increases the phase power by 0.025 mW. Note that in the above-mentioned S101B, the phase control means 17 increases the phase power by a larger amount than the increase in S103B. The process of S103B corresponds to the above-mentioned first control.

[0038] The phase control means 17 determines whether the light intensity has decreased (S104B). Specifically, the phase control means 17 determines whether the light intensity detected after the process of S103B is lower than the light intensity detected before the process of S103B. If the phase control means 17 determines that the light intensity has decreased (Yes in S104B), it performs the process of S105B, which will be described later. On the other hand, if the phase control means 17 does not determine that the light intensity has decreased (Yes in S104B), it performs the process of S103B again.

[0039] The phase control means 17 changes the phase power in the second direction for a certain period of time (S105B). The phase control means 17 determines whether the optical intensity has increased (S106B). Specifically, the phase control means 17 determines whether the optical intensity detected after the processing of S105B is higher than the optical intensity detected before the processing of S105B. If the phase control means 17 determines that the optical intensity has increased (Yes in S106B), it performs the processing of S107B, which will be described later. If the phase control means 17 does not determine that the optical intensity has increased (No in S106B), it performs the processing of S101B again.

[0040] The phase control means 17 changes the phase power in the second direction (S107B). For example, the phase control means 17 reduces the phase power by 0.025 mW. Note that in the above-mentioned S105B, the phase control means 17 reduces the phase power by a larger amount than the reduction amount in S107B. The control in S107B corresponds to the second control.

[0041] The phase control means 17 determines whether the light intensity has decreased (S108B). Specifically, the phase control means 17 determines whether the light intensity detected after the processing of S107B is lower than the light intensity detected before the processing of S107B. If the phase control means 17 determines that the light intensity has decreased (Yes in S108B), it performs the processing of S101 again. On the other hand, if the phase control means 17 does not determine that the light intensity has decreased (No in S108B), it performs the processing of S107B again.

[0042] The above describes the modified examples of the optical module 1. In each of the modified examples, the phase control means 17 adjusts the phase of the light based on the intensity of the light detected by the light receiving means 16. Therefore, in the modified examples of the optical module 1, there is no need to adjust the phase of the light using a dither signal, and the phase of the light can be adjusted with a simple configuration.

[0043] Furthermore, in the optical module 1 and the modified examples of the optical module 1, the components do not necessarily have to be provided as a single module. The components may be provided in different locations and implemented as an optical system. For example, in the optical module 1, the light receiving means 16 and the phase control means 17 may be provided separately from the other components.

[0044] <Second embodiment> The optical module 2 according to the second embodiment will be described with reference to Fig. 6 and Fig. 7. Fig. 6 is a block diagram showing an example of the configuration of the optical module 2. Fig. 7 is a flowchart for explaining an example of the operation of the optical module 2.

[0045] As shown in Fig. 6, the optical module 2, like the optical module 1, includes a reflecting means 11, an optical amplifying means 12, a wavelength filtering means 13, a partial reflecting means 14, a branching means 15, a light receiving means 16, a phase controlling means 17, and a thermoelectric element 18. The reflecting means 11, the optical amplifying means 12, the wavelength filtering means 13, and the partial reflecting means 14 are included in an optical outputting means 20. The optical module 2 is a light source provided in, for example, an optical transceiver. For example, the optical module 2 can be used as a light source for transmission by modulating the light output from the optical module 2 with a modulator. In Fig. 6, solid lines connecting the components indicate optical paths, and dotted lines connecting the components indicate electrical connections.

[0046] 6, components equivalent to those shown in Fig. 1 are assigned the same reference numerals as those shown in Fig. 1. Optical module 2 differs from optical module 1 in that it further includes monitoring means 21 and storage means 22.

[0047] The monitoring means 21 is electrically connected to the storage means 22 and the phase control means 17. The monitoring means 21 monitors the amount of power (phase power) supplied from the phase control means 17 to the thermoelectric element 18. Specifically, the monitoring means 21 monitors the amount of power of the phase power supplied from the phase control means 17 to the thermoelectric element 18 while the phase control means 17 is executing at least one of the first control such as the above-mentioned S107 and the second control such as the above-mentioned S105. At this time, the monitoring means 21 monitors information on the current amount of phase power for a specific wavelength channel and notifies the storage means 22 of changes in the amount of phase power that occur due to deterioration over time, etc. A wavelength channel refers to multiple conditions for oscillation at a specific wavelength, standardized by, for example, the ITU (International Telecommunication Union) or the like.

[0048] The storage means 22 is electrically connected to the monitoring means 21 and the phase control means 17. The storage means 22 also stores a first amount of power associated with a first wavelength and a second amount of power associated with a second wavelength. The first wavelength and the second wavelength are wavelengths of light that can be output from the optical output means 20. The first wavelength and the second wavelength are different from each other. Specifically, the first wavelength and the second wavelength refer to wavelengths of light that can be transmitted by the wavelength filter means 13. Because the wavelength filter means 13 is an optical filter with a tunable transmitted wavelength, for example, the wavelength filter means 13 can change its own temperature to cause the optical output means 20 to switch the wavelength of light to be output from the first wavelength to the second wavelength. Optical communications use wavelengths with frequency intervals standardized by the ITU, and for example, the second wavelength is a wavelength that is shifted from the first wavelength by an integer multiple of 100 GHz.

[0049] Furthermore, the first amount of power is a phase power associated with the first wavelength. More specifically, the first amount of power is a phase power at which the optical intensity of light received by light receiving means 16 is maximized when light of the first wavelength is output from light output means 20. Furthermore, the second amount of power is a phase power associated with the second wavelength. More specifically, the second amount of power is a phase power at which the optical intensity of light received by light receiving means 16 is maximized when light of the second wavelength is output from light output means 20. The first amount of power and the second amount of power are stored in storage means 22 as conditions (initial conditions) confirmed at the time of module shipment.

[0050] The monitoring means 21 acquires the amount of phase power supplied from the phase control means 17 to the thermoelectric element 18 when the phase control means 17 performs the first control and the second control. For example, the monitoring means 21 acquires the average value of the phase power supplied to the thermoelectric element 18 under the condition where the optical output (the above-mentioned optical intensity) is maximized while the phase control means 17 performs the first control and the second control. The monitoring means 21 associates the acquired average value of the phase power with the first wavelength and stores it in the storage means 22 as the first power.

[0051] The information stored in the storage means 22 will be described with reference to FIG. 7. FIG. 7 is an example of information stored in the storage means 22 by the monitoring means 21. As shown in FIG. 7, the monitoring means 21 may store in the storage means 22 the maximum and minimum values ​​of phase power in addition to the average value, which is the first power. The monitoring means 21 also stores the average value as the supply amount in the storage means 22. When starting to supply phase power to the thermoelectric element 18, the phase control means 17 refers to the value of the supply amount stored in the storage means 22, thereby being able to supply to the thermoelectric element 18 the phase power that causes the light output means 20 to output light having an optimal light intensity. The monitoring means 21 also acquires the average, maximum, minimum, and supply amount of the phase power when light of the second wavelength is output, similar to the phase power when light of the first wavelength is output.

[0052] Next, the operation of the storage means 22 for acquiring the information shown in Fig. 7 will be described with reference to Fig. 8. The optical module 2 repeats the processes of S101 to S104 in the optical module 1 (S201). In the process of S201, the optical module 2 may repeat the processes of S101 to S104 in the optical module 1A. In the process of S201, the optical module 2 may repeat the processes of S101B to S108B in the optical module 1B.

[0053] The monitoring means 21 monitors the phase power supplied to the thermoelectric element 18 (S202). As a result, the monitoring means 21 acquires the amount of power of the phase power supplied to the thermoelectric element 18 while the phase control means 17 is executing the process of S201.

[0054] The monitoring means 21 calculates each value based on the acquired amount of power (S203). Specifically, the monitoring means 21 calculates the maximum, minimum and average values ​​of the amount of power of the acquired phase power.

[0055] The monitoring means 21 outputs the calculation result to the storage means 22 (S204). The storage means 22 stores the calculation result (S205). As a result, the storage means 22 can acquire the average value, maximum value, and minimum value of the phase power for the first wavelength or the second wavelength in FIG. 7.

[0056] In this way, in the optical module 2, the monitoring means 21 monitors the amount of power (phase power) supplied to the thermoelectric element 18 while the phase control means 17 is executing at least one of the first control and the second control. Therefore, even if the optical module 2 stops operating and then restarts, for example, the phase control means 17 can adjust the phase of the light with an appropriate amount of power immediately after restarting by using the amount of power (for example, an average value) monitored by the monitoring means 21, without using an inappropriate phase power.

[0057] Also in the optical module 2, the phase control means 17 adjusts the phase of the light based on the intensity of the light detected by the light receiving means 16. Therefore, also in the optical module 2, there is no need to adjust the phase of the light using a dither signal, and the phase of the light can be adjusted with a simple configuration.

[0058] Furthermore, in the optical module 2, when the optical intensity decreases, the first control and the second control are switched to the other. Therefore, according to the optical module 2, even if the relationship between the phase power and the optical intensity described above changes, the optical intensity can be stabilized.

[0059] Next, we will explain the optical module 2A. The optical module 2A is a modified example of the optical module 2. Like the optical module 2, the optical module 2A includes a reflecting means 11, an optical amplifying means 12, a wavelength filtering means 13, a partial reflecting means 14, a branching means 15, a light receiving means 16, a phase controlling means 17, a thermoelectric element 18, a monitoring means 21, and a storage means 22, all of which are shown in FIG.

[0060] The optical module 2A differs in operation from the optical module 2. Fig. 9 is a flowchart showing the operation of the optical module 2A. The operation of the optical module 2A will be described with reference to Fig. 9.

[0061] It is assumed that the optical module 2A is repeating the processes of S201 to S205 (S301). In the process of S301, the monitoring means 21 monitors the phase power supplied to the thermoelectric element 18 (S202). As a result, the monitoring means 21 acquires the amount of phase power supplied to the thermoelectric element 18 while the processes of S101 to S104 are repeated by the phase control means 17. It is assumed that the optical output means 20 in the optical module 2A outputs light of the first wavelength by transmitting the light of the first wavelength through the wavelength filter means 13.

[0062] In S203 of S301, the monitoring means 21 calculates each value based on the acquired power amount. Specifically, the monitoring means 21 calculates the maximum, minimum, and average values ​​of the power amounts of the phase power acquired during the period in which the processes of S101 to S104 are performed. Furthermore, in S204 of S301, the monitoring means 21 outputs the calculation results to the storage means 22.

[0063] In S205 in S301, the storage means 22 stores the calculation result. Specifically, the storage means 22 outputs the average value, maximum value, and minimum value of the phase power. That is, the storage means 22 acquires the amount of power (phase power) supplied to the thermoelectric element 18 while the phase control means 17 is executing at least one of the first control and the second control as a new first amount of power.

[0064] Furthermore, the storage means 22 updates each stored value based on the calculation result (new first amount of power). The updating by the storage means 22 will be described with reference to FIGS. 7 and 10. FIG. 7 shows values ​​before the update, and FIG. 10 shows values ​​after the update. Assume that at the start of operation of the optical module 2A, the supply amount, average value, maximum value, and minimum value of phase power associated with the first wavelength and the second wavelength are stored as shown in FIG. 7. In this case, the storage means 22 updates the values ​​based on the calculation result (new first amount of power) output from the monitoring means 21. Specifically, assume that values ​​such as those shown in FIG. 7 are pre-stored in the storage means 22, and that values ​​of an average value of 3.1 mw, a maximum value of 3.2 mw, and a minimum value of 3.0 mw associated with the first wavelength are stored from the monitoring means 21. In this case, the storage means 22 updates the first associated average value, maximum value, and minimum value as shown in FIG. 10.

[0065] Also, the storage means 22 updates the supply amount from 3 mw to 3.1 mw, which is the average value. At this time, the storage means 31 stores the supply amount before updating, 3 mw, and the new supply amount (new first The phase control means 17 detects a wavelength switching instruction (S301). Specifically, the phase control means 17 receives a wavelength switching instruction to switch the wavelength of the light output from the optical output means 20 from the first wavelength to the second wavelength. The wavelength switching instruction is input to the phase control means 17 from an external transmission device or a user via an interface (not shown).

[0066] After detecting the wavelength switching instruction, the optical module 2A stops the process (S301) of repeating S201 to S205. At this time, the wavelength filter means 13 switches the wavelength of the transmitted light from the first wavelength to the second wavelength.

[0067] Furthermore, the monitoring means 21 detects a wavelength switching instruction (S302) in the same manner as the phase control means 17. The wavelength switching instruction is input to the monitoring means 21 from an external transmission device or a user via an interface (not shown).

[0068] The phase control means 17 acquires the value stored in the storage means 22 (S303). Specifically, the phase control means 17 acquires the supply amount (second amount of power) associated with the updated second wavelength. The phase control means 17 supplies phase power in accordance with the acquired supply amount (second amount of power) (S304). Thereafter, the optical module 2A repeats the processes of S201 to S205 (S305).

[0069] Generally, when the characteristics of light output means 20 change, the appropriate phase power to be supplied to thermoelectric element 18 also changes in accordance with the change in the characteristics. In optical module 2A, as described above, the amount of supply at the second wavelength is updated using the amount of change in the amount of supply at the first wavelength. Therefore, in optical module 2A, by updating the amount of supply corresponding to the second wavelength in light of the change in the characteristics of light output means 20 that occurred while outputting light of the first wavelength, it is possible to supply appropriate phase power when outputting light of the second wavelength. <Third embodiment> An optical module 3 according to the third embodiment will be described with reference to Fig. 11 and Fig. 12. Fig. 11 is a block diagram showing an example of the configuration of the optical module 3. Fig. 12 is a flowchart showing an example of the operation of the optical module 3.

[0070] 11, the optical module 3 includes a light output means 20, a phase control means 30, and a detection means 40. The light output means 20 of the optical module 3 may have the same configuration, connection relationship, and function as the light output means 20 described in each of the first and second embodiments. The phase control means 30 of the optical module 3 may have the same configuration, connection relationship, and function as the phase control means 17 described in each of the first and second embodiments. The detection means 40 of the optical module 3 may have the same configuration, connection relationship, and function as the light receiving means 16 described in each of the first and second embodiments.

[0071] Light output means 20 outputs light. Phase control means 30 adjusts the phase of the light output from light output means 20. Detection means 40 detects the intensity of the light whose phase has been adjusted.

[0072] Next, the operation of the optical module 3 will be described with reference to Figure 12. The optical output means 20 outputs light (S301). The detection means 40 detects the intensity of the output light (S302). The phase control means 30 adjusts the phase of the light from the optical output means 20 (S303). Note that the phase control means 30 adjusts the phase of the light, for example, by supplying a current to a thermoelectric element provided near the waveguide through which the light output from the optical output means 20 propagates. However, without being limited to this, the phase control means 30 may also control the refractive index of the waveguide by injecting a current into a part of the waveguide.

[0073] As described above, also in the optical module 3, the phase control means 30 adjusts the phase of the light based on the intensity of the light detected by the detection means 40. Therefore, also in the optical module 3, there is no need to adjust the phase of the light using a dither signal, and the phase of the light can be adjusted with a simple configuration.

[0074] Furthermore, some or all of the components of each optical module are realized by any combination of an information processing device 2000 and a program, for example, as shown in Fig. 13. Fig. 13 is a diagram showing an example of an information processing device that realizes each optical module. The information processing device 2000 includes, as an example, the following configuration.

[0075] ·CPU(Central Processing Unit)2001 ROM (Read Only Memory) 2002 ·RAM(Random Access Memory)2003 Program 2004 loaded into RAM 2003 A storage device 2005 for storing a program 2004 A drive device 2007 that reads and writes the recording medium 2006 ·Communication interface 2008 connecting to communication network 2009 Input / output interface for data input / output 2010 Bus 2011 connecting each component Each component of each device in each embodiment is realized by the CPU 2001 acquiring and executing a program 2004 that realizes the function of that component. The program 2004 that realizes the function of each component of each device is stored in advance in, for example, the storage device 2005 or the RAM 2003, and is read out by the CPU 2001 as needed. The program 2004 may be supplied to the CPU 2001 via the communication network 2009, or may be stored in advance in the recording medium 2006, and the drive device 2007 may read out the program and supply it to the CPU 2001.

[0076] There are various variations in the method of realizing each device. For example, each device may be realized by any combination of a separate information processing device 2000 and a program for each component. Furthermore, multiple components included in each device may be realized by any combination of a single information processing device 2000 and a program.

[0077] In addition, some or all of the components of each device are realized by general-purpose or dedicated circuits including a processor, or a combination of these. It may be configured by a single chip or by multiple chips connected via a bus. Some or all of the components of each device may be realized by a combination of the above-mentioned circuits, etc. and programs.

[0078] When some or all of the components of each device are realized by multiple information processing devices, circuits, etc., the multiple information processing devices, circuits, etc. may be centrally or decentralized. For example, the information processing devices, circuits, etc. may be realized as a client-server system, a cloud computing system, or the like, in a form in which each device is connected via a communication network.

[0079] A part or all of the above-described embodiments can be described as, but not limited to, the following supplementary notes. (Appendix 1) a light output means for outputting light; a phase control means for adjusting the phase of the light; a detection means for detecting the intensity of the light, The phase control means adjusts the phase of the light based on the intensity. Optical module. (Appendix 2) a thermoelectric element thermally connected to the waveguide through which the light propagates; the phase control means adjusts the phase of the light by adjusting the power supplied to the thermoelectric element. 2. The optical module according to claim 1. (Appendix 3) The phase control means A first control for increasing the temperature of the thermoelectric element and a second control for decreasing the temperature of the thermoelectric element can be executed, When the intensity decreases while one of the first control and the second control is being executed, the other of the first control and the second control is executed. 3. The optical module according to claim 2. (Appendix 4) The phase control means The first control is performed by increasing the power supplied to the thermoelectric element; The second control is performed by reducing the power supplied to the thermoelectric element. 4. The optical module according to claim 3. (Appendix 5) further comprising a monitoring means for monitoring the amount of power supplied to the thermoelectric element while the phase control means is executing at least one of the first control and the second control. 5. The optical module according to claim 3 or 4. (Appendix 6) 6. The optical module according to claim 5, wherein the monitoring means acquires the amount of power in association with the wavelength of the light output from the optical output means. (Appendix 7) further comprising a storage means for storing a first amount of power associated with the first wavelength and a second amount of power associated with the second wavelength; the monitoring means associates the amount of power supplied to the thermoelectric element while the phase control means is executing at least one of the first control and the second control with the first wavelength of the light output from the light output means, and acquires this as a new first amount of power; the storage means updates the second amount of power based on the first amount of power and the new first amount of power. 7. The optical module according to claim 6. (Appendix 8) The light output means is an optical amplifier for outputting amplified spontaneous emission light; a reflecting means for reflecting the amplified spontaneous emission light output from the optical amplifying means; a wavelength filter means for transmitting only light of a certain wavelength among the amplified spontaneous emission light; a partial reflecting means for transmitting a part of the light from the wavelength filter means and outputting the part of the light as the light output from the light output means toward the detecting means, and for reflecting the remaining light from the wavelength filter means; Equipped with 8. The optical module according to claim 1. (Appendix 9) a light output means for outputting light; a phase control means for adjusting the phase of the light; a detection means for detecting the intensity of the light, The phase control means adjusts the phase of the light based on the intensity. Optical system. (Appendix 10) It emits light, detecting the intensity of the light; adjusting the phase of the light based on the intensity Optical output method.

[0080] Although the present invention has been described above with reference to the embodiments, the present invention is not limited to the above embodiments. Various modifications that can be understood by those skilled in the art can be made to the configuration and details of the present invention within the scope of the present invention. [Explanation of symbols]

[0081] 1, 1A, 1B, 1C, 2, 2A Optical Module 11 Reflection means 12 Optical Amplification Means 13 Wavelength filter means 14 Partial reflection means 15 Branching means 16 Light receiving means 17 Phase control means 18 Thermoelectric element 19 Wavelength filter means 20 Optical output means 21 Monitoring means 22 Memory means 2001 CPU 2002 ROM 2003 RAM 2004 Program 2005 storage device 2007 Drive Unit 2008 Communication Interface 2009 Communication Network 2010 Input / Output Interface 2011 Bus connecting each component

Claims

1. a light output means for outputting light; a phase control means for adjusting the phase of the light; a detection means for detecting the intensity of the light, the phase control means adjusts the phase of the light based on the intensity; Further comprising a thermoelectric element thermally connected to the waveguide through which the light propagates, the phase control means adjusts the phase of the light by adjusting the power supplied to the thermoelectric element; The phase control means A first control for increasing the temperature of the thermoelectric element and a second control for decreasing the temperature of the thermoelectric element can be executed, If the intensity decreases while one of the first control and the second control is being executed, the other of the first control and the second control is executed; a monitoring unit that monitors the amount of power supplied to the thermoelectric element while the phase control unit is performing at least one of the first control and the second control, the phase control means uses the amount of power monitored by the monitoring means before the operation of the optical module is stopped as an initial value of power for adjusting the phase of the light after the optical module is restarted. Optical module.

2. The phase control means The first control is performed by increasing the power supplied to the thermoelectric element; The second control is performed by reducing the power supplied to the thermoelectric element.

2. The optical module according to claim 1.

3. the monitoring means acquires the amount of power in association with the wavelength of the light output from the light output means.

3. The optical module according to claim 1.

4. a storage unit that stores a first amount of power associated with the first wavelength and a second amount of power associated with the second wavelength; the monitoring means associates the amount of power supplied to the thermoelectric element while the phase control means is executing at least one of the first control and the second control with the first wavelength of the light output from the light output means, and acquires this as a new first amount of power; the storage means updates the second amount of power based on the first amount of power and the new first amount of power.

4. The optical module according to claim 3.

5. The light output means is an optical amplifier for outputting amplified spontaneous emission light; a reflecting means for reflecting the amplified spontaneous emission light output from the optical amplifying means; a wavelength filter means for transmitting only light of a certain wavelength among the amplified spontaneous emission light; a partial reflecting means for transmitting a part of the light from the wavelength filter means and outputting the part of the light as the light output from the light output means toward the detecting means, and for reflecting the remaining light from the wavelength filter means; Equipped with The optical module according to claim 1 .

6. a light output means for outputting light; a phase control means for adjusting the phase of the light; a detection means for detecting the intensity of the light, the phase control means adjusts the phase of the light based on the intensity; Further comprising a thermoelectric element thermally connected to the waveguide through which the light propagates, the phase control means adjusts the phase of the light by adjusting the power supplied to the thermoelectric element; The phase control means A first control for increasing the temperature of the thermoelectric element and a second control for decreasing the temperature of the thermoelectric element can be executed, If the intensity decreases while one of the first control and the second control is being executed, the other of the first control and the second control is executed; a monitoring unit that monitors the amount of power supplied to the thermoelectric element while the phase control unit is performing at least one of the first control and the second control, the phase control means uses the amount of power monitored by the monitoring means before the operation of the optical module is stopped as an initial value of power for adjusting the phase of the light after the optical module is restarted. Optical system.

7. The optical module It emits light, detecting the intensity of the light; adjusting a phase of the light based on the intensity; adjusting the phase of the light by adjusting power supplied to a thermoelectric element thermally connected to a waveguide through which the light propagates; A first control for increasing the temperature of the thermoelectric element and a second control for decreasing the temperature of the thermoelectric element can be executed, When the intensity decreases while one of the first control and the second control is being performed in adjusting the phase of the light, the other of the first control and the second control is performed; monitoring the amount of power supplied to the thermoelectric element while at least one of the first control and the second control is being executed; using the monitored amount of power as an initial value of power for adjusting the phase of the light after restarting the optical module; Optical output method.

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