This application is based on Japanese Patent Application No. 2005-034348 filed on Feb. 10, 2005 in Japanese Patent Office, the entire content of which is hereby incorporated by reference.
The present invention relates to a diffractive grating member and an optical communication module.
In the conventional diffractive grating member for an optical pickup device that reads signals from two types of media of CD and DVD, a laser beam with wavelength 785 nm used for reading a CD and a laser beam with wavelength 655 nm used for reading a DVD are targets, and a laser beam with a wavelength for CD and a laser beam with a wavelength for DVD are made to be of the same optical axis, and signals are detected by a single light-receiving element. Therefore, an optical path difference between adjoining diffractive surfaces is made to be the same as a certain wavelength, and a step-shaped grating on which six surfaces are formed is used.
Further, in the optical communication field, well-known is an optical communication module in which two wavelengths are used respectively for a receiving side and a transmitting side, and which separates the light fluxes with two wavelengths to couple light fluxes from a semiconductor laser to an optical fiber and to couple light fluxes from the optical fiber to the light-receiving element. In the following Patent Document 1, there is used a step-shaped grating wherein a wavelength of a semiconductor laser is made to be 1310 nm and a wavelength from an optical fiber is made to be 1550 nm, while, an optical path difference between adjoining diffractive surfaces is made to be the same as a certain wavelength, and a step-shaped grating on which three surfaces are formed is used.
(Patent Document 1) TOKUKAI No. 2003-344715
Though the step-shaped grating can separate light fluxes with two wavelengths, it is difficult to separate light fluxes with three or more wavelengths. In the optical communication field, in particular, when attaining 3-wavelength optical communication module wherein light from a semiconductor laser is coupled to an optical fiber stably without being affected by a slight fluctuation of wavelength, and light respectively with two wavelengths from an optical fiber are separated to be guided to different light-receiving elements, it has been difficult for the conventional step-shaped grating to separate light from an optical fiber sufficiently.
In view of the problems in the conventional technology mentioned above, an object of the invention is to provide an optical communication module capable of utilizing three wavelengths by separating light fluxes having respectively different wavelengths from an optical fiber at sufficient angles of diffraction, and a diffractive grating member capable of separating light having respectively different wavelengths so that three wavelengths may be used.
Embodiments will now be described, by way of example only, with reference to the accompanying drawings which are meant to be exemplary, not limiting, and wherein like elements numbered alike in several Figures, in which:
Each of
Preferable structures for attaining the object of the invention stated above are explained below.
For attaining the object mentioned above, the optical communication module relating to the invention includes a semiconductor laser; a coupling optical system for coupling a light flux with a wavelength of λ1 emitted by the semiconductor laser to an optical fiber; and two light-receiving elements for receiving at least two light fluxes each having wavelengths λ2 and λ3 emitted from an end surface of the optical fiber. The coupling optical system is arranged between the semiconductor laser and the two light-receiving elements, and the optical fiber, and has a diffractive structure on at least one surface of the coupling optical system. The coupling optical system changes paths of light fluxes each having wavelengths λ1, λ2 and λ3 into relatively different directions such that the light flux with the wavelength λ1 emitted by the semiconductor laser enters into the optical fiber and each of the at least two light fluxes each having the wavelengths λ2 and λ3 enters into each of the two light-receiving elements being away from each other.
In this optical communication module, owing to the diffractive structure provided on at least one surface of the coupling optical system, a light flux with wavelength λ1 emitted from the semiconductor laser enters the optical fiber, and light with at least two wavelengths λ2 and λ3 both emitted from the optical fiber may enter respectively two light-receiving elements arranged to be away from each other, thus, light respectively with different wavelengths emitted from the optical fiber are separated at sufficient angle of diffraction, and three wavelengths can be used.
When the wavelengths λ1, λ2 and λ3 in the aforesaid optical communication module satisfy the following conditions:
1280 nm≦λ1≦1340 nm,
1480 nm≦λ2≦1500 nm and
1530 nm≦λ3≦1570 nm,
it is preferable that the diffractive structure is formed by a plurality of step-shaped grating sections provided repeatedly in the direction perpendicular to an optical axis. Each of the step-shaped grating sections includes a predefined number of steps each having a rising surface portion rising in the optical axis direction and a diffractive surface portion formed to be protruded from the rising surface portion. Each of the steps of the step-shaped grating sections provides an optical path difference being a multiple of an approximately integer of the wavelength λ1 to the light fluxes with the wavelength λ1 passing through adjoining diffractive surface portions, and each of the step-shaped grating sections includes 12 diffractive surface portions.
In this case, it is preferable that each of the steps gives an optical path difference being about twice the wavelength λ1 to light fluxes with the wavelength λ1 passing the adjoining diffractive surface portions. Or, it is preferable that each of the steps gives an optical path difference being about the wavelength λ1 to the light fluxes with the wavelength λ1 passing through the adjoining diffractive surface portions.
Further, when each of the steps provides an optical path difference being M times of the wavelength λ1 to light fluxes with the wavelength λ1 passing through the adjoining diffractive surface portions, and M is determined so that the following conditional expression (1) or (2) is satisfied, an amount of diffracted light can be adjusted.
0.9<M<1.1 (1)
1.9<M<2.1 (2)
Further, it is preferable the diffractive structure makes diffracted light fluxes from light fluxes each having wavelengths λ2 and λ3 and emitted from the optical fiber, and a diffracted light fluxes with a maximum diffraction efficiency corresponding to the wavelengths λ2 and a diffracted light fluxes with a maximum diffraction efficiency corresponding to the wavelengths λ3 have different diffraction orders each other. Owing to this, three light fluxes each having a different wavelength can be refracted and separated. In particular, when diffracted light fluxes each having a different diffraction order that makes diffraction efficiency maximum are generated for light fluxes each having a different wavelength coming from the optical fiber, the light fluxes each having a different wavelength coming from the optical fiber can be separated at the sufficient angle of diffraction. In addition, if the diffractive structure makes a diffracted light flux with a larger diffraction order from a light flux with a larger wavelength, a difference of the angle of diffraction between respective wavelengths can be made to be great sufficiently, which is preferable.
For example, when the wavelengths λ1, λ2 and λ3 satisfy the following conditions:
1280 nm≦λ1≦1340 nm,
1480 nm≦λ2≦1500 nm and
1530 nm≦λ3≦1570 nm,
the diffractive structure makes a 0th order diffracted light flux being a transmitting light flux, from the light flux with the wavelength λ1, the diffractive structure also makes a third order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ2, and the diffractive structure also makes a fourth order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ, whereby, light fluxes with respective wavelengths from the optical fiber can be separated at a sufficient angle of diffraction and an amount of diffracted light grows greater.
Further, when the wavelengths λ1, λ2 and λ3 satisfy the following conditions:
1280 nm≦λ1≦1340 nm,
1480 nm≦λ2≦1500 nm and
1530 nm≦λ3≦1570 nm,
the diffractive structure makes a 0th order diffracted light flux being a transmitting light flux, from the light flux with the wavelength λ1, the diffractive structure also makes a first order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ2, and the diffractive structure also makes a second order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ3, whereby, light fluxes with respective different wavelengths from the optical fiber can be separated at a sufficient angle of diffraction and an amount of diffracted light grows greater.
When the wavelengths λ1, λ2 and λ3 satisfy the following conditions:
1280 nm≦λ1≦1340 nm,
1480 nm≦λ2≦1500 nm and
1530 nm≦λ3≦1570 nm,
it is preferable the diffractive structure is formed by a plurality of step-shaped grating sections provided repeatedly in the direction perpendicular to an optical axis. It is also preferable that each of the step-shaped grating sections includes a predefined number of steps each having a rising surface portion rising in the optical axis direction and a diffractive surface portions formed to be protruded from the rising surface portion. It is also preferable that each of the steps of the step-shaped grating sections provides an optical path difference being a multiple of an approximately integer of the wavelength λ1 to the light fluxes with the wavelength λ1 passing through adjoining diffractive surface portions, and each of the step-shaped grating sections includes 9 diffractive surface portions. Due to this, light fluxes respectively with different wavelengths emitted from the optical fiber can be separated at a sufficient angle of diffraction, and diffraction efficiency for light with each of three wavelengths is improved.
In this case, it is preferable that each of the steps provides an optical path difference being approximately twice of the wavelength λ1 to light fluxes with the wavelength λ1 passing through the adjoining diffractive surface portions.
Further, when each of the steps provides an optical path difference being M times of the wavelength λ1 to light fluxes with the wavelength λ1 passing through the adjoining diffractive surface portions, and M is determined so that the following conditional expression (2) is satisfied, an amount of diffracted light can be adjusted.
1.9<M<2.1 (2)
Further, when the wavelengths λ1, λ2 and λ3 satisfy the following conditions:
1280 nm≦λ1≦1340 nm,
1480 nm≦λ2≦1500 nm and
1530 nm≦λ3≦1570 nm,
the diffractive structure makes a 0th order diffracted light flux being transmitting light flux, from the light flux with the wavelength λ1, makes a second order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ2, and makes a third order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ3, whereby, light fluxes with respective wavelengths from the optical fiber can be separated at a sufficient angle of diffraction and an amount of diffracted light grows greater.
When the wavelengths λ1, λ2 and λ3 satisfy the following conditions:
1280 nm≦λ1≦1340 nm,
1480 nm≦λ2≦1500 nm and
1530 nm≦λ3≦1570 nm,
it is preferable that the diffractive structure is formed by a plurality of step-shaped grating sections provided repeatedly in the direction perpendicular to an optical axis. Each of the step-shaped grating sections includes a predefined number of steps each having a rising surface portion rising in the optical axis direction and a diffractive surface portion formed to be protruded from the rising surface portion. Each of the steps of the step-shaped grating sections provides an optical path difference being a multiple of an approximately integer of the wavelength λ1 to the light fluxes with the wavelength λ1 passing through adjoining diffractive surface portions, and each of the step-shaped grating sections includes 11 diffractive surface portions. Due to this, light fluxes respectively with different wavelengths emitted from the optical fiber can be separated at a sufficient angle of diffraction, and diffraction efficiency for light with each of three wavelengths is improved.
In this case, it is preferable that each of the steps provides an optical path difference being approximately same as the wavelength λ1 to light fluxes with the wavelength λ1 passing through the adjoining diffractive surface portions.
Further, when each of the steps provides an optical path difference being M times of the wavelength λ1 to light fluxes with the wavelength λ1 passing through the adjoining diffractive surface portions, and M is determined so that the following conditional expression (1) is satisfied, an amount of diffracted light can be adjusted.
0.9<M<1.1 (1)
Further, when the diffractive structure makes a 0th order diffracted light flux being a transmitting light flux, from the light flux with the wavelength λ1, the diffractive structure also makes a first order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ2, and the diffractive structure also makes a second order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ3, whereby, light fluxes with respective wavelengths from the optical fiber can be separated at a sufficient angle of diffraction and an amount of diffracted light grows greater.
Further, the diffractive surface portion inclines so as to reduce a height of the diffractive surface portion in a direction increasing a height of each of the step-shaped grating sections. The diffractive surface portion straightly transmits an entering light flux with the wavelength λ1. The diffractive surface portion diffracts each of entering light fluxes each having the wavelengths λ2 and λ3 so as to provide different diffractive orders to each of the entering light fluxes. These allow separating light having a different wavelength coming from the optical fiber at a further sufficient angle of diffraction.
A diffractive grating member according to the invention is for separating light fluxes each having different wavelengths and includes a diffractive-grating section formed on a surface of the diffractive grating member perpendicular to an optical axis; and a plurality of step-shaped grating sections provided repeatedly on the diffractive-grating section in the direction perpendicular to an optical axis. Each of the step-shaped grating sections includes a predefined number of steps each having a rising surface portion rising in the optical axis direction and a diffractive surface portion formed to be protruded from the rising surface portion. Each of the steps of the step-shaped grating sections provides an optical path difference being a multiple of an approximately integer of the wavelength λ1 to the light fluxes with the wavelength λ1 passing through adjoining diffractive surface portions. Each of the step-shaped grating sections includes 9, 11, or 12 diffractive surface portions.
In this diffractive grating member, the step-shaped grating section is formed to be provided with prescribed number of steps each having a rising surface along the optical axis direction and a diffractive surface portion formed to be protruded from the rising surfaces. Each of the steps gives to incident light that passes through the adjoining diffractive surface portions, an optical path difference representing a multiple of an integer of a wavelength of the incident light. The number of diffractive surface portions is 9, 11 or 12. These allow that light having a different wavelength emerging from the optical fiber is separated at a sufficient angle of diffraction, efficiency of diffraction for light having each of three wavelengths is improved and three wavelengths can be used.
When the wavelengths λ1, λ2 and λ3 satisfy the following conditions:
1280 nm≦λ1≦1340 nm,
1480 nm≦λ2≦1500 nm and
1530 nm≦λ3≦1570 nm,
it is preferable that each of the steps provides an optical path difference being a multiple of an approximately integer of the wavelength λ1 of the light fluxes with the wavelength λ1 passing through adjoining diffractive surface portions. In this case, it is more preferable that each of the steps provides an optical path difference being a multiple of a non-integer of the wavelength λ2 and λ3 of the light fluxes each with the wavelength λ2 and λ3 passing through adjoining diffractive surface portions.
In this case, when each of the steps provides an optical path difference being M times of the wavelength λ1 to light fluxes with the wavelength λ1 passing through the adjoining diffractive surface portions, and M is determined so that the following conditional expression (1) or (2) is satisfied, an amount of diffracted light can be adjusted.
0.9<M<1.1 (1)
1.9<M<2.1 (2)
Further, it is preferable that a raising surface of each end of the plurality of step-shaped grating sections or a raising surface placed an end portion of each of the plurality of step-shaped grating sections and providing a largest step difference, inclines in a direction to a lower step of the step-shaped grating section owing to this, an yield in manufacturing of the diffractive grating members through injection molding is improved.
It is preferable that the above optical communication module, includes two light-receiving elements for receiving at least three light fluxes each having wavelengths λ2, λ3 and λ4 emitted from an end surface of the optical fiber. Further it is preferable that when the wavelengths λ1, λ2, λ3 and λ4 satisfy following expressions:
1280 nm≦λ1≦1340 nm
1480 nm≦λ2≦1500 nm
1530 nm≦λ3≦1570 nm,
1600 nm≦λ4≦1620 nm,
the diffractive structure is formed by a plurality of step-shaped grating sections provided repeatedly in the direction perpendicular to an optical axis. Each of the step-shaped grating sections includes a predefined number of steps each having a rising surface portion rising in the optical axis direction and a diffractive surface portion formed to be protruded from the rising surface portion. Each of the step-shaped grating sections provides an optical path difference being a multiple of an integer of the wavelength λ1 to the light fluxes with the wavelength λ1 passing through adjoining diffractive surface portions, and each of the step-shaped grating sections includes 12, 13, or 14 diffractive surface portions.
In this case, it is preferable that in the above optical communication module, each of the steps of the diffractive structure provides an optical path difference being M times of the wavelength λ1 to light fluxes with the wavelength λ1 passing through the adjoining diffractive surface portions, and M satisfies the conditional expression (2).
1.9<M<2.1 (2)
Furthermore, it is preferable that in the optical communication module, when the wavelengths λ1, λ2, λ3 and λ4 satisfy followings:
1280 nm≦λ1≦1340 nm
1480 nm≦λ2≦1500 nm
1530 nm≦λ3≦1570 nm,
1600 nm≦λ4≦1620 nm,
the diffractive structure makes a 0th order diffracted light flux being a transmitting light flux, from the light flux with the wavelength λ1, the diffractive structure also makes a third order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ2, the diffractive structure also makes a fourth order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ3, and the diffractive structure also makes a fifth order diffracted light flux having a maximum diffraction efficiency from the light flux with the wavelength λ4.
Furthermore, it is preferable that in the optical communication module, the diffractive surface portion inclines so as to reduce a height of the diffractive structure in a direction increasing a height of each of the step-shaped grating sections, the diffractive surface portion also straightly transmits an entering light flux with the wavelength λ1, and the diffractive surface portion also diffracts each of entering light fluxes each having the wavelengths λ2, λ3 and λ4 so as to provide different diffractive orders to each of the entering light fluxes.
A diffractive grating member relating to the present invention for separating light fluxes each having different wavelengths, includes a diffractive-grating section formed on a surface of the diffractive grating member perpendicular to an optical axis; and a plurality of step-shaped grating sections provided repeatedly on the diffractive-grating section the direction perpendicular to an optical axis. Each of the step-shaped grating sections includes a predefined number of steps each having a rising surface portion rising in the optical axis direction and a diffractive surface portion formed to be protruded from the rising surface portion. Each of the steps of the step-shaped grating sections provides an optical path difference being a multiple of an approximately integer of the wavelength λ1 to the light fluxes with the wavelength λ1 passing through adjoining diffractive surface portions. Each of the step-shaped grating sections includes 12, 13, or 14 diffractive surface portions.
It is preferable that in the above diffractive grating member, when wavelengths λ1, λ2, λ3 and λ4 satisfy followings:
1280 nm≦λ1≦1340 nm
1480 nm≦λ2≦1500 nm
1530 nm≦λ3≦1570 nm,
1600 nm≦λ4≦1620 nm,
each of the steps provides an optical path difference being a multiple of an approximately integer of the wavelength λ1 of the light fluxes with the wavelength λ1 passing through adjoining diffractive surface portions. In this case, it is more preferable that each of the steps provides an optical path difference being a multiple of an non-integer of the wavelength λ2, λ3, and λ4 of the light fluxes each with the wavelength λ2, λ3, and λ4 passing through adjoining diffractive surface portions.
Furthermore, it is preferable that in the steps provides an optical path difference being M times of the wavelength λ1 to light fluxes with the wavelength λ1 passing through the adjoining diffractive surface portions, and
M satisfies 1.9<M<2.1.
Further, it is preferable that a raising surface of each end of the plurality of step-shaped grating sections or a raising surface placed an end portion of each of the plurality of step-shaped grating sections and providing a largest step difference, inclines in a direction to a lower step of the step-shaped grating section.
The optical communication module relating to the invention makes it possible to separate light having a different wavelength emerging from the optical fiber, and it improves diffraction efficiency of light having each of wavelengths, and makes three or four wavelengths to be utilized owing to this, light having a different wavelength emerging from the optical fiber can be separated by an optical system which is smaller than the conventional one, which can realize downsizing of optical communication modules.
In the diffractive grating member relating to the invention, the number of diffractive surface portions in the step-shaped grating section is 9, 11 or 12, and thereby, the light having a different wavelength can be separated at a sufficient angle of diffraction, the diffraction efficiency of light having each of three wavelengths is improved and three wavelengths can be used. Similarly, the number of diffractive surface portions in the step-shaped grating section is 12, 13 or 14, and thereby, the light having a different wavelength can be separated at a sufficient angle of diffraction, the diffraction efficiency of light having each of four wavelengths is improved and three wavelengths can be used. Therefore, light having a different wavelength can be separated by an optical system which is smaller than the conventional one, and it is possible to realize downsizing of an optical communication module, by applying the diffractive grating member to an optical communication module.
While the preferred embodiments of the present invention have been described using specific terms, such description is for illustrative purposes only, and it is to be understood that changes and variations may be made without departing from the sprit or scope of the appended claims.
<Embodiment 1>
Embodiment 1 that is that is preferred for practicing the invention will be explained as follows, referring to the drawings.
As shown in
The coupling optical system 16 includes coupling lens 17, and diffractive grating member 15 (diffractive structure) includes plural step-shaped grating sections 15a provided on surface 17a facing the optical fiber 14 on the coupling lens. Each step-shaped grating section 15a is arranged repeatedly in the direction perpendicular to the optical axis to be formed on surface 17a.
A laser beam having wavelength λ1 emitted from semiconductor laser 11 is transmitted through coupling lens 17, and its transmitting light (0th order diffracted light flux) is focused on end face 14a of optical fiber 14, and light (shown with broken lines in
Namely, the light-receiving elements 12 and 13 are arranged to be away from optical axis P in the direction for step-shaped grating sections 15a of the diffractive grating member 15 to be arranged for the semiconductor laser 11. The light-receiving element 13 with wavelength λ3 that is longer than λ2 emerging from end face 14a of optical fiber 14 is arranged to be farther than light-receiving element 12 from the semiconductor laser 11. In this way, the light-receiving elements 12 and 13 are arranged to be farther from coupling lens 17 as the wavelength is longer.
The wavelengths λ1, λ2 and λ3 are in the following range, and, for example, λ1 is 1310 nm, λ2 is 1490 nm and λ3 is 1550 nm.
1280 nm≦λ1≦1340 nm
1480 nm≦λ2≦1500 nm
1530 nm λ3≦1570 nm
Further, optical communication module 10 shown in
Next, step-shaped grating sections 15a of the diffractive grating member 15 shown in
Each step-shaped grating sections 15a is constructed to have the total length (pitch) Λ and the total step difference D in which each stair shape that is formed by the rising surface portion 15b having its height d and by the diffractive surface portion 15c is arranged repeatedly and periodically. Further, the rising surface portion 15b that is positioned at an end of the period of steps and has the largest step difference D among rising surface portions 15b is inclined at small angle φ in the direction to narrow an area of the diffractive surface portion 15c, namely, in the direction to a lower step of step-shaped grating section 15a.
Referring to
As shown in
Next, specific examples 1–4 of the diffractive grating member 15 in
When n represents the refractive index of the diffractive grating member 15 in
(n−1)d=M·λ1 (3)
In the expression above, M is determined to be an integer substantially.
The specific example 1 in
In FIG. 5–
Further, when a pitch of the diffractive grating member is generally represented by Λ, the following relational expression (4) holds when λ represents a wavelength, θ represents an angle of diffraction and m represents an order of diffraction.
sin θ=mλ/Λ (4)
In the example in
As stated above, in the diffractive grating member of the specific examples 1–4 in FIG. 6–
With respect to a diffractive grating member of the present embodiment, when it is manufactured through injection molding of plastic, there is a fear that an edge portion of the diffractive surface is damaged by contraction when a molded product is cooled and released from a die, because of step difference D that is higher than that in conventional examples. However, it is possible to prevent such damage of an edge portion of the diffractive surface by inclining raising surface 15b of each end of the plurality of step-shaped grating sections 15a or a raising surface 15b placed an end portion of each of the plurality of step-shaped grating sections 15a and providing the largest step difference D by angle φ as shown in
Next, the invention will be explained more specifically referring to examples, to which, however, the invention is not limited.
Examples 1, 2, 3, 4 and 5 are diffractive grating members having forms corresponding respectively to FIG. 5–
As is understood from Table 1, a ratio of an angle of diffraction (sin θ′/sin θ) of wavelength λ2 to wavelength λ3 is only 1.04 and the diffraction order is the same in the Example 1, and when light with λ2 and light with λ3 are separated on the diffractive grating member in the Example 1, a distance required for the separation grows greater, resulting in an extremely large optical system and an optical communication module is extended in the optical axis direction. In contrast to this, in the present Examples 2–5, a ratio of the angle of diffraction (sin θ′/sin θ) is about 1.4 or more and the diffraction order for λ2 and λ3 is different, and thereby, λ2 and λ3 can be separated with a small distance for separation, resulting in an optical communication module that is short in the optical axis direction. Further, diffraction efficiency is also sufficient.
As is understood from the examples, the diffraction order that makes a diffraction efficiency to be maximum varies depending on each wavelength, and it is possible to make a difference of the angle of diffraction between respective wavelengths to be large sufficiently.
Though diffraction efficiency in the case of wavelength λ2 is as low as 39% in Example 4, a height of a step in the Example 4 was adjusted and thereby, diffraction efficiency was adjusted in Examples 6 and 7, as shown in the following Table 2.
By adjusting a value of M in relational expression (1), it is possible to avoid an extremely low diffraction efficiency, as shown in Table 2. Thus, a height of a step can be selected in accordance with an amount of light required by each wavelength.
In
Though there have been explained above preferred embodiments for practicing the invention, the invention is not limited to these embodiments, and they can be varied variously without departing from the technical spirit and scope of the invention. For example, ball lens 19 may be arranged in the vicinity of semiconductor laser 11 equally to
In addition, though diffractive grating member 15 is structured to be solid with coupling lens 17 in
Further, diffractive surface portion 15c in diffractive grating member 15 may also be constructed to be inclined. For example, as shown in
In the embodiment 1 stated above, there was explained an example wherein two wavelengths λ2 and λ3 were employed for the light fluxes each having a different wavelength coming form an optical fiber. However, the invention is not limited to these two wavelengths λ2 and λ3.
In the embodiment 2, there is explained an example wherein three wavelengths λ2, λ3 and λ4 are employed the light fluxes each having a different wavelength coming from an optical fiber.
In the case of the following four wavelengths including wavelength λ1 from a laser, when a diffracted grating member shown in Table 3 is used as the diffractive grating member 35, a laser beam with wavelength λ1 emitted from a semiconductor laser is transmitted through diffractive grating member 15 without being diffracted 0th order diffracted light flux), in the same way as in the example of three wavelengths, then, is converged by a coupling lens to form an image on end face 14a of optical fiber 14, and light fluxes respectively with wavelengths λ2, λ3 and λ4 emitted from optical fiber 14 are diffracted by the diffractive grating member in different directions θ, θ′ and θ″ (θ<θ′<θ″), to enter respective light-receiving elements 32, 33 and 34.
Table 3 shows an example wherein the aforesaid four wavelengths include λ1=1310 nm, λ2=1490 nm, λ3=1550 nm and λ4=1610 nm. Incidentally,
Even in the Examples 8, 9 and 10, the diffraction order that makes a diffraction efficiency to be maximum varies depending on each wavelength, and light with a longer wavelength is diffracted at a greater diffraction order, thus, a difference of the angle of diffraction between wavelengths can be made large sufficiently.
Number | Date | Country | Kind |
---|---|---|---|
2005-034348 | Feb 2005 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
4748614 | Dammann et al. | May 1988 | A |
6084710 | Katsuma | Jul 2000 | A |
6400509 | Sappey et al. | Jun 2002 | B1 |
20040169929 | Sato et al. | Sep 2004 | A1 |
20060023212 | Nishii et al. | Feb 2006 | A1 |
Number | Date | Country |
---|---|---|
0 303 355 | Feb 1989 | EP |
2003-344715 | Dec 2003 | JP |
WO 0221522 | Mar 2002 | WO |
WO 03060891 | Jul 2003 | WO |
Number | Date | Country | |
---|---|---|---|
20060177179 A1 | Aug 2006 | US |