Amplification device with amplification stages with polarized SOAs and processing stage, for amplifying optical signals in a WDM transmission system
10419149 ยท 2019-09-17
Assignee
Inventors
Cpc classification
H04J14/0221
ELECTRICITY
H01S5/5027
ELECTRICITY
H01S5/5045
ELECTRICITY
International classification
H01S5/50
ELECTRICITY
H04B10/291
ELECTRICITY
H01S5/40
ELECTRICITY
Abstract
An amplification device includes an element for splitting an input optical signal into first and second optical signals having first and second polarization modes, first and second amplification stages each including polarized SOAs for amplifying the first and second optical signals depending on driving currents, an intermediate processing stage for compensating optical characteristics of the optical gain bandwidth of the first amplification stage depending on driving currents, an element for combining the first and second optical signals outputted by the second amplification stage to produce an output optical signal, and a control means producing the driving currents depending on information representative of powers of the first and second optical signals before the polarized SOAs of each amplification stage and on a targeted power of the output optical signal.
Claims
1. An amplification device comprising: a) a first splitting element arranged for splitting an input optical signal into first and second optical signals having respectively first and second polarization modes; b) first and second amplification stages each comprising first and second polarized semiconductor optical amplifiers arranged for amplifying respectively said first and second optical signals as a function of driving currents; c) an intermediate processing stage inserted between said first and second amplification stages; d) a first combination element arranged for combining said first and second amplified optical signals outputted by said second amplification stage to produce an output optical signal; and e) a processor configured to execute non-transitory machine-readable instructions such that, when executed, cause the process to produce said driving currents as a function of information representative of powers of said first and second optical signals at least before said first and second polarized semiconductor optical amplifiers of each amplification stage and of a targeted power of said output optical signal, wherein said intermediate processing stage includes, a first variable optical attenuator arranged for compensating, on said first optical signal, a tilt of said optical gain bandwidth of said first polarized semiconductor optical amplifier of said first amplification stage, a first gain flattening filter arranged for compensating, on said first optical signal, ripples of said optical gain bandwidth of said first polarized semiconductor optical amplifier of said first amplification stage, a second variable optical attenuator arranged for compensating, on said second optical signal, a tilt of said optical gain bandwidth of said second polarized semiconductor optical amplifier of said first amplification stage, and a second gain flattening filter arranged for compensating, on said second optical signal, ripples of said optical gain bandwidth of said second polarized semiconductor optical amplifier of said first amplification stage.
2. The amplification device according to claim 1, wherein said first and second polarized semiconductor optical amplifiers of each amplification stage are arranged for amplifying optical signals having said first polarization mode, and wherein the amplification device further comprises: a first transformation element arranged for transforming said second polarization mode of said second optical signal in said first polarization mode before said second polarized semiconductor optical amplifier of said first amplification stage; and a second transformation element arranged for transforming said first polarization mode of said first optical signal in said second polarization mode after said first polarized semiconductor optical amplifier of said second amplification stage, so that said first combination element combines said first optical signal amplified, having said second polarization mode and outputted by said second amplification stage with said second optical signal amplified, having said first polarization mode and outputted by said second amplification stage to produce said output optical signal.
3. The amplification device according to claim 2, wherein said first transformation element and/or said second transformation element comprise(s) a waveplate.
4. The amplification device according to claim 1, further comprising: first and second micro-lenses located respectively just before and just after said first polarized semiconductor optical amplifier of each amplification stage, and third and fourth micro-lenses located respectively just before and just after said second polarized semiconductor optical amplifier of each amplification stage.
5. The amplification device according to claim 1, just before each amplification stage, further comprising: a) a first extracting element arranged for taking a first predefined percentage of the power of said first optical signal before said first polarized semiconductor optical amplifier; b) a first photodiode arranged for producing a first information representative of the power taken from said first optical signal before said first polarized semiconductor optical amplifier for said processor; c) a second extracting element arranged for taking a second predefined percentage of the power of said second optical signal before said second polarized semiconductor optical amplifier; and d) a second photodiode arranged for producing a second information representative of the power taken from said second optical signal before said second polarized semiconductor optical amplifier for said processor.
6. The amplification device according to claim 1, wherein said processor is arranged for producing said driving currents as a function of information representative of powers of said first and second optical signals before and after said first and second polarized semiconductor optical amplifiers of each amplification stage and of said targeted power of said output optical signal.
7. The amplification device according to claim 6, after each amplification stage, further comprising: a) a third extracting element arranged for taking a third predefined percentage of the power of said first optical signal after said first polarized semiconductor optical amplifier; b) a third photodiode arranged for producing a third information representative of the power taken from said first optical signal after said first polarized semiconductor optical amplifier for said processor; c) a fourth extracting element arranged for taking a fourth predefined percentage of the power of said second optical signal after said second polarized semiconductor optical amplifier; and d) a fourth photodiode arranged for producing a fourth information representative of the power taken from said second optical signal after said second polarized semiconductor optical amplifier for said processor.
8. The amplification device according to claim 1, wherein said first polarization mode is a transverse electric mode and said second polarization mode is a transverse magnetic mode.
9. The amplification device according to claim 1, wherein each splitting element and/or each combination element comprise(s) a birefringent material.
10. The amplification device according to claim 1, wherein said processor is arranged for determining said driving currents from stored data establishing a correspondence between information representative of powers and driving currents.
11. The amplification device according to claim 1, further comprising: a polarization dependent optical isolator before each input and/or after each output of each amplification stage.
12. An amplification device comprising: a) a first splitting element arranged for splitting an input optical signal into first and second optical signals having respectively first and second polarization modes; b) first and second amplification stages each comprising first and second polarized semiconductor optical amplifiers arranged for amplifying respectively said first and second optical signals as a function of driving currents; c) an intermediate processing stage inserted between said first and second amplification stages; d) a first combination element arranged for combining said first and second amplified optical signals outputted by said second amplification stage to produce an output optical signal; and e) a processor configured to execute non-transitory machine-readable instructions such that, when executed, cause the process to produce said driving currents as a function information representative of powers of said first and second optical signals at least before said first and second polarized semiconductor optical amplifiers of each amplification stage and of a targeted power of said output optical signal, wherein said intermediate processing stage comprises, a) a second combination element arranged for combining said first and second amplified optical signals outputted by said first amplification stage to produce an intermediate optical signal, b) a variable optical attenuator arranged for compensating, on said intermediate optical signal, a tilt of said optical gain bandwidth of said first stage, c) a gain flattening filter arranged for compensating, on said intermediate optical signal, ripples of said first amplification stage, and d) a second splitting element arranged for splitting said intermediate optical signal, processed by said variable optical attenuator and gain flattening filter, in said first and second optical signals having respectively said first and second polarization modes.
13. The amplification device according to claim 12, wherein said intermediate processing stage further comprises a third transformation element arranged for transforming said first polarization mode of said first optical signal in said second polarization mode before said second combination element, and a fourth transformation element arranged for transforming said second polarization mode of said second optical signal in said first polarization mode after said second splitting element.
14. The amplification device according to claim 13, wherein said third transformation element and/or said fourth transformation element comprise(s) a waveplate.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) Some embodiments of an amplification device in accordance with embodiments of the present invention are now described, by way of example only, and with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
DESCRIPTION OF EMBODIMENTS
(6) Hereafter is notably disclosed an amplification device 1 intended for amplifying input optical signals in a Wavelength Division Multiplexing (or WDM) transmission system.
(7) As illustrated in
(8) The first splitting element 2 is arranged (or configured) for splitting an input optical signal S.sub.in in first and second optical signals having respectively first and second polarization modes. As illustrated, this input optical signal S.sub.in is provided by a first optical fiber link 7 of a WDM transmission system, which is connected to an input of the amplification device 1.
(9) For instance, the first splitting element 2 may be a polarization beam splitter which may be realized by using a birefringent material that is capable of physically splitting the input optical signal S.sub.in in first and second optical signals in order to deliver them respectively onto distant first and second outputs. For instance, the birefringent material may be a crystal quartz.
(10) Also for instance, the first polarization mode may be a transverse electric (or TE) mode and the second polarization mode may be a transverse magnetic (or TM) mode. But the reverse situation may be envisaged (i.e. a first polarization mode that is a TM mode and a second polarization mode that is a TE mode) if the amplifier is designed and/or positioned to amplify TM mode.
(11) Each amplification stage 3.sub.i (i=1 or 2) comprises first 8.sub.i and second 9.sub.i polarized semiconductor optical amplifiers (or SOAs) arranged for amplifying respectively the first and second optical signals as a function of driving currents.
(12) More precisely, the first polarized semiconductor optical amplifier (or SOA) 8.sub.1 of the first amplification stage 3.sub.1 (i=1) is arranged for amplifying the first optical signal (originating from a first output of the first splitting element 2) as a function of a driving current I1.sub.1 provided by the control means 6.
(13) The second polarized semiconductor optical amplifier (or SOA) 9.sub.1 of the first amplification stage 3.sub.1 (i=1) is arranged for amplifying the second optical signal (originating from a second output of the first splitting element 2) as a function of a driving current I2.sub.1 provided by the control means 6.
(14) The first polarized semiconductor optical amplifier (or SOA) 8.sub.2 of the second amplification stage 3.sub.2 (i=2) is arranged for amplifying the first optical signal (originating from a first output of the intermediate processing stage 4) as a function of a driving current I1.sub.2 provided by the control means 6.
(15) The second polarized semiconductor optical amplifier (or SOA) 9.sub.2 of the second amplification stage 3.sub.2 (i=2) is arranged for amplifying the second optical signal (originating from a second output of the intermediate processing stage 4) as a function of a driving current I2.sub.2 provided by the control means 6.
(16) One means here by polarized SOA a SOA arranged for optimally amplifying an optical signal having a predefined polarization mode. This type of SOA, optimized for a predefined polarization mode, may be designed to exhibit a very large gain bandwidth.
(17) The diagram of
(18) For instance, and as illustrated in the non-limiting examples of
(19) But in a variant illustrated not limitatively in
(20) The use of singly polarized SOAs 8.sub.1 and 9.sub.1 in the first amplification stage 3.sub.1 may enable achieving a very large optical bandwidth with high gain, a high output power and a low noise figure. In the second amplification stage 3.sub.2, one may use singly polarized SOAs 8.sub.2 and 9.sub.2 that enable achieving a very large optical bandwidth with high saturation output power and low gain, so that a large range of output power can be covered while managing the gain flatness.
(21) The intermediate processing stage 4 is inserted between the first 3.sub.1 and second 3.sub.2 amplification stages. It is arranged for compensating chosen optical characteristics of the optical gain bandwidth of the first amplification stage 3.sub.1 as a function of other driving currents I3.sub.i (or I3) and I4.sub.i (or I4).
(22) For instance, and as illustrated, this intermediate processing stage 4 is secured to the small plate (or board) 10.
(23) In the non-limiting example illustrated in
(24) The use of variable optical attenuators (or VOAs) 12.sub.i and gain flattening filters (or GFFs) 13.sub.i is intended for allowing compensation of optical characteristics of the optical gain bandwidth of the first amplification stage 3.sub.1, and more precisely of the tilt and ripples.
(25) The first variable optical attenuator (or VOA) 12.sub.1 is arranged for compensating, on the first optical signal, a tilt of the optical gain bandwidth of the first polarized SOA 8.sub.1 of the first amplification stage 3.sub.1 as a function of a driving current I3.sub.1. The tilt is an example of chosen optical characteristics of the optical gain bandwidth that can be compensated.
(26) The first gain flattening filter 13.sub.1 is arranged for compensating, on the first optical signal, ripples of the optical gain bandwidth of the first polarized SOA 8.sub.1 of the first amplification stage 3.sub.1 as a function of a driving current I4.sub.1. Ripples are another example of chosen optical characteristics of the optical gain bandwidth that can be compensated.
(27) The second variable optical attenuator (or VOA) 12.sub.2 is arranged for compensating, on the second optical signal, a tilt of the optical gain bandwidth of the second polarized SOA 9.sub.1 of the first amplification stage 3.sub.1 as a function of a driving current I3.sub.2.
(28) The second gain flattening filter 13.sub.2 is arranged for compensating, on the second optical signal, ripples of the optical gain bandwidth of the second polarized SOA 9.sub.1 of the first amplification stage 3.sub.1 as a function of a driving current I4.sub.2.
(29) In this example, each variable optical attenuator 12.sub.i and each gain flattening filter 13.sub.i are dedicated to the polarization of the modes of the optical signals they receive respectively. This may also allow minimizing polarization dependent gain between the two paths of the amplification device 1.
(30) It is important to note that in the non-limiting example illustrated in
(31) In the non-limiting examples illustrated in
(32) The second combination element 14 is arranged for combining the first and second amplified optical signals outputted by the first and second outputs of the first amplification stage 3.sub.1 to produce an intermediate optical signal.
(33) For instance, this second combination element 14 may be a polarization beam combiner, which may be realized by using a birefringent material that is capable of combining the first and second amplified optical signals it receives onto distant first and second inputs in order to deliver an intermediate optical signal. For instance, the birefringent material may be a crystal quartz.
(34) The variable optical attenuator 12 is arranged for compensating, on this intermediate optical signal, the tilt of the optical gain bandwidth of the first stage 3.sub.1 as a function of a driving current I3.
(35) The gain flattening filter 13 is arranged for compensating, on the intermediate optical signal, ripples of the first amplification stage 3.sub.1 as a function of a driving current I4.
(36) So, in this example the variable optical attenuator 12 and the gain flattening filter 13 are not dependent from the polarization.
(37) It is important to note that in the non-limiting examples illustrated in
(38) The second splitting element 15 is arranged for splitting the intermediate optical signal, processed by the variable optical attenuator 12 and gain flattening filter 13, in the first and second optical signals having respectively the first and second polarization modes.
(39) For instance, this second splitting element 15 may be a polarization beam splitter which may be realized by using a birefringent material that is capable of physically splitting the intermediate optical signal in first and second optical signals in order to deliver them respectively onto distant first and second outputs. For instance, the birefringent material may be a crystal quartz.
(40) The first combination element 5 is arranged for combining the first and second amplified optical signals (outputted by the first and second outputs of the second amplification stage 3.sub.2) to produce an output optical signal S.sub.out. As illustrated, this output optical signal S.sub.out feeds a second optical fiber link 16 of the WDM transmission system, which is connected to an output of the amplification device 1.
(41) For instance, the first combination element 5 may be a polarization beam combiner, which may be realized by using a birefringent material that is capable of combining the first and second amplified optical signals it receives onto distant first and second inputs in order to deliver an output optical signal S.sub.out. For instance, the birefringent material may be a crystal quartz.
(42) Also for instance, and as illustrated, the first splitting element 2 and the first combination element 5 (that performs a reverse splitting) are secured to the small plate (or board) 10.
(43) In the non-limiting examples illustrated in
(44) For instance, and as illustrated, these micro-lenses 17.sub.i-20.sub.i are secured to the small plate (or board) 10.
(45) In the non-limiting example illustrated in
(46) The control means 6 is arranged for producing all the driving currents I1.sub.i, I2.sub.i, I3.sub.i (ou I3) et I4.sub.i (ou I4) as a function of information representative of powers of at least the first and second optical signals at least before the first 8.sub.i and second 9.sub.i polarized SOAs and of a targeted power of the output optical signal S.sub.out. So, it aims at controlling automatically the respective amplification levels of the first 8.sub.i and second 9.sub.i polarized SOAs of each amplification stage 3.sub.i so that the output optical signal S.sub.out be approximately equal to the targeted power (i.e. equal to the latter with a predefined tolerance).
(47) The control means 6 is preferably made of a combination of hardware and software modules, by means of a microcontroller or a central processing unit (CPU), for instance.
(48) To ease practical implementation, the first 8.sub.i and second 9.sub.i polarized SOAs of each amplification stage 3.sub.i are preferably arranged for amplifying optical signals having the first polarization mode (and preferably the TE mode). In this embodiment, the amplification device 1 must further comprise first 21 and second 22 transformation elements to allow a combination of first and second optical signals with different polarization modes by the first combination element 5, as illustrated in the non-limiting examples of
(49) The first transformation element 21 is arranged for transforming the second polarization mode of the second optical signal (provided by the second output of the first splitting element 2) in the first polarization mode. So, it is located before the second polarized SOA 9.sub.1 of the first amplification stage 3.sub.1. It should be understood that this transformation consists in a rotation from the second polarization mode to the first polarization mode.
(50) The second transformation element 22 is arranged for transforming the first polarization mode of the first optical signal (provided by the output of the first polarized SOA 8.sub.2 of the second amplification stage 3.sub.2) in the second polarization mode. So, it is located after the first polarized SOA 8.sub.2. It should be understood that this transformation consists in a rotation from the first polarization mode to the second polarization mode.
(51) Such an embodiment allows the first combination element 5 to combine the first optical signal (amplified and having the second polarization mode) with the second optical signal (amplified and having the first polarization mode) to produce the output optical signal S.sub.out.
(52) For instance, the first transformation element 21 and/or the second transformation element 22 comprise(s) a waveplate arranged for inducing the above mentioned polarization mode rotations. These waveplates may be used when the above mentioned free spaces are defined.
(53) In the non-limiting examples illustrated in
(54) For instance, the third transformation element 23 and/or the fourth transformation element 24 comprise(s) a waveplate arranged for inducing the above mentioned polarization mode rotations. These waveplates may be used when free spaces are defined.
(55) The non-limiting embodiments described above, with reference to
(56) In order the control means 6 be informed of the respective powers of the first and second optical signals before the first 8.sub.i and second 9.sub.i SOAs of each amplification stage 3.sub.i, the amplification device 1 may comprise at least first 29.sub.i and second 30.sub.i extracting elements and first 33.sub.i and second 34.sub.i photodiodes.
(57) Each first extracting element 29.sub.i is arranged for taking a first predefined percentage of the power of the first optical signal before a corresponding first polarized SOA 8.sub.i. Each first photodiode 33.sub.i is arranged for producing a first information PI1.sub.i representative of the power taken from the first optical signal before the corresponding first polarized SOA 8.sub.i for the control means 6. Each second extracting element 30.sub.i is arranged for taking a second predefined percentage of the power of the second optical signal before the corresponding second polarized SOA 9.sub.i. Each second photodiode 34.sub.i is arranged for producing a second information PI2.sub.i representative of the power taken from the second optical signal before the corresponding second polarized SOA 9.sub.i for the control means 6.
(58) For instance, the first and second predefined percentages may be equal to 1%. But other values may be used.
(59) Also for instance, the first 29.sub.i and second 30.sub.i extracting elements may each comprise a tap coupler arranged for reflecting the first or second predefined power percentage of the first or second optical signal, and of transmitting the complementary power percentage of the first or second optical signal. In the case where the first or second predefined percentage is equal to 1%, the complementary power percentage is equal to 99%.
(60) Also for instance, the first 29.sub.i and second 30.sub.i extracting elements may be beamsplitters, such as semi-reflective plates or partially reflective mirrors. These beamsplitters may be used when the above mentioned free spaces are defined.
(61) Also for instance, and as illustrated, the first 29.sub.i and second 30.sub.i extracting elements are secured to the small plate (or board) 10. The first 33.sub.i and second 34.sub.i photodiodes may be secured to the same plate or to a subsidiary plate positioned below the first one.
(62) Also for instance, the first 33.sub.i and second 34.sub.i photodiodes may exhibit a low bandwidth.
(63) To improve the power equalization on the two optical paths, the control means 6 may be advantageously arranged for producing all the driving currents I1.sub.i to I4.sub.i as a function also of other information representative of powers of the first and second optical signals after the first 8.sub.i and second 9.sub.i polarized SOAs of ech amplification stage 3.sub.i.
(64) In order the control means 6 be informed of the respective powers of the first and second optical signals after the first 8.sub.i and second 9.sub.i polarized SOAs of each amplification stage 3.sub.i, the amplification device 1 may comprise third 31.sub.i and fourth 32.sub.i extracting elements and third 35.sub.i and fourth 36.sub.i photodiodes.
(65) Each third extracting element 31.sub.i is arranged for taking a third predefined percentage of the power of the first optical signal after the corresponding first polarized SOA 8.sub.i. Each third photodiode 35.sub.i is arranged for producing a third information PI3.sub.i representative of the power taken from the first optical signal after the corresponding first polarized SOA 8.sub.i for the control means 6. Each fourth extracting element 32.sub.i is arranged for taking a fourth predefined percentage of the power of the second optical signal after the corresponding second polarized SOA 9.sub.i. Each fourth photodiode 36.sub.i is arranged for producing a fourth information PI4.sub.i representative of the power taken from the second optical signal after the corresponding second polarized SOA 9.sub.i for the control means 6.
(66) For instance, the third and fourth predefined percentages may be equal to 1%. But other values may be used.
(67) Also for instance, the third 31.sub.i and fourth 32.sub.i extracting elements may each comprise a tap coupler arranged for reflecting the third or fourth predefined power percentage of the first or second amplified optical signal, and of transmitting the complementary power percentage of the first or second amplified optical signal. In the case where the first or second predefined percentage is equal to 1%, the complementary power percentage is equal to 99%.
(68) Also for instance, the third 31.sub.i and fourth 32.sub.i extracting elements may be beamsplitters, such as semi-reflective plates or partially reflective mirrors. These beamsplitters may be used when the above mentioned free spaces are defined.
(69) Also for instance, and as illustrated, the third 31.sub.i and fourth 32.sub.i extracting elements are secured to the small plate (or board) 10. The third 35.sub.i and fourth 36.sub.i photodiodes may be secured to the same plate or to a subsidiary plate positioned below the first one.
(70) Also for instance, the third 35.sub.i and fourth 36.sub.i photodiodes may exhibit a low bandwidth.
(71) The last embodiment allows the control means 6 to precisely balance output powers from the first 8.sub.i and second 9.sub.i SOAs of each amplification stage 3.sub.i according to the targeted power of the output optical signal S.sub.out of the amplification device 1. Once this targeted power is set in the control means 6 through the control plane or a manual setting at startup, each optical path should transmit half of this targeted power. So, the control means 6 adjusts all the driving currents I1.sub.i to I4.sub.i accordingly. To this effect, the control means 6 may, for instance, determine the driving currents I1.sub.i to I4.sub.i from stored data establishing a correspondence between information representative of powers and driving currents.
(72) After having received the power information PI1.sub.i-PI4.sub.i of the two optical paths, the control means 6 finely tunes each driving current I1.sub.i to I4.sub.i to reach the targeted power, while taking into account a tolerance on the targeted power.
(73) Although this does not appear in the Figures, the amplification device 1 may further comprise a polarization dependent optical isolator before each input and/or after each output of each amplification stage 3.sub.i.
(74) Thanks to the invention the capacity of a WDM transmission system may be approximately tripled and a management of the gain flatness can be performed. Moreover, the invention also allows to compensate lumped losses in optical networks by means of simple management rules.
(75) It should be appreciated by those skilled in the art that any block diagram herein represent conceptual views of illustrative circuitry embodying the principles of the invention.
(76) The description and drawings merely illustrate the principles of the invention. It will thus be appreciated that those skilled in the art will be able to devise various arrangements that, although not explicitly described or shown herein, embody the principles of the invention and are included within its spirit and scope. Furthermore, all examples recited herein are principally intended expressly to be only for pedagogical purposes to aid the reader in understanding the principles of the invention and the concepts contributed by the inventor(s) to furthering the art, and are to be construed as being without limitation to such specifically recited examples and conditions. Moreover, all statements herein reciting principles, aspects, and embodiments of the invention, as well as specific examples thereof, are intended to encompass equivalents thereof.