The present invention generally relates to a laser source based on Fabry-Perot laser diode (FP-LD) and seeding method using the same.
In recent years, as the fiber to the home (FTTH) technology may provide data transmission with broadband and high quality of service to the clients, the wavelength-division-multiplexed passive optical networks (WDM-PON) have attracted much attention. In actual WDM-PON system execution, the key question lies in how to realize the inexpensive optical transceiver at the optical line terminal (OLT) and the optical network unit (ONU).
Among the various transmission architectures of WDM-PON, a popular exemplary architecture is shown in
The WDM-PON technology based on reflective semiconductor optical amplifier (RSOA) is also studied and tested for the network performance under actual data transmission. An exemplary architecture is shown in
Another exemplary architecture of WDM-PON technology based on RSOA is shown in
Both of the above two WDM-PON technologies based on RSOA use distributed feedback LD (DFB-LD) as the downstream transmission data wavelength and the laser light source of seed light to RSOA. Compared to FP-LD, the laser light source based on DFB-LD is expensive and also reduces the data transmission rate. The data transmission rate is about 1.25G bits or a few tens of mega bits per second.
The exemplary embodiments according to the present invention may provide a laser source based on Fabry-Perot laser diodes (FP-LD) and the seeding method using the same.
In an exemplary embodiment, the disclosed is directed to a laser source based on FP-LD for the seeding light source of the WDM laser architecture. The laser source comprises a plurality of FP-LDs, an optical filter, and at least a fiber mirror (FM). Each FP-LD outputs a spectrum that is distributed within a range of a specific band. The optical filter filters the output spectrum of each FP-LD to identify each spectrum. The fiber mirror reflects each identified spectrum into the plurality of FP-LDs. Then, each FP-LD outputs a continuous wave (CW) as a seeding laser source.
In another exemplary embodiment, the disclosed is directed to a laser source based on FP-LD, applicable to an OLT of a transmission system. The OLT has an upstream laser source and a downstream laser source. The laser source comprises a plurality of FP-LDs with each FP-LD outputting a spectrum, an optical filter for identifying each output spectrum, and at least a fiber mirror for reflecting the identified spectrum into the plurality of FP-LDs. Then, each FP-LD uses a CW of single longitudinal mode (SLM) to output a corresponding spectrum. The OLT uses different band ranges and uses the laser source as its upstream and downstream laser sources.
Yet in another exemplary embodiment, the disclosed is directed to a seeding method using a laser source based on FP-LDs. The seeding method comprises: preparing and aligning a plurality of FP-LDs to the corresponding filter mode of an optical filter and outputting own corresponding spectrum; the optical filter filtering each spectrum of each of the plurality of FP-LDs; the filtered spectrum being reflected into the plurality of FP-LDs; and each FP-LD using a CW of SLM to output own corresponding spectrum as laser source for seeding.
The foregoing and other features, aspects and advantages of the present invention will become better understood from a careful reading of a detailed description provided herein below with appropriate reference to the accompanying drawings.
The exemplary embodiments according to the present invention may provide a laser source based on FP-LDs and the seeding method using the same.
In the exemplary embodiment of
In the exemplary embodiment, FP-LD may adopt the output spectrum, such as multi-longitudinal mode (MLM), and the front-end surface of the FP-LD has a reflectivity around 45%. This FP-LD is an inexpensive FP-LD. In addition, the threshold current Ithres and the mode spacing Δλ are 9.5 mA and 1.38 nm, respectively. The MLM FP-LD, for example, may be distributed within the C-band. Fiber mirror 330 may reflect the wavelength, for example, which may be distributed within 1500 nm-1600 nm, with 99% reflectivity. Optical filter 320, for example, may use 1×4 array waveguide grating (AWG) as the filter.
In the exemplary embodiment of laser source 310 shown in
An exemplary experimental environment may include: MLM FP-LD with bias current 25 mA, and the AWG (3-dB bandwidth 0.45 nm) corresponding mode being 1540.4 nm.
If optical filter 320 is a tunable bandpass filter (TBF), optical filter 320 may be made as the only tunable laser source with above FP-LD. As seen in the experiment, the tunable wavelength range is between 1528-1562 nm, the minimum output power is −10 dBm, and the minimum SMSR is above 40 dB.
As aforementioned, in step 610, each FP-LD may be integrated with a connected polarization controller (PC) to control the polarization state of the connected FP-LD. In addition, FP-LDs, for being used in OLT, either with the same mode spacing or with the different mode spacing may be selected to ensure the outputs of the multi-wavelength CW. In step 630, the plural filtered spectrums are reflected by at least a fiber mirror. The low-cost FP-LD component with front-end reflectivity about 45% may also be used as the fiber mirror. In step 640, the CW SLM may be used as the laser source for directly seeding to a RSOA in an ONU. Depending on the application environment, the wavelength of the CW SLM may also be amplified before seeding to the RSOA in the ONU.
Laser source 300 or 310 may be applied to the colorless light source WDM-PON transmission architecture.
Refer to
In other words, the OLU in a transmission system may use laser sources 300 or 310 architecture of different band ranges as the upstream light signal and using DFB-LD architecture as downstream laser source 720, respectively, shown as the figure to the left of the remote node in
With laser source 300 or 310 and the seeding operation, FP-LD may output the spectrum of CW SLM format. The outputted CW SLM spectrum may be used as the laser source for seeding directly to the RSOA in the ONU. Before entering the remote node (RN), the CW SLM wavelength may also be amplified by Erbium-doped fiber amplifier (EDFA) to increase the seeding power and compensate the loss of the passive components. In the WDM-PON transmission architecture of
In both colorless light source WDM-PON transmission systems 700 and 710, C-band seeding FP-LD and L-band DFB-LD may be used as the upstream and downstream light signals. In an exemplary experimental measurement, the upstream signal uses the laser source of the architecture disclosed in the present invention to seed a RSOA (with seeding wavelength 1540.5 nm) and performs 2.5 Gbit/s non-return-to-zero (NRZ) encoding modulation to the RSOA. In other words, the direct modulation is performed on the RSOA using the 2.5 Gbit/s of the 27−1 word code byte with pseudo random binary sequence (PRBS). The direct current (DC) bias and the radio frequency (RF) voltage Vp-p of the RSOA are 4V and 5.2V, respectively. In this experimental measurement, the RN uses a 1×4 AWG to separate the upstream and downstream data transmission routes, and uses CW for seeding each unit of ONU.
To prove the feasibility of using the simple and low-cost CW multi-wavelength laser architecture of the present invention to realize the colorless light source WDM-PON based on RSOA, the bit error rate (BER) of the upstream communication of the WDM-PON and corresponding eye diagram are measured in the experiment measurements. From the measurements, when the BER of the upstream communication is 10−9, the received power penalty of the upstream communication is lower than 0.5 dB. As the minimum output light power is −10 dBm in the CW multi-wavelength laser architecture of the present invention, the 2.5 Gbit/s upstream data transmission rate may be realized and maintained on the PON architecture.
In addition to serve as the CW seeding light source to the ONU, the laser source of
Referring to
In transmission architecture 800 or 810, the upstream laser source to ONU and the downstream light signal may use different bands respectively, such as C-band and L-band. The upstream output laser source and the downstream output laser source may be separated by a WDM coupler. Similarly, the addition of EDFA in the WDM-PON architecture of
In the WDM-PON architecture of
In summary, the seeding laser source based on FP-LD of the present invention may be applied to WDM-PON transmission system, such as the colorless light source WDM-PON transmission system and WDM-PON based on RSOA. The laser source is an inexpensive CW optical fiber laser source. In addition to serve as the seeding light source, the present invention may also be used as the downstream light signal. As shown in the exemplary experiment measurement, the upstream data transmission rate may reach 2.5 Gbits/s for a RSOA based transmission system. The laser source may modulate the wavelength within the range 1528-1562 nm. The minimum output power for the laser source is −10 dBm and the minimum SMSR for the laser source is above 40 dB.
Although the present invention has been described with reference to the exemplary disclosed embodiments, it will be understood that the invention is not limited to the details described thereof. Various substitutions and modifications have been suggested in the foregoing description, and others will occur to those of ordinary skill in the art. Therefore, all such substitutions and modifications are intended to be embraced within the scope of the invention as defined in the appended claims.
Number | Date | Country | Kind |
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097125759 | Jul 2008 | TW | national |