Experimental Investigation of a Hybrid S-Band Amplifier Based on Two Parametric Wavelength Converters and an Erbium-Doped Fiber Amplifier
Abstract
:1. Introduction
2. Performance of the Hybrid S-Band Amplifier
3. Power Consumption and FWM Crosstalk Analysis
- At low input power, the total SNR (solid red line with filled circles) coincides with the OSNR (solid black line with filled circles) for the FOPA-II pump power over 24.2 dBm. When the FOPA-II pump power is reduced to below 24.2 dBm, the pump power of L-band EDFA is increased to keep the same total gain, and the input idler power to the FOPA-II is correspondingly increased to compensate FOPA-II’s low CE owing to its weak pump power. This high input power of WDM channels at the FOPA-II input results in a total SNR deterioration by up to 1.3 dB at FOPA-II pump power of 22.5 dBm due to the generation of FWM Xtalk (dashed green line with filled circles).
- At medium input power, when the pump power in FOPA-II stage is lower than 24.2 dBm, the total SNR (solid red line with empty squares) is dominated by the FWM Xtalk (dashed green line with empty squares); for pump power between 24.2 and 24.8 dBm, the noise contributions from the OSNR (solid black line with empty squares) and FWM Xtalk are comparable; and when the pump power is above 24.8 dBm, the OSNR is dominating the performance. For low FOPA-II pump power, the third-stage CE is low, which forces the L-band amplifier to generate strong L-band idlers going into the FOPA-II, which causes high FWM Xtalk. At high FOPA-II pump powers the CE is high, and the L-band idler power going into the FOPA-II is low, which reduces the Xtalk. These observations give guidance on how to choose the FOPA-II pump power to obtain an optimal total SNR for the hybrid S-band amplifier.
- At high input power (and consequently high output power), the total SNR (solid red line with filled triangles) and –Xtalk curves (dashed green line with filled triangles) coincide with each other, indicating that the total SNR of the amplified (output) S-band signal is dominated by the FWM Xtalk. Even at the highest FOPA-II pump power (corresponding to the highest CE) the total SNR is still almost 12 dB worse than the OSNR (solid black line with filled triangles). When the FOPA-II pump power is reduced to below 23.8 dBm, the L-band EDFA gain becomes saturated and cannot increase enough to achieve the total 20 dB gain target. Thus, the hybrid amplifier with FOPA-based wavelength converters cannot achieve high output powers without significant performance degradation by the FWM Xtalk. This drawback can be mitigated significantly using a platform based on the second-order nonlinearity, such as periodically poled LiNbO3 (PPLN) waveguides [32,33], which does not produce the inter-channel FWM. However, this requires integrated PPLN photonic circuits with precise temperature tuning, which are currently custom-made and are not available commercially.
- For low input power, the maximum total SNR and minimum total power consumption are achieved simultaneously when FOPA-II pump power is equal to 23.5 dBm. Since the total SNR penalty from the FWM Xtalk is very low (0.4 dB for 23.5 dBm FOPA-II pump power), the total SNR stays almost constant when the FOPA-II pump power increases. At the same time, the total pump power consumption increases, because the unsaturated (linear) L-band EDFA is more power efficient than the FOPA-II. For the pump power below 23.5 dBm, the total pump power stays constant at ~1280 mW, because the L-band EDFA goes into saturation, where it has comparable power efficiency to FOPA-II.
- For medium input power, the total SNR monotonically increases with the FOPA-II pump power, because the higher CE of FOPA-II reduces the L-band input power in the FOPA-II, resulting in lower FWM Xtalk. The total pump power varies very little for FOPA-II powers at or below 24.5 dBm, since the L-band EDFA is working in a saturation mode with power efficiency comparable to that of the FOPA-II. Above the 24.5 dBm power point, the total SNR improvement occurs at the expense of higher total power consumption, since the L-band EDFA is working in the more power-efficient unsaturated regime, whereas any additional gain is provided by the less power-efficient FOPA-II.
- At high input power, raising the pump power into the FOPA-II stage notably increases the CE, yielding both total power savings and performance (total SNR) improvements. This is because the L-band EDFA is working in the saturation regime, losing its power efficiency advantage over the FOPA-II. Growth of the CE with FOPA-II pump power allows for lower L-band input power into the FOPA-II, resulting in lower FWM Xtalk.
4. Discussion and Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Channel Number | FOPA-I CE (dB) | L-Band EDFA Gain (dB) | FOPA-II CE (dB) | Total Gain (dB) |
---|---|---|---|---|
1 | 9.8 | 15.4 | 1.9 | 27.1 |
2 | 9.4 | 15.4 | 2.2 | 27.0 |
3 | 9.4 | 15.5 | 2.1 | 27.0 |
4 | 9.6 | 15.5 | 1.9 | 26.9 |
5 | 7.8 | 15.5 | 3.6 | 26.9 |
6 | 7.8 | 15.5 | 3.2 | 26.5 |
7 | 7.8 | 15.4 | 3.0 | 26.2 |
8 | 7.6 | 15.5 | 2.7 | 25.8 |
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Guo, C.; Shamsshooli, A.; Vasilyev, M.; Akasaka, Y.; Palacharla, P.; Sugizaki, R.; Takasaka, S. Experimental Investigation of a Hybrid S-Band Amplifier Based on Two Parametric Wavelength Converters and an Erbium-Doped Fiber Amplifier. Photonics 2025, 12, 100. https://doi.org/10.3390/photonics12020100
Guo C, Shamsshooli A, Vasilyev M, Akasaka Y, Palacharla P, Sugizaki R, Takasaka S. Experimental Investigation of a Hybrid S-Band Amplifier Based on Two Parametric Wavelength Converters and an Erbium-Doped Fiber Amplifier. Photonics. 2025; 12(2):100. https://doi.org/10.3390/photonics12020100
Chicago/Turabian StyleGuo, Cheng, Afshin Shamsshooli, Michael Vasilyev, Youichi Akasaka, Paparao Palacharla, Ryuichi Sugizaki, and Shigehiro Takasaka. 2025. "Experimental Investigation of a Hybrid S-Band Amplifier Based on Two Parametric Wavelength Converters and an Erbium-Doped Fiber Amplifier" Photonics 12, no. 2: 100. https://doi.org/10.3390/photonics12020100
APA StyleGuo, C., Shamsshooli, A., Vasilyev, M., Akasaka, Y., Palacharla, P., Sugizaki, R., & Takasaka, S. (2025). Experimental Investigation of a Hybrid S-Band Amplifier Based on Two Parametric Wavelength Converters and an Erbium-Doped Fiber Amplifier. Photonics, 12(2), 100. https://doi.org/10.3390/photonics12020100