研究目的
Investigating the development of Er-doped polymer-based waveguide amplifiers for board-level optical interconnects to overcome the limitations of purely passive systems.
研究成果
The study demonstrates the potential of Er-doped polymer waveguide amplifiers for board-level optical interconnects, highlighting the importance of reducing scattering losses and optimizing Er-Yb co-doping ratios for high-gain amplification.
研究不足
High scattering losses due to nanoparticle clustering in the polymer matrix and the need for improved dispersion methods to achieve efficient optical amplifiers.
1:Experimental Design and Method Selection:
The study investigates two approaches for integrating Er-doped materials into siloxane polymer: ultrafast laser plasma implantation and solution-based dispersion of Er-doped nanoparticles.
2:Sample Selection and Data Sources:
Er-doped tellurite glass targets and Er-doped nanoparticles are used.
3:List of Experimental Equipment and Materials:
Includes siloxane-type WG-2020 and WG-2021 Optical Elastomers, FS920 spectrometer, tuneable laser (HP 8168E), and optical spectrum analyser (Yokogawa AQ6370D).
4:Experimental Procedures and Operational Workflow:
Fabrication of Er-doped polymer thin films, measurement of photoluminescence spectrum and lifetime, and characterization of waveguide loss performance.
5:Data Analysis Methods:
Use of McCumber theorem to derive Er absorption cross section and multi-level rate equations model for amplifier simulation.
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FS920 spectrometer
FS920
Edinburgh Instruments
Measurement of photoluminescence spectrum and lifetime
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Yokogawa AQ6370D
AQ6370D
Yokogawa
Optical spectrum analyser for waveguide measurements
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WG-2020
Dow Corning
Core material for polymer waveguides
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WG-2021
Dow Corning
Cladding material for polymer waveguides
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HP 8168E
8168E
HP
Tuneable laser for waveguide measurements
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