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Design of Magnetic Fluid-Enhanced Optical Fiber Polarization Filter
by
Chen, Haixu
, Zhang, Lianzhen
, Ding, Xin
in
Bandwidths
/ Communication
/ Crystal fibers
/ Equipment and supplies
/ Fiber optics
/ fiber polarization filter
/ Gold
/ Magnetic fields
/ magnetic fluid
/ Magnetic fluids
/ Magnetic resonance
/ Numerical analysis
/ Optical fibers
/ photonic crystal fiber
/ Photonic crystals
/ Polarization
/ Simulation methods
/ Surface plasmon resonance
2024
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Design of Magnetic Fluid-Enhanced Optical Fiber Polarization Filter
by
Chen, Haixu
, Zhang, Lianzhen
, Ding, Xin
in
Bandwidths
/ Communication
/ Crystal fibers
/ Equipment and supplies
/ Fiber optics
/ fiber polarization filter
/ Gold
/ Magnetic fields
/ magnetic fluid
/ Magnetic fluids
/ Magnetic resonance
/ Numerical analysis
/ Optical fibers
/ photonic crystal fiber
/ Photonic crystals
/ Polarization
/ Simulation methods
/ Surface plasmon resonance
2024
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Do you wish to request the book?
Design of Magnetic Fluid-Enhanced Optical Fiber Polarization Filter
by
Chen, Haixu
, Zhang, Lianzhen
, Ding, Xin
in
Bandwidths
/ Communication
/ Crystal fibers
/ Equipment and supplies
/ Fiber optics
/ fiber polarization filter
/ Gold
/ Magnetic fields
/ magnetic fluid
/ Magnetic fluids
/ Magnetic resonance
/ Numerical analysis
/ Optical fibers
/ photonic crystal fiber
/ Photonic crystals
/ Polarization
/ Simulation methods
/ Surface plasmon resonance
2024
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Design of Magnetic Fluid-Enhanced Optical Fiber Polarization Filter
Journal Article
Design of Magnetic Fluid-Enhanced Optical Fiber Polarization Filter
2024
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Overview
In this paper, we demonstrated a method of filling the air holes of a photonic crystal fiber (PCF), coated with gold film, with magnetic fluid (MF) to enhance the Surface Plasmon Resonance (SPR). The simulation results show that at the wavelength of 1260–1675 nm, the minimum loss coefficient of the y-polarization mode is 4.7 times that before filling with MF, and the x-polarization mode is 0.45 times greater. Then, based on this method, we designed a polarizing filter with a core diameter of 9 µm. The numerical simulation results indicate that it not only maintains the same core diameter as the single-mode fiber, but also has a larger bandwidth and a higher extinction ratio (ER). Additionally, we can optimize its ER at a specific wavelength by adjusting the magnetic field.
Publisher
MDPI AG,MDPI
Subject
/ Gold
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