
pmid: 25710188
pmc: PMC4358074
arXiv: 1502.07270
handle: 20.500.14243/314311 , 11568/885984 , 11587/406684 , 11587/399242
pmid: 25710188
pmc: PMC4358074
arXiv: 1502.07270
handle: 20.500.14243/314311 , 11568/885984 , 11587/406684 , 11587/399242
A lot of research is focused on all-optical signal processing, aiming to obtain effective alternatives to existing data transmission platforms. Amplification of light in fiber optics, such as in Erbium-doped fiber amplifiers, is especially important for an efficient signal transmission. However, the complex fabrication methods, involving high-temperature processes performed in highly pure environment, slow down the fabrication and make amplified components expensive with respect to an ideal, high-throughput and room temperature production. Here, we report on near infrared polymer fiber amplifiers, working over a band of about 20 nm. The fibers are cheap, spun with a process entirely carried out at room temperature, and show amplified spontaneous emission with good gain coefficients as well as low optical losses (a few cm^-1). The amplification process is favoured by the high fiber quality and low self-absorption. The found performance metrics promise to be suitable for short-distance operation, and the large variety of commercially-available doping dyes might allow for effective multi-wavelength operation by electrospun amplified fiber optics.
27 pages, 8 figures
Condensed Matter - Materials Science, Microscopy, Confocal, Amplifiers, Electronic, Infrared Rays, plastic optical amplifier, Temperature, Materials Science (cond-mat.mtrl-sci), FOS: Physical sciences, dye-doped fibers; electrospinning; optical gain; plastic optical amplifier; Erbium; Fluorescent Dyes; Infrared Rays; Microscopy, Confocal; Polymethyl Methacrylate; Temperature; Amplifiers, Electronic; Optical Fibers, dye-doped fibers, Polymethyl Methacrylate, dye-doped fibers; electrospinning; optical gain; plastic optical amplifier; Erbium; Fluorescent Dyes; Infrared Rays; Microscopy; Confocal; Polymethyl Methacrylate; Temperature; Amplifiers; Electronic; Optical Fibers, electrospinning, Optical Fibers, optical gain, Erbium, Fluorescent Dyes
Condensed Matter - Materials Science, Microscopy, Confocal, Amplifiers, Electronic, Infrared Rays, plastic optical amplifier, Temperature, Materials Science (cond-mat.mtrl-sci), FOS: Physical sciences, dye-doped fibers; electrospinning; optical gain; plastic optical amplifier; Erbium; Fluorescent Dyes; Infrared Rays; Microscopy, Confocal; Polymethyl Methacrylate; Temperature; Amplifiers, Electronic; Optical Fibers, dye-doped fibers, Polymethyl Methacrylate, dye-doped fibers; electrospinning; optical gain; plastic optical amplifier; Erbium; Fluorescent Dyes; Infrared Rays; Microscopy; Confocal; Polymethyl Methacrylate; Temperature; Amplifiers; Electronic; Optical Fibers, electrospinning, Optical Fibers, optical gain, Erbium, Fluorescent Dyes
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