Title :
High-Bandwidth Graded-Index Plastic Optical Fiber With Low-Attenuation, High-Bending Ability, and High-Thermal Stability for Home-Networks
Author :
Asai, Makoto ; Inuzuka, Yukari ; Koike, Kotaro ; Takahashi, Satoshi ; Koike, Yasuhiro
Author_Institution :
Inst. for Solid State Physic, Univ. of Tokyo, Chiba, Japan
fDate :
6/1/2011 12:00:00 AM
Abstract :
The graded-index plastic optical fiber (GI-POF) is expected to be a communication medium for the next-generation optical home network because of its simple-to-use connection, installation, and high bandwidth. In spite of the expectation, we had a problem that a typical GI-POF using poly (methyl methacrylate) (PMMA) had high transmission loss in the expected communication wavelength band (VCSEL: 670-680 nm) for home networks; the required values of being below 200 dB/km could not be achieved. We, therefore, propose poly (2, 2, 2-trichloroethyl methacrylate) (PTCEMA) as a base material for the GI-POF. A PTCEMA-based GI-POF was fabricated, and its characteristics were evaluated. The PTCEMA is a prominent material in terms of its transparency and heat-resistant property. Our results demonstrated that the fabricated fiber surpassed the desired characteristics for the home network pertaining to attenuation and heat resistance. Specifically, the attenuation in the wavelength band (670-680 nm) was 104-136 dB/km, and the glass transition temperature (Tg) was 102°C in the core center where the Tg was at its lowest. Moreover, we confirmed that our PTCEMA-based GI-POF had sufficient mechanical strength and low bending loss. These results indicate that our novel GI-POF can be a candidate for home networks.
Keywords :
glass transition; gradient index optics; laser cavity resonators; mechanical strength; optical fibre dispersion; optical fibre fabrication; optical fibre losses; optical fibre networks; optical fibres; optical polymers; stress-strain relations; surface emitting lasers; thermal stability; transparency; VCSEL; glass transition temperature; heat resistance; high bending ability; high thermal stability; high-bandwidth graded-index plastic optical fiber; low attenuation; low bending loss; mechanical strength; next-generation optical home network; poly (2, 2, 2-trichloroethyl methacrylate); transparency; wavelength 670 nm to 680 nm; Attenuation; Bandwidth; Optical fiber dispersion; Optical fibers; Polymers; Refractive index; Graded index plastic optical fiber; high bending ability; high thermal stability; home-networks;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2011.2134834