Title :
Ultrafast Pulsed All-Fiber Laser Based on Tapered Fiber Enclosed by Few-Layer WS2 Nanosheets
Author :
Khazaeinezhad, Reza ; Kassani, Sahar Hosseinzadeh ; Hwanseong Jeong ; Kyung Jun Park ; Byoung Yoon Kim ; Dong-Il Yeom ; Kyunghwan Oh
Author_Institution :
Photonic Device Phys. Lab., Yonsei Univ., Seoul, South Korea
Abstract :
We demonstrate all-fiber mode-locked laser based on a tapered optical fiber saturable absorber (SA) enclosed in tungsten disulfide (WS2) nanosheets. Tapered fibers were fabricated using the standard flame brushing method to an interaction length of 3 mm with waist diameters of 10 and 15 μm. WS2 nanosheets were prepared via a liquid phase exfoliation method to form a uniform dispersion. Subsequently, the WS2 nanosheets were optically deposited along the interaction length of the tapered fibers by evanescent field interactions. We built a ring laser including the fabricated mode-lockers. The SA with a 10-μm taper diameter delivers the pulses with a pulse duration of 369 fs and 3-dB spectral bandwidth of 7.5 nm; on the other hand, the output pulses using the mode-locker with 15-μm waist diameter were found to have 563-fs pulse duration and 5.2 nm of 3-dB bandwidth. It is shown that the smaller waist diameter of tapered fiber causes wider spectral bandwidth of the ultrafast pulses and narrower 3-dB bandwidth.
Keywords :
fibre lasers; high-speed optical techniques; nanophotonics; optical fibre dispersion; optical fibre fabrication; optical saturable absorption; ring lasers; tungsten compounds; WS2; evanescent field interactions; few-layer WS2 nanosheets; flame brushing method; liquid phase exfoliation; mode-locked laser; pulse duration; ring laser; spectral bandwidth; tapered optical fiber saturable absorber; time 369 fs; time 563 fs; tungsten disulfide nanosheets; ultrafast pulsed all-fiber laser; uniform dispersion; wavelength 5.2 nm; Erbium-doped fiber lasers; Laser mode locking; Optical fiber devices; Optical fiber dispersion; Optical fiber polarization; Mode-locked fiber laser; Tungsten disulfide; nonlinear optical materials; saturable absorber; tapered optical fiber;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2015.2426178