Title :
Nonlinear Light Microscopy by a 1.2-
m Fiber-Laser-Based Femtosecond Dispersive Wave Source
Author :
Hsien-Yi Wang ; Shiuan-Wen Huang ; Dean-Ru Li ; Bor-Shyh Lin ; Ming-Che Chan
Author_Institution :
Dept. of Nephrology, Chi-Mei Med. Center, Tainan, Taiwan
Abstract :
A fiber-laser-based femtosecond dispersive wave laser source, operated within the 1.2to 1.3-μm bio-penetration wavelength window, and its application on nonlinear light microscopy were both demonstrated in this paper. This portable 1.2-μm femtosecond fiber-optic source was composed of an all-fiber 1.55-μm mode-locked erbium-doped fiber laser as the excitation source and a nonlinear fiber as a frequency up converter. The 1.2-μm femtosecond radiations with an up to a 55-mW output power and a 125-fs pulsewidth were experimentally demonstrated. By the fiber-based 1.2-μm femtosecond dispersive wave source, nonlinear laser scanning microscopy, including two-photon fluorescence and second-harmonic generation microscopy, was also performed within the 1.2to 1.3-μm bio-penetration window in this report. The fiber-based 1.2-μm femtosecond light source, with a simple system configuration, turn-key operation, and a miniaturized package, shows great potential for nonlinear light microscopy and other related applications outside of the laboratory.
Keywords :
bio-optics; biomedical optical imaging; erbium; fibre lasers; fluorescence; high-speed optical techniques; laser applications in medicine; laser mode locking; optical frequency conversion; optical harmonic generation; optical microscopy; two-photon spectra; all-fiber mode-locked erbium-doped fiber laser; bio-penetration wavelength window; fiber laser-based femtosecond dispersive wave source; frequency up converter; miniaturized package; nonlinear fiber; nonlinear laser scanning microscopy; nonlinear light microscopy; output power; portable femtosecond fiber optic source; second harmonic generation microscopy; time 125 fs; turn-key operation; two-photon fluorescence microscopy; wavelength 1.2 mum to 1.55 mum; Erbium-doped fiber lasers; Laser excitation; Laser mode locking; Optical fiber dispersion; Optical fiber polarization; Ultrafast optics; Bio-Photonics; Dispersive Wave; Fiber laser; Nonlinear Fiber Optics; Nonlinear Microscopy; Passive Mode-Locking; bio-photonics; dispersive wave; nonlinear fiber optics; nonlinear microscopy; passive mode-locking;
Journal_Title :
Photonics Journal, IEEE
DOI :
10.1109/JPHOT.2015.2432077