DocumentCode :
83510
Title :
Advanced Fiber Soliton Sources for Nonlinear Deep Tissue Imaging in Biophotonics
Author :
Ke Wang ; Horton, Nicholas G. ; Charan, Kriti ; Xu, Changsheng
Author_Institution :
Key Lab. of Optoelectron. Devices & Syst., Shenzhen Univ., Shenzhen, China
Volume :
20
Issue :
2
fYear :
2014
fDate :
March-April 2014
Firstpage :
50
Lastpage :
60
Abstract :
Optical imaging plays a major role in both basic biological research and clinical diagnostics, providing noninvasive or minimally invasive microscopic imaging capability to investigate biological tissues. Optical image acquisition through significant depths of biological tissues, however, presents a major challenge since tissue is extremely heterogeneous and the strong scattering of the various tissue components has restricted high-resolution optical imaging to superficial layers. Multiphoton microscopy (MPM) has significantly extended the penetration depth of high-resolution optical imaging, particularly for in vivo applications. Multiphoton imaging critically depends on ultrafast technologies, particularly pulsed excitation sources. In this paper, the basics of deep tissue MPM and its improvements utilizing soliton self-frequency shift (SSFS) are reviewed. Wavelength tunable, high-energy soliton generation through SSFS in large-mode-area (LMA) fibers and photonic crystal rods is presented. The application of these solitons to MPM enables noninvasive imaging in biological tissues with unprecedented depth. The main characteristics of the excitation source for deep tissue MPM, such as wavelength, pulse energy, and repetition rate, are discussed.
Keywords :
bio-optics; biological tissues; biomedical optical imaging; high-speed optical techniques; light scattering; multiphoton processes; optical fibres; optical solitons; photonic crystals; SSFS; advanced fiber soliton sources; basic biological research; biological tissue; biophotonics; clinical diagnostics; deep tissue MPM; high-energy soliton generation; high-resolution optical imaging; large-mode-area fibers; light scattering; minimally invasive microscopic imaging capability; multiphoton imaging; multiphoton microscopy; nonlinear deep tissue imaging; optical image acquisition; penetration depth; photonic crystal rod; pulse energy; pulsed excitation source; repetition rate; soliton self-frequency shift; superficial layers; tissue component; ultrafast technology; wavelength tunable soliton generation; Absorption; Optical fiber dispersion; Optical fibers; Optical imaging; Scattering; Solitons; Biomedical optical imaging; biophotonics; fiber nonlinear optics; optical solitons; soliton self-frequency shift (SSFS);
fLanguage :
English
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
1077-260X
Type :
jour
DOI :
10.1109/JSTQE.2013.2276860
Filename :
6579662
Link To Document :
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