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Fu, Dan

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Fu, Dan

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Now showing 1 - 3 of 3
  • Publication

    Multicolor Stimulated Raman Scattering Microscopy with a Rapidly Tunable Optical Parametric Oscillator

    (Optical Society of America, 2013) Kong, Lingjie; Ji, Minbiao; Holtom, Gary R.; Fu, Dan; Freudiger, Christian Wilhelm; Xie, Xiaoliang

    Stimulated Raman scattering (SRS) microscopy allows label-free chemical imaging based on vibrational spectroscopy. Narrowband excitation with picosecond lasers creates the highest signal levels and enables imaging speeds up to video-rate, but it sacrifices chemical specificity in samples with overlapping bands compared to broadband (multiplex) excitation. We develop a rapidly tunable picosecond optical parametric oscillator with an electro-optical tunable Lyot filter, and demonstrate multicolor SRS microscopy with synchronized line-by-line wavelength tuning to avoid spectral artifacts due to sample movement. We show sensitive imaging of three different kinds of polymer beads and live HeLa cells with moving intracellular lipid droplets.

  • Publication

    Label-Free Live-Cell Imaging of Nucleic Acids Using Stimulated Raman Scattering Microscopy

    (John Wiley and Sons, 2012) Zhang, Xu; Roeffaers, Maarten B. J.; Basu, Srinjan; Daniele, Joseph R.; Fu, Dan; Freudiger, Christian Wilhelm; Holtom, Gary R.; Xie, Xiaoliang

    Imaging of nucleic acids is important for studying cellular processes such as cell division and apoptosis. A noninvasive label-free technique is attractive. Raman spectroscopy provides rich chemical information based on specific vibrational peaks. However, the signal from spontaneous Raman scattering is weak and long integration times are required, which drastically limits the imaging speed when used for microscopy. Coherent Raman scattering techniques, comprising coherent anti-Stokes Raman scattering (CARS) and stimulated Raman scattering (SRS) microscopy, overcome this problem by enhancing the signal level by up to five orders of magnitude. CARS microscopy suffers from a nonresonant background signal, which distorts Raman spectra and limits sensitivity. This makes CARS imaging of weak transitions in spectrally congested regions challenging. This is especially the case in the fingerprint region, where nucleic acids show characteristic peaks. The recently developed SRS microscopy is free from these limitations; excitation spectra are identical to those of spontaneous Raman and sensitivity is close to shot-noise limited. Herein we demonstrate the use of SRS imaging in the fingerprint region to map the distribution of nucleic acids in addition to proteins and lipids in single salivary gland cells of Drosophila larvae, and in single mammalian cells. This allows the imaging of DNA condensation associated with cell division and opens up possibilities of imaging such processes in vivo.

  • Publication

    Fiber Four-Wave Mixing Source for Coherent Anti-Stokes Raman Scattering Microscopy

    (The Optical Society, 2012) Lefrancois, Simon; Fu, Dan; Holtom, Gary R.; Kong, Lingjie; Wadsworth, William J.; Schneider, Patrick; Herda, Robert; Zach, Armin; Xie, Xiaoliang; Wise, Frank W.

    We present a fiber-format picosecond light source for coherent anti-Stokes Raman scattering microscopy. Pulses from an Yb-doped fiber amplifier are frequency-converted by four-wave mixing in normal dispersion photonic crystal fiber to produce a synchronized two-color picosecond pulse train. We show that seeding the four-wave mixing process overcomes the deleterious effects of group-velocity mismatch and allows efficient conversion into narrow frequency bands. The source generates more than 160 mW of nearly-transform-limited pulses tunable from 775 to 815 nm. High-quality coherent Raman images of animal tissues and cells acquired with this source are presented.