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Title
Confocal nonlinear optical imaging on hexagonal boron nitride nanosheets
Issued Date
2023-08
Citation
Lee, Gwanjin. (2023-08). Confocal nonlinear optical imaging on hexagonal boron nitride nanosheets. PhotoniX, 4(1). doi: 10.1186/s43074-023-00103-6
Type
Article
Author Keywords
Hexagonal boron nitride nanosheetsSub-diffraction-limited nonlinear optical microscopyCoherent anti-Stokes Raman spectroscopy2D materialsUltrafast phonon dynamics
Keywords
STOKES-RAMAN SCATTERINGSINGLE-PHOTON EMISSIONPOINT-DEFECTSGRAPHENESPECTROSCOPYPOLARITONSMICROSCOPYDYNAMICS
ISSN
2662-1991
Abstract
Optical microscopy with optimal axial resolution is critical for precise visualization of two-dimensional flat-top structures. Here, we present sub-diffraction-limited ultrafast imaging of hexagonal boron nitride (hBN) nanosheets using a confocal focus-engineered coherent anti-Stokes Raman scattering (cFE-CARS) microscopic system. By incorporating a pinhole with a diameter of approximately 30μm, we effectively minimized the intensity of side lobes induced by circular partial pi-phase shift in the wavefront (diameter, d0) of the probe beam, as well as nonresonant background CARS intensities. Using axial-resolution-improved cFE-CARS (acFE-CARS), the achieved axial resolution is 350nm, exhibiting a 4.3-folded increase in the signal-to-noise ratio compared to the previous case with 0.58 d0 phase mask. This improvement can be accomplished by using a phase mask of 0.24 d0. Additionally, we employed nondegenerate phase matching with three temporally separable incident beams, which facilitated cross-sectional visualization of highly-sample-specific and vibration-sensitive signals in a pump-probe fashion with subpicosecond time resolution. Our observations reveal time-dependent CARS dephasing in hBN nanosheets, induced by Raman-free induction decay (0.66ps) in the 1373cm−1 mode. © 2023, Chinese Society for Optical Engineering.
URI
http://hdl.handle.net/20.500.11750/46696
DOI
10.1186/s43074-023-00103-6
Publisher
Springer Nature
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이재동
Lee, JaeDong이재동

Department of Physics and Chemistry

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