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Confocal nonlinear optical imaging on hexagonal boron nitride nanosheets

Title
Confocal nonlinear optical imaging on hexagonal boron nitride nanosheets
Author(s)
Lee, GwanjinJyothsna, Konkada ManattayilPark, JonghooLee, JaeDongRaghunathan, VarunKim, Hyunmin
Issued Date
2023-08
Citation
PhotoniX, v.4, no.1
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
Related Researcher
  • 이재동 Lee, JaeDong
  • Research Interests Theoretical Condensed Matter Physics; Ultrafast Dynamics and Optics; Nonequilibrium Phenomena
Files in This Item:
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Appears in Collections:
Department of Physics and Chemistry Light and Matter Theory Laboratory 1. Journal Articles
Division of Biotechnology 1. Journal Articles

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