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Updated: Jan 11, 2026

Optical Trapping of Plasmonic Nanoparticles for In Situ Surface-Enhanced Raman Spectroscopy Characterizations
Published on: June 23, 2022
A novel single-particle Raman spectrometer based on switchable dual-wavelength optical trapping: System design and
Yuhui Li1, Ning Chen1, Jin Yang1
1Hefei National Laboratory for Physical Sciences at the Microscale, Department of Chemical Physics, University of Science and Technology of China, Hefei 230026, China.
Abstract:
This study presents the development and application of a novel switchable dual-wavelength optical tweezers micro-confocal Raman spectrometer (DOT-MRS), integrating 532 nm (visible) and 780 nm (near-infrared) lasers into a single confocal optical path. The system addresses key limitations of conventional single-wavelength optical-tweezers Raman systems, such as fluorescence interference and photodamage to organic/biomolecular samples. By enabling independent or combined use of the two wavelengths, DOT-MRS offers enhanced flexibility, as the 532 nm laser provides high Raman scattering efficiency for non-fluorescent samples, while the 780 nm laser minimizes fluorescence background and photodamage for chromophore-containing particles. A series of experiments were performed to validate the system's performance on single-crystal silicon, polystyrene microspheres, fluorescent particles, and potassium oxalate aerosols, demonstrating micrometer-scale spatial resolution, stable trapping, and high-quality Raman spectra. Notably, the dual-wavelength design allows for decoupling of trapping and probing functions, significantly improving sensitivity for weakly scattering samples. This innovation expands the capabilities of optical-tweezers Raman systems for diverse applications in aerosol science, biophysics, and colloidal chemistry.
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