High-speed stimulated hyperspectral Raman imaging using rapid acousto-optic delay lines
Mohammed S. Alshaykh, Chien‐Sheng Liao, Oscar E. Sandoval, Grégory Gitzinger, Nicolas Forget, Daniel E. Leaird, Ji‐Xin Cheng, Andrew M. Weiner
Abstract
Mohammed S. Alshaykh, Chien‐Sheng Liao, Oscar E. Sandoval, Grégory Gitzinger, Nicolas Forget, Daniel E. Leaird, Ji‐Xin Cheng, Andrew M. Weiner
Abstract
Stimulated Raman scattering (SRS) is a powerful, label-free imaging technique that holds significant potential for medical imaging. To allow chemical specificity and minimize spectral distortion in the imaging of live species, a high-speed multiplex SRS imaging platform is needed. By combining a spectral focusing excitation technique with a rapid acousto-optic delay line, we demonstrate a hyperspectral SRS imaging platform capable of measuring a 3-dB spectral window of ∼200 cm−1 within 12.8 μs with a scan rate of 30 KHz. We present hyperspectral images of a mixture of two different microsphere polymers as well as live fungal cells mixed with human blood.
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Stimulated Raman scattering (SRS) is a powerful, label-free imaging technique that holds significant potential for medical imaging. To allow chemical specificity and minimize spectral distortion in the imaging of live species, a high-speed multiplex SRS imaging platform is needed. By combining a spectral focusing excitation technique with a rapid acousto-optic delay line, we demonstrate a hyperspectral SRS imaging platform capable of measuring a 3-dB spectral window of ∼200 cm−1 within 12.8 μs with a scan rate of 30 KHz. We present hyperspectral images of a mixture of two different microsphere polymers as well as live fungal cells mixed with human blood.
Key concepts: Hyperspectral imaging, Optics, Spectral imaging, Materials science, Chemical imaging, Raman scattering, Full spectral imaging, Medical imaging