bioRxiv · 10.1101/2025.03.20.644353
Deep-Tissue Two-Photon Brain Imaging Enabled by a Tunable Fiber-Optic Dispersive Wave Generator
Abstract
Here, we present a fiber-optic dispersive wave generator for highly-efficient, wavelength-tunable ultrashort pulse generation, enabling multicolor deep-tissue two-photon imaging of neuronal and vascular structures in labeled mouse brain. Guided by comprehensive numerical simulations, a compact Yb:fiber laser-driven system is constructed that utilizes precisely parameter- and phase-matching-controlled dispersive wave generation in a photonic crystal fiber. The system delivers sub-100 fs pulses with over [~]6.7 nJ of energy across a continuously tunable spectral range of 880-950 nm, achieving a record-high optical conversion efficiency of up to 65%. Optimizing the output for two-photon excitation of enhanced Green Fluorescent Protein and SYTOX Orange enables high-resolution structural imaging in mouse hippocampus and cerebellum at depths exceeding 450 {micro}m. This technique for wavelength-tunable, high-energy and ultrashort pulse generation with record optical efficiency represents a significant advancement in ultrafast fiber laser technology for versatile biomedical two-photon imaging applications.
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Edelmann, M., Matamoros-Angles, A., Shafiq, M., Pergament, M., Glatzel, M.. 2025-03-25. Deep-Tissue Two-Photon Brain Imaging Enabled by a Tunable Fiber-Optic Dispersive Wave Generator. https://doi.org/10.1101/2025.03.20.644353
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