Coherent Nonlinear Optical Imaging: Beyond Fluorescence Microscopy

Author:

Min Wei12,Freudiger Christian W.12,Lu Sijia1,Xie X. Sunney1

Affiliation:

1. Department of Chemistry and Chemical Biology, and 2Department of Physics, Harvard University, Cambridge, Massachusetts 02138;

2. Current address: Department of Chemistry, Columbia University, New York, New York 10027

Abstract

The quest for ultrahigh detection sensitivity with spectroscopic contrasts other than fluorescence has led to various novel approaches to optical microscopy of biological systems. Coherent nonlinear optical imaging, especially the recently developed nonlinear dissipation microscopy (including stimulated Raman scattering and two-photon absorption) and pump-probe microscopy (including excited-state absorption, stimulated emission, and ground-state depletion), provides new image contrasts for nonfluorescent species. Thanks to the high-frequency modulation transfer scheme, these imaging techniques exhibit superb detection sensitivity. By directly interrogating vibrational and/or electronic energy levels of molecules, they offer high molecular specificity. Here we review the underlying principles and excitation and detection schemes, as well as exemplary biomedical applications of this emerging class of molecular imaging techniques.

Publisher

Annual Reviews

Subject

Physical and Theoretical Chemistry

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