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Nonlinear Midinfrared Photothermal Spectroscopy Using Zharov Splitting and Quantum Cascade Lasers. | LitMetric

Nonlinear Midinfrared Photothermal Spectroscopy Using Zharov Splitting and Quantum Cascade Lasers.

ACS Photonics

Division of Materials Science and Engineering, Photonics Center, Department of Electrical and Computer Engineering, Department of Physics, Department of Biomedical Engineering, and Department of Chemistry, Boston University, Boston, Massachusetts 02215, United States ; Division of Materials Science and Engineering, Photonics Center, Department of Electrical and Computer Engineering, Department of Physics, Department of Biomedical Engineering, and Department of Chemistry, Boston University, Boston, Massachusetts 02215, United States ; Division of Materials Science and Engineering, Photonics Center, Department of Electrical and Computer Engineering, Department of Physics, Department of Biomedical Engineering, and Department of Chemistry, Boston University, Boston, Massachusetts 02215, United States.

Published: August 2014

We report on the mid-infrared nonlinear photothermal spectrum of the neat liquid crystal 4-octyl-4'-cyanobiphenyl (8CB) using a tunable Quantum Cascade Laser (QCL). The nonequilibrium steady state characterized by the nonlinear photothermal infrared response undergoes a supercritical bifurcation. The bifurcation, observed in heterodyne two-color pump-probe detection, leads to ultrasharp nonlinear infrared spectra similar to those reported in the visible region. A systematic study of the peak splitting as a function of absorbed infrared power shows the bifurcation has a critical exponent of 0.5. The observation of an apparently universal critical exponent in a nonequilibrium state is explained using an analytical model analogous of mean field theory. Apart from the intrinsic interest for nonequilibrium studies, nonlinear photothermal methods lead to a dramatic narrowing of spectral lines, giving rise to a potential new contrast mechanism for the rapidly emerging new field of mid-infrared microspectroscopy using QCLs.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4270413PMC
http://dx.doi.org/10.1021/ph500114hDOI Listing

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