Quantitative Ultrafast Spectroscopy and Microscopy of Traditional and Soft Condensed Matter
We demonstrate and analyze a series of experiments in traditional and soft condensed matter using coherent optical spectroscopy and microscopy with ultrafast time resolution. We show the capabilities of resolving both real and imaginary parts of the third-order nonlinearity in the vicinity of Raman...
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doaj-18d051794f3c469998815aed6219e2442020-11-25T01:21:34ZengMDPI AGApplied Sciences2076-34172018-08-0188131710.3390/app8081317app8081317Quantitative Ultrafast Spectroscopy and Microscopy of Traditional and Soft Condensed MatterAdam Card0Mohammad Mokim1Feruz Ganikhanov2Department of Physics, University of Rhode Island, 2 Lippitt Road, Kingston, RI 02881, USADepartment of Physics, University of Rhode Island, 2 Lippitt Road, Kingston, RI 02881, USADepartment of Physics, University of Rhode Island, 2 Lippitt Road, Kingston, RI 02881, USAWe demonstrate and analyze a series of experiments in traditional and soft condensed matter using coherent optical spectroscopy and microscopy with ultrafast time resolution. We show the capabilities of resolving both real and imaginary parts of the third-order nonlinearity in the vicinity of Raman resonances from a medium probed within microscopic volumes with an equivalent spectral resolution of better than 0.1 cm−1. We can differentiate between vibrations of various types within unit cells of crystals, as well as perform targeted probes of areas within biological tissue. Vibrations within the TiO6 octahedron and the ones for the Ti-O-P intergroup were studied in potassium titanyl phosphate crystal to reveal a multiline structure within targeted phonon modes with closely spaced vibrations having distinctly different damping rates (~0.5 ps−1 versus ~1.1 ps−1). We also detected a 1.7–2.6 ps−1 decay of C-C stretching vibrations in fat tissue and compared that with the corresponding vibration in oil.http://www.mdpi.com/2076-3417/8/8/1317time-domain spectroscopyultrafast nonlinear opticsoptical nonlinearitymulti-photon imaginglight-matter interaction |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Adam Card Mohammad Mokim Feruz Ganikhanov |
spellingShingle |
Adam Card Mohammad Mokim Feruz Ganikhanov Quantitative Ultrafast Spectroscopy and Microscopy of Traditional and Soft Condensed Matter Applied Sciences time-domain spectroscopy ultrafast nonlinear optics optical nonlinearity multi-photon imaging light-matter interaction |
author_facet |
Adam Card Mohammad Mokim Feruz Ganikhanov |
author_sort |
Adam Card |
title |
Quantitative Ultrafast Spectroscopy and Microscopy of Traditional and Soft Condensed Matter |
title_short |
Quantitative Ultrafast Spectroscopy and Microscopy of Traditional and Soft Condensed Matter |
title_full |
Quantitative Ultrafast Spectroscopy and Microscopy of Traditional and Soft Condensed Matter |
title_fullStr |
Quantitative Ultrafast Spectroscopy and Microscopy of Traditional and Soft Condensed Matter |
title_full_unstemmed |
Quantitative Ultrafast Spectroscopy and Microscopy of Traditional and Soft Condensed Matter |
title_sort |
quantitative ultrafast spectroscopy and microscopy of traditional and soft condensed matter |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2018-08-01 |
description |
We demonstrate and analyze a series of experiments in traditional and soft condensed matter using coherent optical spectroscopy and microscopy with ultrafast time resolution. We show the capabilities of resolving both real and imaginary parts of the third-order nonlinearity in the vicinity of Raman resonances from a medium probed within microscopic volumes with an equivalent spectral resolution of better than 0.1 cm−1. We can differentiate between vibrations of various types within unit cells of crystals, as well as perform targeted probes of areas within biological tissue. Vibrations within the TiO6 octahedron and the ones for the Ti-O-P intergroup were studied in potassium titanyl phosphate crystal to reveal a multiline structure within targeted phonon modes with closely spaced vibrations having distinctly different damping rates (~0.5 ps−1 versus ~1.1 ps−1). We also detected a 1.7–2.6 ps−1 decay of C-C stretching vibrations in fat tissue and compared that with the corresponding vibration in oil. |
topic |
time-domain spectroscopy ultrafast nonlinear optics optical nonlinearity multi-photon imaging light-matter interaction |
url |
http://www.mdpi.com/2076-3417/8/8/1317 |
work_keys_str_mv |
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1725129491023396864 |