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This book describes a simple yet innovative method for performing
Raman spectroscopy of samples submerged under liquid nitrogen.
While Raman spectroscopy has proven to be a powerful tool for the
characterization of the structure of matter in the gaseous, liquid,
and solid phases, one major difficulty in its application has been
laser damage to the material under investigation, especially for
biological samples. This book demonstrates how immersion of the
sample in liquid nitrogen protects the sample from thermal
degradation and oxidation at high incident laser power and allows
improvements in sensitivity and spectral resolution over
room-temperature Raman spectroscopy, leading to the so-called RUN
(Raman Spectroscopy Under liquid Nitrogen) technique. Cooling to
liquid nitrogen temperature also allows the selection of the lowest
energy molecular conformation for molecules which may have many low
energy conformers. In addition, the presence of liquid nitrogen
over a roughened surface improves the sensitivity of Surface
Enhanced Raman Spectroscopy (SERS), enabling the closely related
SERSUN (Surface-Enhanced Raman Spectroscopy Under liquid Nitrogen)
technique. This book starts with the theoretical and experimental
basics of Raman and polarized Raman spectroscopy, before moving on
to detailed descriptions of RUN and SERSUN. Room temperature and
RUN spectra are provided for over fifty molecules.
Lasers are employed throughout science and technology, in
fundamental research, the remote sensing of atmospheric gases or
pollutants, communications, medical diagnostics and therapies, and
the manufacturing of microelectronic devices. Understanding the
principles of their operation, which underlie all of these areas,
is essential for a modern scientific education. This text
introduces the characteristics and operation of lasers through
laboratory experiments designed for the undergraduate curricula in
Chemistry and Physics. Introductory chapters describe the
properties of light, the history of laser invention, the atomic,
molecular and optical principles behind how lasers work, and the
kinds of lasers available today. Other chapters include the basic
theory of spectroscopy and computational chemistry used to
interpret laser experiments. Experiments range from simple in-class
demonstrations to more elaborate configurations for advanced
students. Each chapter has historical and theoretical background,
as well as options suggested for variations on the prescribed
experiments. The text will be useful for undergraduates students in
advanced lab classes, for instructors designing these classes, or
for graduate students beginning a career in laser science.
This book describes a simple yet innovative method for performing
Raman spectroscopy of samples submerged under liquid nitrogen.
While Raman spectroscopy has proven to be a powerful tool for the
characterization of the structure of matter in the gaseous, liquid,
and solid phases, one major difficulty in its application has been
laser damage to the material under investigation, especially for
biological samples. This book demonstrates how immersion of the
sample in liquid nitrogen protects the sample from thermal
degradation and oxidation at high incident laser power and allows
improvements in sensitivity and spectral resolution over
room-temperature Raman spectroscopy, leading to the so-called RUN
(Raman Spectroscopy Under liquid Nitrogen) technique. Cooling to
liquid nitrogen temperature also allows the selection of the lowest
energy molecular conformation for molecules which may have many low
energy conformers. In addition, the presence of liquid nitrogen
over a roughened surface improves the sensitivity of Surface
Enhanced Raman Spectroscopy (SERS), enabling the closely related
SERSUN (Surface-Enhanced Raman Spectroscopy Under liquid Nitrogen)
technique. This book starts with the theoretical and experimental
basics of Raman and polarized Raman spectroscopy, before moving on
to detailed descriptions of RUN and SERSUN. Room temperature and
RUN spectra are provided for over fifty molecules.
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