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IR Frequency Region: X–H Stretching01:24

IR Frequency Region: X–H Stretching

In IR spectroscopy, signals produced by the X−H bonds (such as C−H, O−H, or N−H) can be observed in the frequency range of  2700–4000 cm–1. The C−H stretching vibration forms sharp bands in the region 2850–3000 cm–1. The presence of the O−H stretching vibration leads to the forming of an absorption band in the frequency range 3650–3200 cm−1. At the same time, N−H stretching can be confirmed by absorption bands in the 3500–3100 cm−1 range. Even though both O−H and N−H bonds vibrate at a similar...
IR Frequency Region: Fingerprint Region01:03

IR Frequency Region: Fingerprint Region

IR spectra are divided into two main regions: the diagnostic region and the fingerprint region. The diagnostic region of the spectrum lies above 1500 cm−1. The absorptions resulting from single-bond vibrations of the N–H, C–H, and O–H stretch at higher wavenumbers and appear on the left side of the spectrum. The stretching absorptions of the C≡C and C≡N occur between 2100–2300 cm−1. In contrast, those arising from stretching absorptions of the C=O, C=N, and C=C occur between 1600–1850 cm−1.
The...
IR Frequency Region: Alkyne and Nitrile Stretching01:22

IR Frequency Region: Alkyne and Nitrile Stretching

Both alkyne (C≡C) and nitrile (C≡N) functional groups contain triple bonds and show stretching absorptions around the wavenumber range of 2100 to 2300 cm−1 in the diagnostic region of the IR spectra.
Comparing the stretching vibrational frequency of  C≡C triple bonds with that of double and single bonds, it is evident that C≡C triple bonds exhibit a higher stretching frequency than C=C double and C–C single bonds. Similarly, the C≡N triple bond exhibits higher stretching absorption than the C=N...
UV–Vis Spectroscopy: Woodward–Fieser Rules01:29

UV–Vis Spectroscopy: Woodward–Fieser Rules

UV–Visible absorption spectra of conjugated dienes arise from the lowest energy π → π* transitions. The light-absorbing part of the molecule is called the chromophore, and the substituents directly attached to the chromophore are called auxochromes. A strong correlation exists between the absorption maxima, λmax, and the structure of a conjugated π system. The Woodward–Fieser rules predict the value of λmax for a given structure by adding the contributions...
IR and UV–Vis Spectroscopy of Aldehydes and Ketones01:29

IR and UV–Vis Spectroscopy of Aldehydes and Ketones

Infrared spectroscopy, also known as vibrational spectroscopy, is mainly used to determine the types of bonds and functional groups in molecules. In aldehydes and ketones, the carbonyl (C=O) bond shows an absorption around 1710 cm-1. The C=O bond vibration of an aldehyde occurs at lower frequencies than that of a ketone. In addition to the C=O absorption in an aldehyde, the aldehydic C–H bond also gives two peaks in the 2700–2800 cm-1 range. This absorption, coupled with the C=O stretching, is...
Influence of Earth's Curvature and Atmospheric Refraction on Leveling01:26

Influence of Earth's Curvature and Atmospheric Refraction on Leveling

During leveling, the Earth's curvature and atmospheric refraction introduce deviations in the line of sight from a true horizontal reference. When the line of sight is leveled, it remains perpendicular to the plumb line only at a single point. Beyond this, it deviates due to the Earth’s curvature, represented by the correction C. For a sight distance D, the deviation can be derived using the relationship:This relationship shows that the deviation increases quadratically with distance. Over a...

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Characterization of the temporal phase fluctuations in a weak atmospheric turbulence regime as a random bit-stream generator.

Applied optics·2015
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Synthesis and Operation of Fluorescent-core Microcavities for Refractometric Sensing
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Humidity's influence on visible region refractive index structure parameter C(n)(2).

Mark P J L Chang1, Carlos O Font, G Charmaine Gilbreath

  • 1Department of Physics, University of Puerto Rico, P.O. Box 9016, Mayagüez, Puerto Rico 00681-9016. mark@charma.uprm.edu

Applied Optics
|April 13, 2007
PubMed
Summary

Humidity significantly impacts atmospheric turbulence strength (C(n)(2)) over optical propagation paths. This study reveals humidity

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Area of Science:

  • Atmospheric optics
  • Optical engineering
  • Environmental science

Background:

  • Optical propagation models often neglect humidity's role in atmospheric turbulence.
  • This assumption may not hold true in humid environments, potentially affecting optical system performance.

Purpose of the Study:

  • To investigate and quantify the effect of humidity on the atmospheric turbulence strength parameter, C(n)(2).
  • To analyze the temporal contribution of humidity to C(n)(2) using real-world data.

Main Methods:

  • Collected data on relative humidity, temperature, and C(n)(2) over 100m horizontal paths.
  • Applied Hilbert phase analysis to correlate humidity, temperature, and C(n)(2) variations.

Main Results:

  • Demonstrated an unequivocal effect of humidity on C(n)(2) in the Chesapeake Bay area.
  • Showcased the temporal dynamics of humidity's contribution to turbulence strength.

Conclusions:

  • Humidity is a significant factor influencing atmospheric turbulence strength for optical beams.
  • The findings necessitate revising conventional optical propagation models to include humidity effects, especially in non-arid regions.