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¹H NMR: Interpreting Distorted and Overlapping Signals01:02

¹H NMR: Interpreting Distorted and Overlapping Signals

Spin systems where the difference in chemical shifts of the coupled nuclei is greater than ten times J are called first-order spin systems. These nuclei are weakly coupled, and their chemical shifts and coupling constant can generally be estimated from the well-separated signals in the spectrum.
As Δν decreases and the signals move closer, the doublets appear increasingly distorted. The intensities of the inner lines increase at the cost of those of the outer lines as the signals are slanted or...
Interference and Diffraction02:18

Interference and Diffraction

Interference is a characteristic phenomenon exhibited by waves. When two electromagnetic waves interact with their peaks and troughs coinciding, a resulting wave with enhanced amplitude is produced. This is known as constructive interference. In this case, the two waves interacting are in phase with each other.
¹H NMR: Long-Range Coupling01:27

¹H NMR: Long-Range Coupling

The coupling interactions of nuclei across four or more bonds are usually weak, with J values less than 1 Hz. While these are usually not observed in spectra, the presence of multiple bonds along the coupling pathway can result in observable long-range coupling.
In alkenes, spin information is communicated via σ–π overlap, as seen in allylic (four-bond) and homoallylic (five-bond) couplings. These coupling interactions are stronger when the σ bond is parallel to the alkene π orbitals.
Potential Due to a Polarized Object01:29

Potential Due to a Polarized Object

A neutral atom consists of a positively charged nucleus surrounded by a negatively charged electron cloud. When placed in an external electric field, the external electric force pulls the electrons and nucleus apart, opposite to the intrinsic attraction between the nucleus and the electrons. The opposing forces balance each other with a slight shift between the center of masses of the nucleus and the electron cloud, resulting in a polarized atom. On the other hand, a few molecules, like water,...
Spin–Spin Coupling: Two-Bond Coupling (Geminal Coupling)01:20

Spin–Spin Coupling: Two-Bond Coupling (Geminal Coupling)

Two NMR-active nuclei bonded to a central atom can be involved in geminal or two-bond coupling. Geminal coupling is commonly seen between diastereotopic protons in chiral molecules and unsymmetrical alkenes, among others.
The central atom need not be NMR-active because its electrons are affected by the electron polarization of the spin-active atoms. However, spin information is transmitted less effectively than in one-bond coupling, and 2J values are usually weaker than 1J values. The energy of...
NMR Spectroscopy: Spin–Spin Coupling01:08

NMR Spectroscopy: Spin–Spin Coupling

The spin state of an NMR-active nucleus can have a slight effect on its immediate electronic environment. This effect propagates through the intervening bonds and affects the electronic environments of NMR-active nuclei up to three bonds away; occasionally, even farther. This phenomenon is called spin–spin coupling or J-coupling. Coupling interactions are mutual and result in small changes in the absorption frequencies of both nuclei involved. While nuclei of the same element are involved in...

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Related Experiment Video

Updated: Jun 16, 2026

Digital Inline Holographic Microscopy (DIHM) of Weakly-scattering Subjects
10:16

Digital Inline Holographic Microscopy (DIHM) of Weakly-scattering Subjects

Published on: February 8, 2014

Scattering phenomena in volume holograms with strong coupling.

S I Ragnarsson

    Applied Optics
    |February 23, 2010
    PubMed
    Summary

    This study analyzes diffraction in volume gratings, introducing a modified Ewald construction for clearer analysis of phenomena like scattering rings and Kossel lines in holographic data storage.

    Area of Science:

    • Optics and Photonics
    • Materials Science
    • Crystallography

    Background:

    • Volume gratings exhibit complex diffraction patterns, including scattering rings and Kossel lines.
    • Understanding these phenomena is crucial for applications like holographic data storage and advanced optical materials.

    Purpose of the Study:

    • To qualitatively analyze diffraction phenomena in volume gratings with higher-order harmonics and strong coupling.
    • To introduce a modified Ewald construction for simplifying the analysis of diffraction in volume gratings.
    • To demonstrate an interference phenomenon explained by dynamical diffraction theory.

    Main Methods:

    • Qualitative analysis of diffraction patterns (scattering rings, Kossel lines, dark scattering rings).
    • Application of dynamical diffraction theory.

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    Uncovering Hidden Dynamics of Natural Photonic Structures Using Holographic Imaging

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    Controlled Synthesis and Fluorescence Tracking of Highly Uniform Poly(N-isopropylacrylamide) Microgels
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    Controlled Synthesis and Fluorescence Tracking of Highly Uniform Poly(N-isopropylacrylamide) Microgels

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    Last Updated: Jun 16, 2026

    Digital Inline Holographic Microscopy (DIHM) of Weakly-scattering Subjects
    10:16

    Digital Inline Holographic Microscopy (DIHM) of Weakly-scattering Subjects

    Published on: February 8, 2014

    Uncovering Hidden Dynamics of Natural Photonic Structures Using Holographic Imaging
    05:45

    Uncovering Hidden Dynamics of Natural Photonic Structures Using Holographic Imaging

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    Controlled Synthesis and Fluorescence Tracking of Highly Uniform Poly(N-isopropylacrylamide) Microgels
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  • Introduction and application of a modified Ewald construction for volume gratings.
  • Analysis of multiple recordings in volume holograms.
  • Main Results:

    • The modified Ewald construction provides a physically consistent framework for analyzing diffraction phenomena.
    • It simplifies the visualization and construction of the intermodulation spectrum.
    • The construction is effective for understanding recording and readout in superimposed volume holograms.

    Conclusions:

    • The modified Ewald construction offers a more intuitive and consistent approach to understanding diffraction in volume gratings.
    • This method aids in the analysis of complex diffraction patterns and holographic recording processes.
    • The findings contribute to the fundamental understanding of light-matter interactions in periodic structures.