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Related Concept Videos

Atomic Nuclei: Magnetic Resonance01:05

Atomic Nuclei: Magnetic Resonance

The number of nuclear spins aligned in the lower energy state is slightly greater than those in the higher energy state. In the presence of an external magnetic field, as the spins precess at the Larmor frequency, the excess population results in a net magnetization oriented along the z axis. When a pulse or a short burst of radio waves at the Larmor frequency is applied along the x axis, the coupling of frequencies causes resonance and flips the nuclear spins of the excess population from the...
Colors and Magnetism03:02

Colors and Magnetism

Color in Coordination Complexes
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human eye.
Paramagnetism01:30

Paramagnetism

Paramagnets are materials with unpaired electrons that possess a finite magnetic moment. In the absence of a magnetic field, these moments are randomly oriented, and thus the net moment is zero. Under an external field, a torque acting on the moments tends to align them along the field's direction. However, the random thermal motion of electrons produces a torque opposite to the external field and tries to disorient the moments. These two competing effects align only a few moments along the...
NMR Spectroscopy Of Amines01:19

NMR Spectroscopy Of Amines

In proton NMR spectroscopy, primary amines and secondary amines showcase their N–H protons as a broad signal in the chemical shift range between δ 0.5 and 5 ppm. The exact position in this range depends on several factors, including sample concentration, hydrogen bonding, and the type of solvent used. Since amine protons undergo fast proton exchange in solution, the protons are labile and therefore do not participate in any splitting with adjacent protons. Thus, the observed peak is broad and...
Atomic Spectroscopy: Absorption, Emission, and Fluorescence01:23

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Atomic spectroscopy is a vital tool in elemental analysis, both qualitatively and quantitatively. It can be broadly divided into optical spectroscopy, mass spectroscopy, and X-ray spectroscopy methods. The optical spectroscopic methods are atomic absorption spectroscopy (AAS), atomic emission spectroscopy (AES), and atomic fluorescence spectroscopy (AFS). The first step in all three methods is atomization, where the solid, liquid, or solution-phase samples are converted into gas-phase atoms and...
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π Electron Effects on Chemical Shift: Aromatic and Antiaromatic Compounds

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Related Experiment Video

Updated: Jul 12, 2026

Methods of Ex Situ and In Situ Investigations of Structural Transformations: The Case of Crystallization of Metallic Glasses
08:55

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Published on: June 7, 2018

Amethyst: Optical Properties and Paramagnetic Resonance.

T I Barry, W J Moore

    Science (New York, N.Y.)
    |April 17, 1964
    PubMed
    Summary

    Ionizing radiation creates color centers in amethyst by altering iron (Fe+3) substitution sites within the alpha-quartz structure. Unequal iron occupation explains amethyst

    Area of Science:

    • Solid State Chemistry
    • Mineralogy
    • Materials Science

    Background:

    • Amethyst's color is attributed to color centers within its alpha-quartz structure.
    • Precursor centers, involving iron (Fe+3) substitution for silicon (Si+4), are crucial for color center formation.
    • Electron paramagnetic resonance (EPR) spectroscopy is a key technique for studying these centers.

    Purpose of the Study:

    • To elucidate the origin of color centers in amethyst.
    • To investigate the role of iron substitution in amethyst's optical properties.
    • To explain the observed optical biaxiality in amethyst.

    Main Methods:

    • Analysis of precursor centers formed by ionizing radiation.
    • Characterization using electron paramagnetic resonance (EPR) spectroscopy.

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    Methods of Ex Situ and In Situ Investigations of Structural Transformations: The Case of Crystallization of Metallic Glasses
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    Published on: April 12, 2017

  • Correlation of structural defects with optical properties.
  • Main Results:

    • Color centers in amethyst originate from ionizing radiation acting on iron (Fe+3) precursor centers.
    • Fe+3 substitution for Si+4 in the alpha-quartz structure is the dominant feature in amethyst's EPR spectrum.
    • Unequal occupation of silicon sites by Fe+3 directly explains amethyst's optical biaxiality.

    Conclusions:

    • The study confirms the mechanism of color center formation in amethyst.
    • Iron substitution and its site occupancy are critical determinants of amethyst's characteristic properties.
    • Understanding these defects provides insight into the optical behavior of quartz varieties.