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Double Resonance Techniques: Overview01:12

Double Resonance Techniques: Overview

850
Double resonance techniques in Nuclear Magnetic Resonance (NMR) spectroscopy involve the simultaneous application of two different frequencies or radiofrequency pulses to manipulate and observe two distinct nuclear spins. One important application of double resonance is spin decoupling, which selectively suppresses coupling with one type of nucleus while observing the NMR signal from another nucleus, simplifying the spectrum and enhancing resolution.
Spin decoupling is usually achieved by...
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IR Absorption Frequency: Hybridization01:21

IR Absorption Frequency: Hybridization

1.7K
Hydrocarbons such as alkanes, alkenes, and alkynes show characteristic C–H stretching absorption bands. These IR stretching frequencies depend on the hybridization of the involved carbon atom and can be explained in terms of the s character of each hybridized atomic orbital.
Among the sp, sp2, and sp3 hybridized orbitals, sp orbitals have the maximum s character (50%). Consequently, the electrons are held more closely to the nucleus, resulting in stronger and shorter C–H bonds that...
1.7K
¹H NMR: Complex Splitting01:13

¹H NMR: Complex Splitting

2.2K
A proton M that is coupled to a proton X results in doublet signals for M. However, NMR-active nuclei can be simultaneously coupled to more than one nonequivalent nucleus. When M is coupled to a second proton A, such as in styrene oxide, each peak in the doublet is split into another doublet.
Splitting diagrams or splitting tree diagrams are routinely used to depict such complex couplings. While drawing splitting diagrams, the splitting with the larger coupling constant is usually applied...
2.2K

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Related Experiment Video

Updated: Mar 31, 2026

Fabrication of Nanopillar-Based Split Ring Resonators for Displacement Current Mediated Resonances in Terahertz Metamaterials
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Plasmon-Induced Transparency by Hybridizing Concentric-Twisted Double Split Ring Resonators.

Mohammad Parvinnezhad Hokmabadi1, Elizabath Philip1, Elmer Rivera1

  • 1Department of Electrical and Computer Engineering, The University of Alabama, Tuscaloosa, Alabama 35487, USA.

Scientific Reports
|October 29, 2015
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Summary

Researchers achieved plasmon induced transparency (PIT) by twisting hybridized double split ring resonators (DSRRs). This novel method controls PIT, enabling applications in optical devices and sensors.

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Area of Science:

  • Optics and Photonics
  • Metamaterials
  • Nanotechnology

Background:

  • Plasmon induced transparency (PIT) is a classical analogue of electromagnetically induced transparency, offering reduced experimental complexity.
  • Controlling PIT is crucial for developing advanced optical devices.

Purpose of the Study:

  • To present a novel method for achieving and controlling PIT.
  • To investigate the effects of hybridization and rotation in double split ring resonators (DSRRs) for PIT.
  • To develop a theoretical model for understanding the PIT mechanism.

Main Methods:

  • Theoretical design and simulation of hybridized DSRRs on flexible substrates.
  • Experimental validation of the designed structures.
  • Development of an equivalent circuit model with a mutual inductance parameter (M).

Main Results:

  • Co-directional rotation of small SRRs in DSRRs leads to the emergence of a PIT window.
  • Counter-directional rotation causes resonance shifts.
  • The sign of the mutual inductance parameter (M) quantitatively characterizes the PIT response.

Conclusions:

  • A novel, controllable PIT effect is demonstrated using hybridized DSRRs with rotational control.
  • The equivalent circuit model provides insight into the physical mechanisms of PIT.
  • The findings support the development of optical buffers, delay lines, and sensors.