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Related Concept Videos

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...
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.
¹H NMR Signal Multiplicity: Splitting Patterns01:13

¹H NMR Signal Multiplicity: Splitting Patterns

When protons A and X are coupled, their nuclear spin energy levels are slightly modified. This is because the energy required to excite proton A to a spin state parallel to proton X is slightly different from the energy required for it to become anti-parallel to spin X. Consequently, there are two possible excitation frequencies for A (A1 and A2), depending on the spin state of X, and vice versa. The mutual nature of coupling implies that the difference between frequencies A1 and A2, indicated...
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...
π Electron Effects on Chemical Shift: Overview01:27

π Electron Effects on Chemical Shift: Overview

An applied magnetic field causes loosely bound π-electrons in organic molecules to circulate, producing a local or induced diamagnetic field over a large spatial volume. As the molecules tumble in solution, the field generated by π-electrons in spherical substituents results in a zero net field. However, the net field generated by π-electrons in non-spherical substituents is not zero. The effect of this induced field depends on the orientation of the molecule with respect to B0, resulting in...

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Related Experiment Video

Updated: Jun 10, 2026

Synthesis, Characterization, and Functionalization of Hybrid Au/CdS and Au/ZnS Core/Shell Nanoparticles
08:19

Synthesis, Characterization, and Functionalization of Hybrid Au/CdS and Au/ZnS Core/Shell Nanoparticles

Published on: March 2, 2016

Förster coupling in nanoparticle excitonic circuits.

Patrick Rebentrost1, Michael Stopa, Alán Aspuru-Guzik

  • 1Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, Massachusetts 02138, USA.

Nano Letters
|August 12, 2010
PubMed
Summary

We developed a new numerical method to study exciton transport in semiconductor nanoparticles, revealing how shape and electric fields influence energy transfer for light-harvesting applications.

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Last Updated: Jun 10, 2026

Synthesis, Characterization, and Functionalization of Hybrid Au/CdS and Au/ZnS Core/Shell Nanoparticles
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Utilization of Plasmonic and Photonic Crystal Nanostructures for Enhanced Micro- and Nanoparticle Manipulation
09:29

Utilization of Plasmonic and Photonic Crystal Nanostructures for Enhanced Micro- and Nanoparticle Manipulation

Published on: September 27, 2011

Area of Science:

  • Condensed matter physics
  • Materials science
  • Nanotechnology

Background:

  • Exciton transport in semiconductor nanoparticles is crucial for advanced nanostructures and artificial light-harvesting systems.
  • Understanding exciton dynamics is key to optimizing energy transfer in nanomaterials.

Purpose of the Study:

  • To develop a novel numerical method for evaluating Forster matrix elements in semiconductor nanoparticles.
  • To investigate the influence of nanoparticle shape, dielectric environment, and electric fields on exciton transport.

Main Methods:

  • A three-dimensional real-space grid approach was employed.
  • Self-consistent solution of mesoscopic excitons within a macroscopic dielectric environment.
  • Analysis of Forster coupling under varying nanoparticle geometries and external electric fields.

Main Results:

  • Forster coupling is modulated by nanoparticle shape and dielectric properties, depending on transition dipole orientation.
  • The interplay between excitonic binding and confinement effects was studied under electric fields.
  • A type II core-shell quantum dot demonstrated spatial electron-hole separation due to bandstructure configuration.

Conclusions:

  • The developed numerical method provides new insights into exciton dynamics in nanostructures.
  • Nanoparticle shape and dielectric environment significantly impact energy transfer efficiency.
  • External electric fields offer a means to tune excitonic properties for potential applications.