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Atomic Nuclei: Larmor Precession Frequency01:11

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The earth's gravitational field produces a 'twisting force' perpendicular to the angular momentum of a spinning mass (such as a spinning top) that causes the mass to 'wobble' around the gravitational field axis in a phenomenon called precession. Similarly, the magnetic moment (μ) of a spinning nucleus precesses due to an external magnetic field directed along the z-axis. The precession of the magnetic moment vector about the magnetic field is called Larmor precession,...
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The most common application of magnetic force on current-carrying wires is in electric motors. These consist of loops of wire, which are placed between the magnets with a magnetic field. When current flows through the loops, the magnetic field applies torque, which causes the shaft to rotate, thus converting electrical energy to mechanical energy.
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Atomic Nuclei: Nuclear Spin State Population Distribution01:14

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Atomic Nuclei: Nuclear Relaxation Processes01:23

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In the absence of an external magnetic field, nuclear spin states are degenerate and randomly oriented. When a magnetic field is applied, the spins begin to precess and orient themselves along (lower energy) or against (higher energy) the direction of the field. At equilibrium, a slight excess population of spins exists in the lower energy state. Because the direction of the magnetic field is fixed as the z-axis,  the precessing magnetic moments are randomly oriented around the z-axis.
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Double Resonance Techniques: Overview01:12

Double Resonance Techniques: Overview

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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.
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Spin–Spin Coupling Constant: Overview01:08

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In bromoethane, the three methyl protons are coupled to the two methylene protons that are three bonds away. In accordance with the n+1 rule, the signal from the methyl protons is split into three peaks with 1:2:1 relative intensities. The methylene protons appear as a quartet, with the relative intensities of 1:3:3:1.
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Related Experiment Video

Updated: Nov 21, 2025

All-electronic Nanosecond-resolved Scanning Tunneling Microscopy: Facilitating the Investigation of Single Dopant Charge Dynamics
11:33

All-electronic Nanosecond-resolved Scanning Tunneling Microscopy: Facilitating the Investigation of Single Dopant Charge Dynamics

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Tunable High Speed Atomic Rotor in Bi2Se3 Revealed by Current Noise.

Léonard Desvignes1, Vasily S Stolyarov2, Marco Aprili1

  • 1Université Paris-Saclay, CNRS, Laboratoire de Physique des Solides, 91405, Orsay, France.

ACS Nano
|January 14, 2021
PubMed
Summary

Scientists achieved controlled manipulation of a rotor in iron-doped bismuth selenide using a scanning tunneling microscope (STM). This breakthrough enables omni-directional switching for advanced atomic-scale devices.

Keywords:
Bi2Se3atomic rotorcurrent noisefinite frequencyscanning tunneling microscopy/spectroscopy

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Area of Science:

  • Materials Science
  • Condensed Matter Physics
  • Nanotechnology

Background:

  • Atomic manipulation with scanning tunneling microscopes (STM) is key for nanoscale devices.
  • Molecular motors are vital for complex nanoscale machines.
  • Lattice-embedded motors offer advantages for bottom-up construction and probing material electronic properties.

Purpose of the Study:

  • To demonstrate controlled manipulation of a rotor within a bismuth selenide (Bi2Se3) lattice.
  • To investigate the influence of electrical current and voltage on rotor behavior.
  • To explore the potential of lattice-embedded molecular motors.

Main Methods:

  • Utilized a scanning tunneling microscope (STM) for atomic manipulation.
  • Employed electrical current and voltage tuning to control rotor orientation.
  • Conducted current fluctuation measurements at 1 MHz.
  • Performed model simulations to analyze switching dynamics.

Main Results:

  • Achieved controlled, omni-directional switching of a rotor in Fe-doped Bi2Se3.
  • Demonstrated that current, tuned by voltage, drives switching between three equivalent orientations.
  • Showcased the ability to freeze rotor orientations at small bias voltages.
  • Estimated switching rates of hundreds of kHz at sub-nanoampere currents.

Conclusions:

  • Controlled manipulation of lattice-embedded rotors is feasible.
  • Electrical current is an effective mechanism for driving nanoscale motor switching.
  • This work advances the development of atomic-scale devices and understanding of lattice-electronic interactions.