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Atomic Emission Spectroscopy: Interference01:30

Atomic Emission Spectroscopy: Interference

In atomic emission spectroscopy (AES), high-temperature atomizers excite a broad range of elements and molecules that generate complex emissions from sources such as oxides, hydroxides, and flame combustion products in the flame or plasma. Several strategies can be employed to minimize spectral interferences caused by overlapping emission lines or bands. These include increasing instrument resolution, choosing alternative emission lines, optimally placing the detector in low-background regions,...
Atomic Force Microscopy01:08

Atomic Force Microscopy

Atomic force microscopy (AFM) is a type of scanning probe microscopy that can analyze topographic details of various specimens like ceramics, glass, polymers, and biological samples. AFM offers over 1000 times more resolution than the optical imaging system. Images generated from AFM are three-dimensional surface profiles, offering an advantage over the flat, two-dimensional images from other imaging techniques.
The AFM Probe
The probe is regarded as the heart of any AFM setup and comprises the...
Atomic Absorption Spectroscopy: Interference01:25

Atomic Absorption Spectroscopy: Interference

Interference leads to systematic error in atomic absorption (AA) measurements by enhancing or diminishing the analytical signal or the background. These interferences can be grouped into three main categories: spectral interference, chemical interference, and physical interference.
Spectral interference occurs when signals from other elements or molecules overlap with the analyte signal, falsely elevating or masking the analyte's absorbance. This interference can be corrected using Zeeman,...
Atomic Nuclei: Larmor Precession Frequency01:11

Atomic Nuclei: Larmor Precession Frequency

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, and the angular frequency...
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.
Atomic Spectroscopy: Effects of Temperature01:27

Atomic Spectroscopy: Effects of Temperature

Atomization, converting samples into gas-phase atoms and ions, is essential for atomic spectroscopy. The flame temperature required for atomization affects the efficiency of the atomic spectroscopic methods by increasing the atomization efficiency and the relative population of the excited and ground states.
At thermal equilibrium, the relative populations of excited and ground state atoms can be estimated using the Maxwell–Boltzmann distribution. For example, an increase in temperature from...

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Related Experiment Video

Updated: Jun 4, 2026

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
11:21

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

Published on: March 30, 2017

Phase shifting interferometry of cold atoms.

Tzu-Ping Ku1, Chi-Yuan Huang, Bor-Wen Shiau

  • 1Department of Physics, National Chung Cheng University, Chia-Yi 621, Taiwan.

Optics Express
|March 4, 2011
PubMed
Summary

We developed a new phase shifting interferometry technique for cold atomic samples. This method offers superior, nondestructive imaging with resolution beyond the diffraction limit.

Area of Science:

  • Atomic physics
  • Optical imaging
  • Interferometry

Background:

  • Phase contrast imaging is a standard technique for visualizing transparent samples.
  • Conventional methods can be destructive or limited in resolution.
  • Cold atomic samples present unique challenges for high-resolution imaging.

Purpose of the Study:

  • To propose and simulate a novel phase shifting interferometry scheme for cold atomic samples.
  • To demonstrate the potential for improved image quality and resolution.
  • To explore applications in diagnosing surface-trapped atomic clouds.

Main Methods:

  • Simulations of phase shifting interferometry applied to cold atomic samples.
  • Utilizing far-detuning, low-power, and nondestructive probing.

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Implementation of a Reference Interferometer for Nanodetection
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Implementation of a Reference Interferometer for Nanodetection

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Measurement of Quantum Interference in a Silicon Ring Resonator Photon Source
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Measurement of Quantum Interference in a Silicon Ring Resonator Photon Source

Published on: April 4, 2017

Related Experiment Videos

Last Updated: Jun 4, 2026

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
11:21

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

Published on: March 30, 2017

Implementation of a Reference Interferometer for Nanodetection
16:11

Implementation of a Reference Interferometer for Nanodetection

Published on: April 26, 2014

Measurement of Quantum Interference in a Silicon Ring Resonator Photon Source
12:19

Measurement of Quantum Interference in a Silicon Ring Resonator Photon Source

Published on: April 4, 2017

  • Analyzing imaging performance under experimentally achievable conditions.
  • Main Results:

    • The proposed method yields superior image quality compared to conventional phase contrast imaging in certain conditions.
    • The technique allows for nondestructive probing with low optical power.
    • Longitudinal resolution can surpass the diffraction limit, determined by optical interference.

    Conclusions:

    • The novel phase shifting interferometry scheme is experimentally feasible for cold atomic samples.
    • This technique offers significant advantages for imaging and diagnosing atomic clouds, including surface-trapped ones.
    • The method provides a pathway to achieve sub-diffraction-limit resolution in atomic imaging.