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X-ray Crystallography02:18

X-ray Crystallography

The size of the unit cell and the arrangement of atoms in a crystal may be determined from measurements of the diffraction of X-rays by the crystal, termed X-ray crystallography.
Diffraction
Diffraction is the change in the direction of travel experienced by an electromagnetic wave when it encounters a physical barrier whose dimensions are comparable to those of the wavelength of the light. X-rays are electromagnetic radiation with wavelengths about as long as the distance between neighboring...
Confocal Fluorescence Microscopy01:16

Confocal Fluorescence Microscopy

Confocal microscopy is an advanced microscopic technique. The prime advantage of the confocal microscope over other microscopy techniques is its ability to block the out-of-focus light from the illuminated samples using pinholes. It is widely used with fluorescence optics to obtain high-resolution, sharp contrast images. Unlike optical microscopes, confocal microscopes use a focused beam of light laser to scan the entire sample surface at different z-planes. These microscopes are, therefore,...
X-ray Diffraction of Biological Samples01:10

X-ray Diffraction of Biological Samples

X-ray diffraction or XRD is an analytical tool that utilizes X-rays to study ordered structures such as crystalline organic and inorganic samples, polycrystalline materials, proteins, carbohydrates, and drugs.
According to Bragg's law, when X-rays strike the sample positioned on a stage, the rays are  scattered by the electron clouds around the sample atoms. The  X-ray diffraction or scattering is caused by constructive interference of the X-ray waves that reflect off the internal crystal...
Phase Contrast and Differential Interference Contrast Microscopy01:26

Phase Contrast and Differential Interference Contrast Microscopy

Phase-Contrast Microscopes
In-phase-contrast microscopes, interference between light directly passing through a cell and light refracted by cellular components is used to create high-contrast, high-resolution images without staining. It is the oldest and simplest type of microscope that creates an image by altering the wavelengths of light rays passing through the specimen. Altered wavelength paths are created using an annular stop in the condenser. The annular stop produces a hollow cone of...

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Related Experiment Video

Updated: Jun 8, 2026

Synthesis and Microdiffraction at Extreme Pressures and Temperatures
07:26

Synthesis and Microdiffraction at Extreme Pressures and Temperatures

Published on: October 7, 2013

Transverse shift of helical beams and subdiffraction imaging.

Thomas Brunet1, Jean-Louis Thomas, Régis Marchiano

  • 1Institut des NanoSciences de Paris, Université Pierre et Marie Curie Paris 06, CNRS UMR 7588,140 rue de Lourmel, 75015 Paris, France.

Physical Review Letters
|September 28, 2010
PubMed
Summary

This study introduces a novel imaging technique using helical beams to surpass the diffraction limit for optical and acoustical waves. It enables precise measurement of sub-diffraction aperture dimensions and positions using vortex shifts.

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Last Updated: Jun 8, 2026

Synthesis and Microdiffraction at Extreme Pressures and Temperatures
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Published on: October 7, 2013

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Area of Science:

  • Physics
  • Wave Phenomena
  • Imaging Science

Background:

  • Classical imaging is limited by the diffraction limit, restricting resolution.
  • Sub-diffraction imaging requires advanced techniques to resolve features smaller than the wavelength.

Purpose of the Study:

  • To propose and validate a new imaging technique overcoming the diffraction limit.
  • To demonstrate the measurement of sub-diffraction circular apertures using helical beams.

Main Methods:

  • Utilizing helical beams with stable phase singularities.
  • Employing a nonclassical correlation method based on superoscillations.
  • Analyzing the shift of scattered vortices for positional accuracy.

Main Results:

  • Achieved sub-diffraction imaging capabilities for circular apertures.
  • Demonstrated high-resolution measurement of aperture position and diameter.
  • Validated the technique through underwater acoustic experiments.

Conclusions:

  • Helical beams offer a viable method to exceed classical diffraction limits.
  • The proposed technique provides precise sub-diffraction metrology.
  • The method is applicable to various wave types, including optical and acoustic waves.