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相关概念视频

X-ray Imaging01:24

X-ray Imaging

5.5K
German physicist Wilhelm Röntgen (1845–1923) was experimenting with electrical current when he discovered that a mysterious and invisible "ray" would pass through his flesh but leave an outline of his bones on a screen coated with a metal compound. In 1895, Röntgen made the first durable record of the internal parts of a living human: an "X-ray" image (as it came to be called) of his wife’s hand. Scientists worldwide quickly began their own experiments with...
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Imaging Studies for Cardiovascular System III: X-Ray01:20

Imaging Studies for Cardiovascular System III: X-Ray

188
The most common cardiovascular diagnostic test is an X-ray. It produces images of the heart, blood vessels, and adjacent structures.
Definition and Purpose
An X-ray, or radiograph, is a non-invasive method that uses ionizing radiation to take images of internal structures. It is mainly used in cardiac imaging to examine the heart, lungs, and major blood vessels, aiming to identify abnormalities in the heart's size, shape, and position, such as heart failure, congenital defects, and vascular...
188
The Electromagnetic Spectrum02:37

The Electromagnetic Spectrum

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The electromagnetic spectrum consists of all the types of electromagnetic radiation arranged according to their frequency and wavelength. Each of the various colors of visible light has specific frequencies and wavelengths associated with them, and you can see that visible light makes up only a small portion of the electromagnetic spectrum. Because the technologies developed to work in various parts of the electromagnetic spectrum are different, for reasons of convenience and historical...
52.9K
X-ray Diffraction of Biological Samples01:10

X-ray Diffraction of Biological Samples

3.8K
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...
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Positron Emission Tomography01:29

Positron Emission Tomography

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Positron emission tomography (PET) is a medical imaging technique involving radiopharmaceuticals — substances that emit short-lived radiation. Although the first PET scanner was introduced in 1961, it took 15 more years before radiopharmaceuticals were combined with the technique and revolutionized its potential.
One of the main requirements of a PET scan is a positron-emitting radioisotope, which is produced in a cyclotron and then attached to a substance used by the part of the body...
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Imaging Studies II: Positron Emission Tomography and Scintigraphy01:25

Imaging Studies II: Positron Emission Tomography and Scintigraphy

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Positron Emission Tomography (PET) is a medical imaging technique that provides crucial insights into the body's physiological functions at a molecular level. It is an indispensable resource for diagnosing, staging, and monitoring various illnesses, notably cancer, neurological disorders, and cardiovascular conditions.
Fundamental Principles of PET
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Development and characterization of a laser-gated, high resolution x-ray radiography platform for high energy density experiments using toroidally bent crystals.

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Development of a true single line of sight 3D hot-spot imaging for the National Ignition Facility.

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Ultra-fast single-crystal CVD diamonds in the particle time-of-flight (PTOF) detector for low yield burn-history measurements on the NIF (invited).

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Variable-sagittal-radii elliptical x-ray crystal spectrometers for high-neutron-yield plasma diagnostics.

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相关实验视频

Updated: Jul 8, 2025

Applying X-ray Imaging Crystal Spectroscopy for Use as a High Temperature Plasma Diagnostic
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Applying X-ray Imaging Crystal Spectroscopy for Use as a High Temperature Plasma Diagnostic

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高能量密度物理应用的X射线成像方法.

B Kozioziemski1, B Bachmann1, A Do1

  • 1Lawrence Livermore National Laboratory, Livermore, California 94551, USA.

The Review of scientific instruments
|December 11, 2023
PubMed
概括

在X射线成像技术的进步,特别是吸收成像技术,使科学家能够在极端条件下研究物质. 改进的显微镜,探测器和源现在为高能密度科学提供了高分辨率,皮秒级的洞察力.

科学领域:

  • 高能量密度科学科学 高能量密度科学
  • 血物理学的等离子体物理学
  • 在极端条件下的材料科学.

背景情况:

  • 全球高能量密度科学设施的规模和复杂性正在增加.
  • 脉冲动力和激光驱动器能力正在进步,使得新的物理学模式的探索成为可能.
  • 在极端的温度,压力和密度下,X射线成像是探测物质的关键诊断工具.

研究的目的:

  • 审查高能量密度科学X射线成像技术的进步.
  • 专注于改善吸收成像方法.
  • 为了突出过去几十年的进步.

主要方法:

  • 审查X射线成像技术,强调吸收成像.
  • 讨论在X射线显微镜制造和抛光方面的改进.
  • 检查X射线探测器和高分辨率,时间分辨率成像源的进展.

主要成果:

  • 通过改进的制造和抛光,提高了X射线显微镜的性能.
  • 开发X射线源和探测器,使皮秒成像成为可能.
  • 实现了几微米的分辨率,用于探测物质的极端状态.

结论:

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Synchrotron X-ray Microdiffraction and Fluorescence Imaging of Mineral and Rock Samples
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  • 射线成像,尤其是吸收成像,已经有了很大的进步.
  • 这些改进允许在极端条件下对物质进行前所未有的诊断.
  • 持续的发展有望对基本物理学有更深入的见解.