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相关概念视频

Raman Spectroscopy: Overview01:20

Raman Spectroscopy: Overview

1.4K
The underlying principle of Raman spectroscopy is based on the interaction between light and matter, specifically molecules' inelastic scattering of photons. When a monochromatic beam of light, typically from a laser source, interacts with a sample, most scattered light has the same frequency as the incident light. This is known as Rayleigh scattering.
However, a small fraction of the scattered light exhibits a frequency shift due to the exchange of energy between the incident photons and...
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Raman Spectroscopy Instrumentation: Overview01:26

Raman Spectroscopy Instrumentation: Overview

1.0K
A conventional Raman spectrophotometer includes a laser source, a sample holding system, a wavelength selector, and a detector.
The monochromatic laser source, typically using visible or near-infrared radiation, generates a highly focused beam of light. This light interacts with the molecules of the sample, scattering some of the light. Liquid and gaseous samples are usually tested in ordinary glass capillaries, while solids can be analyzed as powders packed in capillaries or as potassium...
1.0K
IR Spectroscopy: Hooke's Law Approximation of Molecular Vibration01:16

IR Spectroscopy: Hooke's Law Approximation of Molecular Vibration

2.7K
A covalently bonded heteronuclear diatomic molecule can be modeled as two vibrating masses connected by a spring. The vibrational frequency of the bond can be expressed using an equation derived from Hooke's law, which describes how the force applied to stretch or compress a spring is proportional to the displacement of the spring. In this case, the atoms behave like masses, and the bond acts like a spring.
According to Hooke's law, the vibrational frequency is directly proportional to...
2.7K
UV–Vis Spectroscopy: Beer–Lambert Law01:09

UV–Vis Spectroscopy: Beer–Lambert Law

6.5K
The Beer-Lambert law describes the relationship between absorbance and concentration, which combines the principles established by scientists Johann Heinrich Lambert and August Beer. Lambert's law states that when light passes through a medium, the loss in intensity is directly proportional to the original intensity and the path length of the light. Beer's law proposed that the transmittance of a solution remains constant if the product of concentration and path length is constant. The modern...
6.5K
IR Spectroscopy: Molecular Vibration Overview01:24

IR Spectroscopy: Molecular Vibration Overview

4.5K
When Infrared (IR) radiation passes through a covalently bonded molecule, the bonds transition from lower to higher vibrational levels. The fundamental vibrational motions that result in infrared absorption can be classified as stretching or bending vibrations.
Stretching vibrations are vibrational motions that occur along the bond line, changing the bond length or distance between two bonded atoms. They are further distinguished as symmetric or asymmetric. In symmetric stretching, the...
4.5K
UV–Vis Spectroscopy: Woodward–Fieser Rules01:29

UV–Vis Spectroscopy: Woodward–Fieser Rules

28.1K
UV–Visible absorption spectra of conjugated dienes arise from the lowest energy π → π* transitions. The light-absorbing part of the molecule is called the chromophore, and the substituents directly attached to the chromophore are called auxochromes. A strong correlation exists between the absorption maxima, λmax, and the structure of a conjugated π system. The Woodward–Fieser rules predict the value of λmax for a given structure by adding the...
28.1K

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Ultrafast Time-resolved Near-IR Stimulated Raman Measurements of Functional π-conjugate Systems
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在时间域扩散的生成深度建模 拉曼光谱学:同质案例

Alessandro Bossi, Valerio Gandolfi, Andrea Farina

    Optics express
    |November 11, 2025
    PubMed
    概括

    这项研究引入了一个新的分析模型来确定拉曼光子的平均生成深度. 该模型改善了时间域扩散拉曼光谱 (TD-DIRS) 和空间偏移拉曼光谱 (SORS) 测量的解释.

    科学领域:

    • * 光谱学和光子学
    • * 生物医学光学

    背景情况:

    • *准确的深度分析对于解释拉曼光谱数据至关重要,特别是在生物组织中.
    • *现有的模型可能无法完全考虑波长依赖的光学特性.
    • *时间域扩散拉曼光谱 (TD-DIRS) 和空间偏移拉曼光谱 (SORS) 是有价值的非侵入性技术.

    研究的目的:

    • * 开发一个严格的分析模型来计算拉曼光子的平均生成深度.
    • * 调查生成深度对光子飞行时间和源探测器距离的依赖性.
    • * 为了提高TD-DIRS和SORS测量的解释.

    主要方法:

    • * 基于扩散方程的分析模型的开发.
    • *包括波长依赖的光学属性变化.
    • *使用蒙特卡洛模拟进行验证.

    主要成果:

    • * 该模型准确计算了平均拉曼光子生成深度.
    • *生成深度是根据光子飞行时间 (TD-DIRS) 和源探测器距离 (SORS) 量化.
    • * 实体场景的模拟证明了该模型的适用性.

    结论:

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    • * 拟议的模型提供了改善SORS和TD-DIRS数据解释的基本知识.
    • *它提供了在扩散介质中更准确的探测深度估计.
    • * 这一进步对于生物医学诊断和研究中的应用至关重要.