相关实验视频
Updated: May 4, 2026

10:52
Direct Imaging of Laser-driven Ultrafast Molecular Rotation
Published on: February 4, 2017
9.8K
通过能量载体演变的广场秒干扰成像来解密材料性能
Pin-Tian Lyu1, Qing-Yue Li1, Pei Wu1
1State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, China.
Journal of the American Chemical Society
|July 22, 2022
概括
这项研究介绍了Femto-iSCAT,一种用于可视化能量载体动态的新型超敏感成像技术. 它克服了检测弱信号的局限性,使材料属性的高通量纳米级分析成为可能.
科学领域:
- 材料科学
- 纳米技术
- 光谱学
背景情况:
- 能源载体的演变对材料性能产生了重大影响.
- 超快速显微镜对于研究时空能量载体动力学至关重要.
- 由于短暂的信号,对低度的能量载体进行直接纳米级成像是具有挑战性的.
研究的目的:
- 开发一种超灵敏,高吞吐率的方法,用于绘制空间和时间中的能量载体演变.
- 在纳米尺度成像中克服弱短信号的局限性.
- 探索能源载体动力学的新科学前沿.
主要方法:
- 探针光谱与干扰度散射显微镜 (iSCAT) 的结合.
- 开发Femto-iSCAT,利用干扰计原理和增强对比度.
- 应用于能源载体运输和动力学的挑战性问题.
主要成果:
- 证明了能量载体进化的超灵敏和高通量成像.
- 在接口上实现能量载体传输的可视化.
- 在等离子共振器中发现异质热电子分布和放松.
- 半导体中载体和激子的结构依赖边缘状态动态.
结论:
- Femto-iSCAT为能量载体的纳米尺度成像提供了一个强大的新工具.
- 这种技术有助于研究复杂的现象,如界面传输和放松动态.
- Femto-iSCAT具有广泛的空间时间能量载体分析的潜力.
更多相关视频
相关概念视频
Interaction of EM Radiation with Matter: Spectroscopy
4.1K
Electromagnetic (EM) radiation can be considered an oscillating electric and magnetic field propagating through a medium that can interact with matter in its path. The electric field in the radiation can interact with electrical charges in the atoms or molecules in the matter. On the other hand, the magnetic field can interact with the magnetic field in the atomic nucleus. The study of the interaction between electromagnetic radiation and matter is termed spectroscopy. Spectroscopy is the study...
4.1K
Molecular Spectroscopy: Absorption and Emission
4.1K
Molecules possess discrete energy levels called quantum states. Unlike atoms, which have simpler energy levels, molecules possess additional rotational and vibrational energy levels. Each energy level is separated by an energy gap, with the gaps between adjacent electronic, vibrational, and rotational levels varying significantly. The three types of energy levels in a diatomic molecule are shown in Figure 1.
4.1K
UV–Vis Spectroscopy: Molecular Electronic Transitions
3.0K
In Ultraviolet–Visible (UV–Vis) spectroscopy, the absorption of electromagnetic radiation is used to probe the electronic structure of molecules. This technique provides insights into molecular electronic transitions, particularly the movement of electrons between different molecular orbitals. Radiation is absorbed if the energy of the electromagnetic radiation passing through the molecule is precisely equal to the energy difference between the excited and ground states. During this...
3.0K
Electromagnetic Waves in Matter
2.8K
Electromagnetic waves can travel in the vacuum as well as in matter. For example light, which is an electromagnetic wave, can travel through air, water, or glass.
Consider the electromagnetic wave passing through a dielectric medium. In such a case, Maxwell's equations get modified. In Ampere's law, ε0 , the dielectric permittivity of free space is replaced with ε, the permittivity of dielectric. Also, the vacuum permeability μ0 is replaced by the permeability of the medium,...
Consider the electromagnetic wave passing through a dielectric medium. In such a case, Maxwell's equations get modified. In Ampere's law, ε0 , the dielectric permittivity of free space is replaced with ε, the permittivity of dielectric. Also, the vacuum permeability μ0 is replaced by the permeability of the medium,...
2.8K
Energy Carried By Electromagnetic Waves
3.4K
Anyone who has used a microwave oven knows there is energy in electromagnetic waves. Sometimes, this energy is obvious, such as in the summer sun's warmth. At other times, it is subtle, such as the unfelt energy of gamma rays, which can destroy living cells. Electromagnetic waves bring energy into a system through their electric and magnetic fields. These fields can exert forces and move charges in the system and, thus, do work on them. However, there is energy in an electromagnetic wave,...
3.4K
Atomic Fluorescence Spectroscopy
1.1K
Atomic fluorescence spectroscopy (AFS) is an analytical technique that involves the electronic transitions of atoms in a flame, furnace, or plasma being excited by electromagnetic (EM) radiation. When these atoms absorb energy, they become excited and subsequently release energy as they return to their original state. This emitted light, or "fluorescence," is observed at a right angle to the incident beam. Both absorption and emission processes transpire at distinct wavelengths, which...
1.1K

