相关实验视频
Updated: Sep 9, 2025

06:42
Generation and Coherent Control of Pulsed Quantum Frequency Combs
Published on: June 8, 2018
9.1K
由时间依赖的外部场驱动的系统的量子总方程
Callie Wilson1, Zongwei Huang1, Eitan Geva1
1Department of Chemistry, University of Michigan, Ann Arbor, Michigan 48109, USA.
The Journal of chemical physics
|September 2, 2025
概括
本研究介绍了离对角量子主方程 (OD-QME),用于模拟具有时间依赖合的复杂分子中的电荷转移 (CT) 动态. 它展示了外界场如何改变CT路径和动力学,特别是在高温下.
科学领域:
- 化学物理
- 量子动力学
- 分子建模
背景情况:
- 非对角量子主方程 (OD-QME) 对于模拟电荷转移 (CT) 动态非常有价值.
- 现有的OD-QME通常假定时间独立的电子合,限制其应用到复杂的驱动系统.
研究的目的:
- 为具有时间依赖电子合的分子系统开发和分析OD-QME.
- 研究外界场对CT动态和动力学的影响.
- 展示出离对角方向行驶的潜力,以创造新的CT路径.
主要方法:
- 对具有时间依赖电子合项的系统制定OD-QME.
- 在连续波 (CW) 场驱动下对OD-QME动态进行异常分析.
- 用于Garg-Onuchic-AmbegaokarCT模型的应用.
主要成果:
- 开发的OD-QME准确地描述了由时间依赖的外部场所驱动的系统中的CT动态.
- 在长时间和高温下,异面分析揭示了由场变化的马库斯理论常数控制的速率动力学的转变.
- 已证明偏斜的驾驶使新的CT路径与非辐射衰变相竞争.
结论:
- 提出的OD-QME为研究驱动CT动力学提供了坚实的框架.
- 外界场可以显著改变CT路径和动力学,为控制分子过程提供新的途径.
- 这种方法增强了我们对外部影响下的复杂分子系统中电荷转移的理解.
相关概念视频
The Quantum-Mechanical Model of an Atom
43.8K
Shortly after de Broglie published his ideas that the electron in a hydrogen atom could be better thought of as being a circular standing wave instead of a particle moving in quantized circular orbits, Erwin Schrödinger extended de Broglie’s work by deriving what is now known as the Schrödinger equation. When Schrödinger applied his equation to hydrogen-like atoms, he was able to reproduce Bohr’s expression for the energy and, thus, the Rydberg formula governing hydrogen spectra.
43.8K
Electromagnetic Wave Equation
1.3K
Maxwell's equations for electromagnetic fields are related to source charges, either static or moving. These fields act on a test charge, whose trajectory can thus be determined using suitable boundary conditions. The objective of electromagnetism is thus theoretically complete.
However, although electric and magnetic fields were first introduced as mathematical constructs to simplify the description of mutual forces between charges, a natural question emerges from Maxwell's equations:...
However, although electric and magnetic fields were first introduced as mathematical constructs to simplify the description of mutual forces between charges, a natural question emerges from Maxwell's equations:...
1.3K
Electric Field of Two Equal and Opposite Charges
6.3K
Atoms generally contain the same number of positively and negatively charged particles, protons, and electrons. Hence, they are electrically neutral. However, the centers of the positive and negative charges do not always coincide. In such a scenario, the electric field of an atom may not be zero.
A separation of the positive and negative charges can lead to a weak, remnant effect of the positive and negative charges. The expectation is that the more the distance between the positive and...
A separation of the positive and negative charges can lead to a weak, remnant effect of the positive and negative charges. The expectation is that the more the distance between the positive and...
6.3K
Maxwell's Equation Of Electromagnetism
3.4K
James Clerk Maxwell (1831–1879) was one of the major contributors to physics in the nineteenth century. Although he died young, he made major contributions to the development of the kinetic theory of gases, to the understanding of color vision, and to understanding the nature of Saturn's rings. He is probably best known for having combined existing knowledge on the laws of electricity and magnetism with his insights into a complete overarching electromagnetic theory, which is...
3.4K
Symmetry in Maxwell's Equations
3.6K
Once the fields have been calculated using Maxwell's four equations, the Lorentz force equation gives the force that the fields exert on a charged particle moving with a certain velocity. The Lorentz force equation combines the force of the electric field and of the magnetic field on the moving charge. Maxwell's equations and the Lorentz force law together encompass all the laws of electricity and magnetism. The symmetry that Maxwell introduced into his mathematical framework may not be...
3.6K
Differential Form of Maxwell's Equations
636
James Clerk Maxwell (1831–1879) was one of the significant contributors to physics in the nineteenth century. He is probably best known for having combined existing knowledge of the laws of electricity and the laws of magnetism with his insights to form a complete overarching electromagnetic theory, represented by Maxwell's equations. The four basic laws of electricity and magnetism were discovered experimentally through the work of physicists such as Oersted, Coulomb, Gauss, and...
636

