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相关概念视频

Atomic Orbitals02:44

Atomic Orbitals

33.3K
An atomic orbital represents the three-dimensional regions in an atom where an electron has the highest probability to reside. The radial distribution function indicates the total probability of finding an electron within the thin shell at a distance r from the nucleus. The atomic orbitals have distinct shapes which are determined by l, the angular momentum quantum number. The orbitals are often drawn with a boundary surface, enclosing densest regions of the cloud.
33.3K
Molecular Orbital Theory I02:35

Molecular Orbital Theory I

31.8K
Overview of Molecular Orbital Theory
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Molecular Orbital Theory II03:51

Molecular Orbital Theory II

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Molecular Orbital Energy Diagrams
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The Energies of Atomic Orbitals03:21

The Energies of Atomic Orbitals

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In an atom, the negatively charged electrons are attracted to the positively charged nucleus. In a multielectron atom, electron-electron repulsions are also observed. The attractive and repulsive forces are dependent on the distance between the particles, as well as the sign and magnitude of the charges on the individual particles. When the charges on the particles are opposite, they attract each other. If both particles have the same charge, they repel each other.
23.8K
MO Theory and Covalent Bonding02:40

MO Theory and Covalent Bonding

10.3K
The molecular orbital theory describes the distribution of electrons in molecules in a manner similar to the distribution of electrons in atomic orbitals. The region of space in which a valence electron in a molecule is likely to be found is called a molecular orbital. Mathematically, the linear combination of atomic orbitals (LCAO) generates molecular orbitals. Combinations of in-phase atomic orbital wave functions result in regions with a high probability of electron density, while...
10.3K
Electron Orbital Model01:18

Electron Orbital Model

67.5K
Orbitals are the areas outside of the atomic nucleus where electrons are most likely to reside. They are characterized by different energy levels, shapes, and three-dimensional orientations. The location of electrons is described most generally by a shell or principal energy level, then by a subshell within each shell, and finally, by individual orbitals found within the subshells.
The first shell is closest to the nucleus, and it has only one subshell with a single spherical orbital called the...
67.5K

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相关实验视频

Updated: Jun 10, 2025

Probe Type II Band Alignment in One-Dimensional Van Der Waals Heterostructures Using First-Principles Calculations
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Probe Type II Band Alignment in One-Dimensional Van Der Waals Heterostructures Using First-Principles Calculations

Published on: October 12, 2019

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探索自然轨道功能的潜力.

Mario Piris1,2

  • 1Donostia International Physics Center (DIPC), Euskal Herriko Unibertsitatea (UPV/EHU) 20018 Donostia Spain mario.piris@ehu.eus.

Chemical science
|October 18, 2024
PubMed
概括

自然轨道功能 (NOF) 理论在量子化学中提供了一个有前途的方法,用于准确地描述强烈相关的电子系统. 这一观点探讨了NOF概念,它们的优势,局限性以及计算化学研究的未来方向.

科学领域:

  • 量子化学 是一个量子化学.
  • 计算化学计算化学
  • 电子结构理论 电子结构理论

背景情况:

  • 强烈相关的电子系统在量子化学中构成了重大挑战.
  • 现有的方法,如密度函数和基于波函数的方法,在描述这些系统时存在局限性.
  • 自然轨道功能 (NOF) 理论已经成为一种重要的替代形式主义.

研究的目的:

  • 为了提供自然轨道功能 (NOF) 理论的概述.
  • 讨论NOF的基本概念,优点和弱点.
  • 突出目前的状况,并建议未来的NOF开发研究方向.

主要方法:

  • 对NOF理论的概念分析.
  • 对NOF应用现有文献的审查.
  • 讨论NOFs的理论框架.

主要成果:

  • NOF理论提供了对具有强大的电子相关性系统的准确和平衡描述.
  • NOFs为传统量子化学方法提供了一个可计算的替代方案.
  • NOF的概念简单性增强了它们的吸引力.

结论:

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Excitonic Hamiltonians for Calculating Optical Absorption Spectra and Optoelectronic Properties of Molecular Aggregates and Solids
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  • NOF理论是一个快速发展的领域,在量子化学中具有显著的潜力.
  • 需要进一步的研究来优化NOF,以提高预测准确性和计算效率.
  • NOF代表了理解复杂电子结构的宝贵工具.