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Electron Carriers01:24

Electron Carriers

91.9K
Electron carriers can be thought of as electron shuttles. These compounds can easily accept electrons (i.e., be reduced) or lose them (i.e., be oxidized). They play an essential role in energy production because cellular respiration is contingent on the flow of electrons.
Over the many stages of cellular respiration, glucose breaks down into carbon dioxide and water. Electron carriers pick up electrons lost by glucose in these reactions, temporarily storing and releasing them into the electron...
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Electron Configuration of Multielectron Atoms03:26

Electron Configuration of Multielectron Atoms

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The alkali metal sodium (atomic number 11) has one more electron than the neon atom. This electron must go into the lowest-energy subshell available, the 3s orbital, giving a 1s22s22p63s1 configuration. The electrons occupying the outermost shell orbital(s) (highest value of n) are called valence electrons, and those occupying the inner shell orbitals are called core electrons. Since the core electron shells correspond to noble gas electron configurations, we can abbreviate electron...
65.2K
Electronic Structure of Atoms02:28

Electronic Structure of Atoms

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An atom comprises protons and neutrons, which are contained inside the dense, central core called the nucleus, with electrons present around the nucleus. Taking into account the wave–particle duality of electrons and the uncertainty in position around the nucleus, quantum mechanics provides a more accurate model for the atomic structure. It describes atomic orbitals as the regions around the nucleus where electrons of discrete energy exist, characterized by four quantum...
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Atomic Structure01:33

Atomic Structure

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Overview
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Atomic Orbitals02:44

Atomic Orbitals

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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.
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Hybridization of Atomic Orbitals I03:24

Hybridization of Atomic Orbitals I

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The mathematical expression known as the wave function, ψ, contains information about each orbital and the wavelike properties of electrons in an isolated atom. When atoms are bound together in a molecule, the wave functions combine to produce new mathematical descriptions that have different shapes. This process of combining the wave functions for atomic orbitals is called hybridization and is mathematically accomplished by the linear combination of atomic orbitals. The new orbitals that...
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相关实验视频

Updated: Feb 8, 2026

Making Record-efficiency SnS Solar Cells by Thermal Evaporation and Atomic Layer Deposition
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在太阳能驱动的H2O2和甲联合生产的原子接口上的动态电子孔穿.

Jugong Shi1, Xunlu Wang1, Molly Meng-Jung Li2

  • 1School of Environmental Science and Technology, Dalian University of Technology, Dalian, China.

Advanced materials (Deerfield Beach, Fla.)
|February 7, 2026
PubMed
概括

研究人员开发了一种新型的金色集群定,化光催化剂. 这种先进的材料有效地分离了用于太阳能转换的电荷,产生过氧化和甲.

关键词:
在Ni3+/Ni2+氧化回氧循环过程中,Ni3+/Ni2+原子接口工程 原子接口工程具有双重功能的催化剂电子孔穿车 电子孔穿车光催化作用的光催化作用

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科学领域:

  • 材料科学 材料科学 材料科学
  • 光催化作用的光催化
  • 太阳能能源转换的转换

背景情况:

  • 太阳能转换需要高效的空间分离氧化还原过程.
  • 传统的光催化剂受到缓慢的电荷动态和重组的影响.
  • 开发用于同时生产化学品的新材料至关重要.

研究的目的:

  • 为增强光催化提供一个原子级接口穿机制.
  • 在新材料中将动态电子孔分离与氧化还原循环结合起来.
  • 为了实现高效的太阳能驱动的增值化学品的生产.

主要方法:

  • 合成亚纳米金集群结的金矿 (H-NiMn2O4-β/Au0.5 NCs).
  • 超快速的短暂吸收光谱用于研究电子转移动态.
  • 氧降解和醇光氧化的催化性能的表征.

主要成果:

  • 观察到一个原子级的界面穿机制,电子转移发生在3.06 psi.
  • 电荷动力学通过Au-O-Ni接口和Ni3+/Ni2+氧化还原循环加速了22.16倍.
  • 实现了H2O2 (1.00 mmol g-1 h-1) 和 (14.59 mmol g-1 h-1) 的高效生产.

结论:

  • 拟议的机制使太阳能驱动的氧化还原转换能够进行动态双站点催化.
  • 原子级接口电荷管理是高效光催化剂设计的关键.
  • 这项工作为利用太阳能进行化学合成提供了新的见解.