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相关概念视频

Trends in Lattice Energy: Ion Size and Charge02:54

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An ionic compound is stable because of the electrostatic attraction between its positive and negative ions. The lattice energy of a compound is a measure of the strength of this attraction. The lattice energy (ΔHlattice) of an ionic compound is defined as the energy required to separate one mole of the solid into its component gaseous ions. For the ionic solid sodium chloride, the lattice energy is the enthalpy change of the process:
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Energy Associated With a Charge Distribution01:21

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The work done to bring a charge through a distance r is given by the potential difference between the initial and the final position. To assemble a collection of point charges, the total work done can be expressed in terms of the product of each pair of charges divided by their separation distance, defined with respect to a suitable origin. Solving this expression gives the energy stored in a point charge distribution.
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The kinetic molecular theory qualitatively explains the behaviors described by the various gas laws. The postulates of this theory may be applied in a more quantitative fashion to derive these individual laws.
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Solvents

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A solvent is a substance, most often a liquid, that can dissolve other substances. Here, the substance being dissolved is called a solute. When a solvent and a solute combine, they form a solution - a homogenous mixture of both the solvent and the solute. Water is a universal biological solvent. Its polar structure allows it to dissolve many other polar compounds. The ability of water to dissolve is governed by a balance between water molecules binding to each other and binding to the solute.
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Electric Potential Energy of Two Point Charges01:12

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The electric potential energy of a test charge in a uniform eclectic field can be generalized to any electric field produced by static charge distribution. Consider a positive test charge in an electric field produced by another static positive charge. If the test charge is moved away from the static charge, then the electric field does the positive work on the test charge, and the electric potential energy of the test charge decreases as it moves away from the static charge. Here the electric...
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In ordinary chemical reactions, the nucleus — which contains the protons and neutrons of each atom and thus identifies the element — remains unchanged. Electrons, however, can be added to atoms by transfer from other atoms, lost by transfer to other atoms, or shared with other atoms. The transfer and sharing of electrons among atoms govern the chemistry of the elements. During the formation of some compounds, atoms gain or lose electrons to form electrically charged particles called...
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激发状态能量的分子路由器:揭示了电荷和质子转移之间的溶剂控制的竞争.

Junyi Gong1, Zheng Zhao2, Ben Zhong Tang2,3

  • 1Faculty of Chemistry, Shenzhen MSU-BIT University, Longgang District, Shenzhen, Guangdong 518172, P. R. China.

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概括

研究人员开发了一种亚化合物,可以根据溶剂极性在双光和单光发射之间切换. 这一发现为光化学中控制激发状态动态提供了一种新的方法.

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科学领域:

  • 摄影化学的使用.
  • 超分子化学 超分子化学
  • 材料科学 材料科学 材料科学

背景情况:

  • 内分子电荷转移 (ICT) 和激发状态内分子质子转移 (ESIPT) 的整合通常会导致低于最佳的性能.
  • 一个持续的挑战是实现协同效应,在这种情况下,组合功能会产生增强的特性 (即"1 + 1 = 2").

研究的目的:

  • 设计和研究一种具有可调节的排放性质的亚基化合物.
  • 探索控制观察到的双重和单一发射行为的潜在光物理机制.
  • 通过溶剂效应展示一种控制激发状态动态的新策略.

主要方法:

  • 一种基于亚的新型化合物的合成.
  • 溶染色测量用于研究各种溶剂中的排放变化.
  • 光谱分析 (UV-Vis吸收,光发射) 以阐明光物理路径.
  • 计算建模以了解激发状态动态和能量景观.

主要成果:

  • 亚化合物在双排放和单排放模式之间表现出独特的solvatochromic切换.
  • 观察到的现象归因于ICT (S1状态) 和ESIPT (S2状态) 之间的溶剂门竞争.
  • 发现溶剂极性增加会动力阻断S2-ESIPT通路,有利于通过S1-ICT通道排放.

结论:

  • 一个基于亚的新型分子系统展示了在双排放和单排放之间可控的切换.
  • 溶剂极性作为一个关键的外部刺激来调节激发状态的分子内动力学.
  • 这项工作通过控制相互竞争的光物理路径来设计功能性材料的新范式.