相关实验视频
Updated: Jul 14, 2026

09:45
A Protocol for Safe Lithiation Reactions Using Organolithium Reagents
Published on: November 12, 2016
在以烯基为基础的中性基导体导体中共振价值键基态
1Departments of Chemistry and Chemical and Environmental Engineering, University of California, Riverside, CA 92521-0403, USA.
概括
这项研究介绍了一种新的有机材料,具有金属特性,如室温导电性和保利磁性. 这些特征是由一个独特的共振价值键基本状态模型解释的.
科学领域:
- 材料科学 材料科学 材料科学
- 有机电子 有机电子
- 固态物理 固态物理
背景情况:
- 有机基质材料为电子应用提供了潜力.
- 了解这些材料的电子特性对于其发展至关重要.
研究的目的:
- 为了合成和表征一种基于螺旋烯系统的新型有机材料.
- 研究该材料的电子和磁性特性,并解决明显的矛盾.
主要方法:
- 有机物质的合成.
- 测量室温导电性的测量.
- 分析磁性易感性和光学能量差距.
- 使用扩展的Hückel计算进行计算建模.
主要成果:
- 该材料的室温导电率为0.3S/cm.
- 帕利磁性表示一种金属特性,在费米水平上具有高密度的状态.
- 尽管有金属指示器,但观察到活性导电性和光能差距.
- 扩展的Hückel计算表明3D有机金属具有0.5 eV带宽.
结论:
- 观察到的属性通过修改的共振价值键基本状态模型进行调和.
- 这项工作提供了对有机激进材料复杂电子行为的洞察.
- 这些发现为设计新的有机导体铺平了道路.
相关概念视频
Leveling Effect and Non-Aqueous Acid-Base Solutions
This lesson defines the leveling effect in acidic and basic solutions and its role in aqueous and non-aqueous solutions. It is essential to understand the competing nature of various species in a chemical system.
The Leveling Effect of a Solvent
A generic acid (HA) reacts with the generic base (B-) to yield the corresponding conjugate base (A-) and conjugate acid (HB):
The Leveling Effect of a Solvent
A generic acid (HA) reacts with the generic base (B-) to yield the corresponding conjugate base (A-) and conjugate acid (HB):
Acidity and Basicity of Carboxylic Acid Derivatives
Carboxylic acids are the strongest among organic acids, as they readily lose the hydroxyl proton to form a resonance-stabilized carboxylate ion. In comparison, the acid derivatives lack acidic hydrogens directly attached to a functional group. In these compounds, the acidic nature arises from their ability to lose α hydrogens, making them weakly acidic.
The relative acidic strength of the derivatives can be explained based on the extent of resonance stabilization of the conjugate base. The...
The relative acidic strength of the derivatives can be explained based on the extent of resonance stabilization of the conjugate base. The...
Basicity of Aliphatic Amines
Amines can behave as Brønsted–Lowry bases by accepting a proton from the acid to form corresponding conjugate acids. Due to a lone pair of nonbonding electrons, aliphatic amines can also act as Lewis bases by forming a covalent bond with an electrophile.
To measure the basicity of amines, two conventions are generally used. The first defines Kb as the basicity constant for the deprotonation reaction of water by the amine, as presented in Figure 1. Conventionally, lower Kb indicates higher...
To measure the basicity of amines, two conventions are generally used. The first defines Kb as the basicity constant for the deprotonation reaction of water by the amine, as presented in Figure 1. Conventionally, lower Kb indicates higher...
Basicity of Heterocyclic Aromatic Amines
Heterocyclic amines, where the N atom is a part of an alicyclic system, are similar in basicity to alkylamines. Interestingly, the heterocyclic amine having a nitrogen atom as part of an aromatic ring has much less basicity than its corresponding alicyclic counterpart. For this reason, as presented in Figure 1, piperidine (pKb = 2.8) is significantly more basic than pyridine (pKb = 8.8).
Factors Affecting α-Alkylation of Ketones: Choice of Base
α-Alkylation of ketones is achieved in the presence of alkyl halides and a base. The reaction proceeds via the formation of an enolate ion followed by nucleophilic substitution. The choice of base employed is essential as it is the key factor in determining the reaction outcome.
The reaction involving bases like EtO− whose conjugate acid EtOH (pKa = 15.9) is stronger than the ketone (pKa = 19.2) results in an equilibrium mixture with higher ketone concentration. As a consequence, side reactions...
The reaction involving bases like EtO− whose conjugate acid EtOH (pKa = 15.9) is stronger than the ketone (pKa = 19.2) results in an equilibrium mixture with higher ketone concentration. As a consequence, side reactions...
Leveling Effect
In acid-base chemistry, the leveling effect refers to the limitation imposed by the solvent on the strength of acids and bases in solution. When a base stronger than the solvent's conjugate base is used, it deprotonates the solvent until the base is entirely consumed, making it ineffective against weaker acids. Conversely, an acid stronger than the solvent's conjugate acid protonates the solvent until the acid is depleted, rendering it ineffective against weaker bases. Essentially, the solvent...

