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Aldehydes and Ketones with HCN: Cyanohydrin Formation Mechanism01:10

Aldehydes and Ketones with HCN: Cyanohydrin Formation Mechanism

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Cyanohydrins are formed when cyanide nucleophiles and carbonyl compounds like aldehydes and ketones react. A strong base, the cyanide ion, catalyzes cyanohydrin formation. The ions are generated from HCN under aqueous conditions. Once the cyanide ions are generated, the first step involves the nucleophilic attack of the cyanide ions on the electrophilic carbonyl carbon. This attack shifts the π electrons from the C=O to the oxygen atom forming the alkoxide ion intermediate. The alkoxide anion...
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Nitriles to Amines: LiAlH4 Reduction00:55

Nitriles to Amines: LiAlH4 Reduction

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Nitriles are reduced to amines in the presence of strong reducing agents like lithium aluminum hydride through a typical nucleophilic acyl substitution. The reaction requires two equivalents of the reducing agent. The reducing agent acts as a source of hydride ions.
As shown below, the mechanism involves three steps. Firstly, the hydride ion acting as a nucleophile attacks the nitrile carbon to form an anion. In the second step, a second equivalent of the hydride ion attacks the anion to...
3.8K
ortho–para-Directing Activators: –CH3, –OH, –⁠NH2, –OCH301:11

ortho–para-Directing Activators: –CH3, –OH, –⁠NH2, –OCH3

6.3K
All ortho–para directors, excluding halogens, are activating groups. These groups donate electrons to the ring, making the ring carbons electron-rich. Consequently, the reactivity of the aromatic ring towards electrophilic substitution increases. For instance, the nitration of anisole is about 10,000 times faster than the nitration of benzene. The electron-donating effect of the methoxy group in anisole activates the ortho and para positions on the ring and stabilizes the corresponding...
6.3K
Nucleophilic Addition to the Carbonyl Group: General Mechanism01:18

Nucleophilic Addition to the Carbonyl Group: General Mechanism

5.9K
The carbonyl carbon in an aldehyde or ketone is the site of a nucleophilic attack due to its electron-deficient nature. Depending on the strength of the incoming nucleophile, the reaction occurs via different mechanistic pathways.
A stronger nucleophile can directly attack the electrophilic center, the carbonyl carbon. The HOMO orbital of the nucleophile interacts with the LUMO (π* antibonding) orbital present on the carbonyl carbon. This interaction breaks the π bond and shifts the...
5.9K
Nitriles to Carboxylic Acids: Hydrolysis01:08

Nitriles to Carboxylic Acids: Hydrolysis

4.1K
Nitriles undergo acid-catalyzed hydrolysis or base-catalyzed hydrolysis to form a carboxylic acid. These reactions proceed via an amide intermediate.
4.1K
Radical Substitution: Hydrogenolysis of Alkyl Halides with Tributyltin Hydride01:26

Radical Substitution: Hydrogenolysis of Alkyl Halides with Tributyltin Hydride

1.9K
Radical substitution reactions can be used to remove functional groups from molecules. The hydrogenolysis of alkyl halides is one such reaction, where the weak Sn–H bond in tributyltin hydride reacts with alkyl halides to form alkanes. Here, the reagent Bu3SnH yields tributyltin halide as a byproduct.
The bonds formed in this reaction are stronger than the bonds broken, making it energetically favorable. The reaction follows a radical chain mechanism similar to radical halogenation...
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Hydrolysis of a Ni-Schiff-Base Complex Using Conditions Suitable for Retention of Acid-labile Protecting Groups
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通过结构性特征的Ni (III) -Hydroxo复合体控制的C-H键激活

Hung-Ruei Pan1, John Wu1, Chun-Ming Tsai1

  • 1Department of Chemistry, National Cheng Kung University, Tainan 701, Taiwan.

Journal of the American Chemical Society
|July 25, 2025
PubMed
概括

研究人员开发了一种稳定的 (III) - 复合物,可激活强大的C-H键. 这一发现为选择性氧化和原子转移反应的机制提供了新的见解.

科学领域:

  • 有机金属化学
  • 催化剂
  • 合成化学

背景情况:

  • 强C-H键的选择性氧化是合成化学的一个重大挑战.
  • 对C-H键激活的机制和活性氧化剂尚未完全理解.
  • 开发稳定和可反应的金属氧或金属复合物至关重要.

研究的目的:

  • 隔离和表征一种新的单核Ni (III) - 复合物.
  • 调查Ni (III) -复合物的C-H键激活能力.
  • 阐明原子转移 (HAT) 和质子合电子转移 (PCET) 的机制.

主要方法:

  • 使用X射线晶体学对Ni (III) -水氧复合物的隔离和完整表征.
  • 用各种C-H基质,包括环素进行原子转移 (HAT) 反应性的研究.
  • 与基质特性 (pKa,BDE) 的反应速率相关的动力学研究.
  • 半经验性自由能量分析以确定质子转移 (PT) 的程度.

主要成果:

  • 一个室温稳定的单核Ni (III) -水氧复合物,[Na () 15c5) ][Ni () PS3′′ () OH) ] (2),已成功合成和表征.
  • 复合物2向强C-H键表现出原子转移 (HAT) 的反应性.

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  • 动力学研究表明PCET途径异步,主要由质子转移 (PT) 控制,最佳适合x值为0. 18.
  • 由此产生的Ni ((II) -水性物种的O-H键解离的自由能量被确定为96.6-100.3 kcal mol-1.
  • 结论:

    • (III) -复合物2是一种罕见的,明确的氧化剂,能够激活强大的C-H键.
    • 基质的基本性在调节PCET反应性方面起着至关重要的作用.
    • 这些发现为金属-物种介导的C-H键氧化提供了有价值的机理见解.