有機アジドから金媒介による二酸化窒素の排出
Chandrakanta Dash1, Muhammed Yousufuddin, Thomas R Cundari
1Department of Chemistry and Biochemistry, The University of Texas at Arlington , Arlington, Texas 76019, United States.
Journal of the American Chemical Society
|September 24, 2013
まとめ
研究者らは最初の黄金有機酸化物を分離し,その黄金介質の窒素排出化学を研究した. これは,ニトロンの中間物質なしで,オルガノアジドからイミンへの変換のための協調したプロセスを明らかにしました.
科学分野:
- 有機金属化学 有機金属化学
- 合成化学 合成化学とは
- 反応メカニズムの研究 反応メカニズムの研究
背景:
- オルガノアジドは,窒素断片および再配置製品のための貴重な前駆物質です.
- 金媒介反応は,現在の化学研究の重要な分野である.
- オルガノアジド化学とゴールド触媒の交差点は,未開拓の機会を提示しています.
研究 の 目的:
- 新規のゴールドオルガノアジド複合体を合成し,分離する.
- これらの複合体の金媒介窒素排出化学を調査するために.
- 金の存在下におけるオルガノアジド分解のメカニズムを解明する.
主な方法:
- N-ヘテロサイクリックカルベンのリガンドを用いた金オルガノアジド複合体の合成と分離.
- 窒素の排出とニトロンの再配置製品を研究するための金媒介反応.
- 構造と反応経路を分析するための計算研究 (DFT).
- 窒素除去の順序と活性化パラメータを決定するための運動学的研究.
主要な成果:
- 最初の安定した黄金のオルガノアジドである[SIPr]AuN[1-Ad]NN][SbF6],[SIPr]AuN[2-Ad]NN][SbF6],および[SIPr]AuN[Cy]NN][SbF6]を分離した.
- 金媒介の窒素排出の観察により,正式なニトロンの再配置製品が生成される.
- 計算と運動の研究は,オルガノアジドからイミンへの変換のための協調された非ニトロンの経路を示しています.
結論:
- この研究では,最初の分離可能な金オルガノアジドとそのユニークな反応性を確立しました.
- ゴールド・コーディネーションは,自由ニトロンの経路とは異なる協調メカニズムを通じて窒素の排出を促進します.
- これらの発見は,黄金の触媒とオルガノアジド変換に関する新しい洞察を提供します.
さらに関連する動画
関連する概念動画
1° Amines to Diazonium or Aryldiazonium Salts: Diazotization with NaNO2 Mechanism
Nitrous acid is a relatively weak and unstable acid prepared in situ by the reaction of sodium nitrite and cold, dilute hydrochloric acid. In an acidic solution, the nitrous acid undergoes protonation when it loses water to form a nitrosonium ion—an electrophile. Nitrous acid reacts with primary amines to give diazonium salts. The reaction is called diazotization of primary amines.
Preparation of 1° Amines: Azide Synthesis
Direct alkylation of ammonia produces polyalkylated amines, along with a quaternary ammonium salt. To exclusively prepare primary amines, the azide synthesis method can be used.
Azide ions act as good nucleophiles and react with unhindered alkyl halides to form alkyl azides. Alkyl azides do not participate in further nucleophilic substitution reactions, thereby eliminating the chances of polyalkylated products. Alkyl azides are reduced by hydride-based reducing agents, like lithium aluminum...
Azide ions act as good nucleophiles and react with unhindered alkyl halides to form alkyl azides. Alkyl azides do not participate in further nucleophilic substitution reactions, thereby eliminating the chances of polyalkylated products. Alkyl azides are reduced by hydride-based reducing agents, like lithium aluminum...
Carboxylic Acids to Methylesters: Alkylation using Diazomethane
Carboxylic acids react with diazomethane in an ether solvent via alkylation at the carboxylate oxygen atom to give methyl esters of the corresponding acid with excellent yields.
Diazonium Group Substitution: –OH and –H
Nitrous acid, a weak acid, is prepared in situ via the reaction of sodium nitrite with a strong acid under cold conditions. This nitrous acid prepared in situ reacts with primary arylamines to form arenediazonium salts. Such reactions are known as diazotization reactions. As shown in Figure 1, the formation of arenediazonium salts begins with the decomposition of nitrous acid in an acidic solution to give nitrosonium ions.
Nucleophilic Aromatic Substitution of Aryldiazonium Salts: Aromatic SN1
Treating arylamines with nitrous acid gives aryldiazonium salts that are effective substrates in nucleophilic aromatic substitution reactions. The diazonio group in these salts can be easily displaced by different nucleophiles, yielding a wide variety of substituted benzenes. The leaving group departs as nitrogen gas, and this easy elimination is the driving force for the substitution reaction.
In the Sandmeyer reaction, for example, the diazonio group is replaced by a chloro, bromo, or cyano...
In the Sandmeyer reaction, for example, the diazonio group is replaced by a chloro, bromo, or cyano...
Electrophilic Aromatic Substitution: Nitration of Benzene
The nitration of benzene is an example of an electrophilic aromatic substitution reaction. It involves the formation of a very powerful electrophile, the nitronium ion, which is linear in shape. The reaction occurs through the interaction of two strong acids, sulfuric and nitric acid.


