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相关概念视频

Inorganic Nitrogen Assimilation01:22

Inorganic Nitrogen Assimilation

116
Nitrogen is an essential element in biological systems, forming a crucial component of proteins, nucleic acids, and other cellular constituents. Many bacteria and archaea acquire nitrogen in the form of nitrate (NO₃⁻) or ammonia (NH₃), which are then assimilated into biomolecules through specific enzymatic pathways.Assimilatory Nitrate ReductionWhen nitrate enters the cell, it undergoes a two-step reduction process known as assimilatory nitrate reduction. Initially, the enzyme...
116
The Equilibrium Constant03:10

The Equilibrium Constant

49.4K
Consider the oxidation of sulfur dioxide:
49.4K
2° Amines to N-Nitrosamines: Reaction with NaNO201:20

2° Amines to N-Nitrosamines: Reaction with NaNO2

4.6K
Secondary amines react with nitrous acid to form N-nitrosamines, as depicted in Figure 1. Nitrous acid, a weak and unstable acid, is formed in situ from an aqueous solution of sodium nitrite and strong acids, such as hydrochloric acid or sulfuric acid, in cold conditions. In the presence of an acid, the nitrous acid gets protonated. The subsequent loss of water results in the formation of the electrophile known as nitrosonium ion.
4.6K
Preparation of Amines: Alkylation of Ammonia and Amines01:30

Preparation of Amines: Alkylation of Ammonia and Amines

3.7K
Alkylation is one of the methods used to prepare amines. Direct alkylation of ammonia or a primary amine with an alkyl halide gives polyalkylated amines along with a quaternary ammonium salt through successive SN2 reactions. This process of making the quaternary salt through the direct alkylation method is called exhaustive alkylation.
Each alkylation step makes the nitrogen center more nucleophilic, which triggers successive alkylations until a quaternary ammonium salt is formed. Considering...
3.7K
1° Amines to Diazonium or Aryldiazonium Salts: Diazotization with NaNO2 Mechanism01:37

1° Amines to Diazonium or Aryldiazonium Salts: Diazotization with NaNO2 Mechanism

4.0K
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.
4.0K
Preparation of Nitriles01:12

Preparation of Nitriles

2.2K
One of the common methods to prepare nitriles is the dehydration of amides. This method requires strong dehydrating agents like phosphorous pentoxide or boiling acetic anhydride for converting amides to nitriles. Another reagent namely, thionyl chloride also accomplishes the dehydration of amides, where amide acts as a nucleophile. The first step of the mechanism involves the nucleophilic attack by the amide on the thionyl chloride to form an intermediate. In the next step, the electron pairs...
2.2K

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相关实验视频

Updated: Sep 17, 2025

Measurement of the Potential Rates of Dissimilatory Nitrate Reduction to Ammonium Based on 14NH4+/15NH4+ Analyses via Sequential Conversion to N2O
08:05

Measurement of the Potential Rates of Dissimilatory Nitrate Reduction to Ammonium Based on 14NH4+/15NH4+ Analyses via Sequential Conversion to N2O

Published on: October 7, 2020

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通过在固体-液体界面的反应剂丰富,将近单位酸盐转化为氨.

Wanru Liao1,2, Jun Wang1,2, Yao Tan1

  • 1Hunan Joint International Research Center for Carbon Dioxide Resource Utilization, State Key Laboratory of Powder Metallurgy, School of Physics, Central South University, Changsha, 410083, Hunan, P. R. China.

Nature communications
|July 2, 2025
PubMed
概括

将酸盐电还原为氨是能源解决方案的关键. 这项研究通过工程催化剂来提高酸盐的减少,以吸引酸盐离子,从而提高氨生产效率,即使在低度.

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Measurement of the Potential Rates of Dissimilatory Nitrate Reduction to Ammonium Based on 14NH4+/15NH4+ Analyses via Sequential Conversion to N2O
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Measurement of the Potential Rates of Dissimilatory Nitrate Reduction to Ammonium Based on 14NH4+/15NH4+ Analyses via Sequential Conversion to N2O

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科学领域:

  • 电化学 电化学 电化学
  • 材料科学 材料科学 材料科学
  • 催化剂是一种催化剂.

背景情况:

  • 酸盐电还原为氨 (NH3) 提供了一个可持续的能源途径.
  • 活动受到酸盐 (NO3-) 质量转移限制的阻碍,特别是在低度下.
  • 阴极表面的电子排斥阻碍了酸盐进入内赫尔姆霍尔茨平面 (IHP).

研究的目的:

  • 开发一种通用策略,通过催化剂带结构工程来增强酸盐电还原.
  • 为了改善电极-电解质接口的酸盐离子丰富.
  • 为了克服质量转移的局限性,以实现高效的氨合成.

主要方法:

  • 在Ag-doped MoS2 (Ag-MoS2) 催化剂中使用的固体-液体 (S-L) 连接形成.
  • 设计了催化剂带结构,以促进电荷重新排列和离子吸引.
  • 研究了电极/电解质接口上的孔转移动态.

主要成果:

  • 与对照组相比,Ag-MoS2在IHP中的酸盐度增加了约28.6倍.
  • 达到接近100%的氨 (NH3) 法拉代效率.
  • 在超低酸盐度下,获得了~20 mg h-1 cm-2 的氨产率.

结论:

  • 催化剂带结构工程通过S-L连接有效丰富酸盐离子.
  • 这种方法显著提高了酸盐电还原到氨的效率.
  • 该战略有望在可持续的氨生产中实现实际应用.