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相关概念视频

Inorganic Nitrogen Assimilation01:22

Inorganic Nitrogen Assimilation

43
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...
43
Overview of Nitrogen Metabolism01:20

Overview of Nitrogen Metabolism

8.1K
Nitrogen is a very important element for life because it is a major constituent of proteins and nucleic acids. It is a macronutrient, and in nature, it is recycled from organic compounds and stored in the form of  ammonia, ammonium ions, nitrate, nitrite, or  nitrogen gas by many metabolic processes. Many of these metabolic processes are carried out only by prokaryotes.
The largest pool of nitrogen available in the terrestrial ecosystem is gaseous nitrogen (N2) from the air, but this...
8.1K
The Nitrogen Cycle01:49

The Nitrogen Cycle

52.7K
Nitrogen atoms, present in all proteins and DNA, are recycled between abiotic and biotic components of the ecosystem. However, the primary form of nitrogen on Earth is nitrogen gas, which cannot be used by most animals and plants. Thus, nitrogen gas must first be converted into a usable form by nitrogen-fixing bacteria before it can be cycled through other living organisms. The use of nitrogen-containing fertilizers and animal waste products in human agriculture has greatly influenced the...
52.7K
Carbon-dioxide Fixation01:28

Carbon-dioxide Fixation

37
Carbon dioxide fixation in prokaryotes enables the assimilation of inorganic carbon into organic molecules, supporting biosynthetic pathways, sustaining ecosystems, and contributing to the global carbon cycle. It also has industrial applications in carbon capture and bioproduct synthesis. Autotrophic organisms rely on this process to utilize CO₂ as a carbon source in diverse environments.The Calvin CycleThe Calvin cycle is the most widespread carbon fixation mechanism, primarily used by...
37

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相关实验视频

Updated: Jul 16, 2025

Laser-Induced Fluorescence Emission L.I.F.E. as Novel Non-Invasive Tool for In-Situ Measurements of Biomarkers in Cryospheric Habitats
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Laser-Induced Fluorescence Emission L.I.F.E. as Novel Non-Invasive Tool for In-Situ Measurements of Biomarkers in Cryospheric Habitats

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激光诱导的固定是由于激光的作用.

Huize Wang1, Ranga Rohit Seemakurthi2, Gao-Feng Chen3

  • 1Department of Colloid Chemistry, Max Planck Institute of Colloids and Interfaces, Research Campus Golm, Potsdam, Germany.

Nature communications
|September 13, 2023
PubMed
概括

研究人员开发了一种新的方法,用于在环境条件下合成氨,使用激光诱导的氧化解离. 这种方法显著提高了氨产量,为工业脱碳提供了一个有希望的替代方案.

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Laser-Induced Fluorescence Emission L.I.F.E. as Novel Non-Invasive Tool for In-Situ Measurements of Biomarkers in Cryospheric Habitats
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科学领域:

  • 化学工程是化学工程的重要组成部分.
  • 材料科学 材料科学 材料科学
  • 摄影化学的使用.

背景情况:

  • 工业氨生产是能源密集型的,也是二氧化碳排放的主要来源.
  • 目前的基于可再生能源的氨合成方法由于产量和效率低,缺乏工业可扩展性.

研究的目的:

  • 在环境条件下开发一种新,高效和可扩展的氨合成方法.
  • 通过激光诱导化学来展示固的新方法.

主要方法:

  • 在红外光下利用激光诱导的氧化的多光子解离.
  • 通过激光生成的零价值金属和随后的水解通过固定合成氨.
  • 采用商用二氧化碳激光器用于聚焦红外光的产生.

主要成果:

  • 在25°C和1.0巴气下实现了30.9微摩尔/秒/厘米2的氨产率纪录.
  • 经过证明的氨合成率比现有的环境条件方法高两倍.
  • 验证了使用太阳能送激光器用于固的潜力.

结论:

  • 激光诱导的氧化解离为氨合成提供了高效的途径.
  • 这项技术为脱碳氨生产提供了重大进步,并使局部合成成为可能.
  • 该方法为新的激光驱动化学应用开辟了道路.