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A rigorous electrochemical ammonia synthesis protocol with quantitative isotope measurements.一种具有定量同位素测量的严格电化学氨合成方案。
Nature. 2019 Jun;570(7762):504-508. doi: 10.1038/s41586-019-1260-x. Epub 2019 May 22.
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Achieving a Record-High Yield Rate of 120.9 μgNH3  mgcat.-1  h-1 for N Electrochemical Reduction over Ru Single-Atom Catalysts.在钌单原子催化剂上实现了氮电化学还原创纪录的高产率,即120.9 μgNH₃ mgcat⁻¹ h⁻¹ 。
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An Amorphous Noble-Metal-Free Electrocatalyst that Enables Nitrogen Fixation under Ambient Conditions.一种能在环境条件下实现固氮的无定形无贵金属电催化剂。
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从惰性气体到肥料、燃料和精细化学品:氮的还原与固定。

From inert gas to fertilizer, fuel and fine chemicals: N reduction and fixation.

作者信息

Braun Artur, Bora Debajeet Kumar, Lauterbach Lars, Lettau Elisabeth, Wang Hongxin, Cramer Stephen P, Yang Feipeng, Guo Jinghua

机构信息

Empa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for High Performance Ceramics, Überland strasse 129, CH -8600, Dübendorf, Switzerland.

Artificial Photosynthesis Research Group, Centre for Nano and Materials Sciences, JAIN (Deemed to be University), Bangalore, India.

出版信息

Catal Today. 2022 Mar 1;387:186-196. doi: 10.1016/j.cattod.2021.04.020. Epub 2021 Apr 27.

DOI:10.1016/j.cattod.2021.04.020
PMID:35582111
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9109881/
Abstract

The 100th anniversary of a leading nitrogen fixation technology developer like CASALE SA is a reason to reflect over the 20th century successful solution of the problem of world food supply, and to look out for solutions for sustainable developments with respect to ammonia production. We review the role of nitrogen as essential chemical constituent in photosynthesis and biology, and component of ammonia as it is used as fertilizer for primary production by photosynthesis for farming and food supply and its future role as energy carrier. While novel synthesis methods and very advanced synchrotron based x-ray analytical techniques are being developed, we feel it is important to refer to the historical and economical context of nitrogen. The breaking of the N≡N triple bond remains a fundamental chemical and energetic problem in this context. We review the electrochemical ammonia synthesis as an energetically and environmentally benign method. Two relatively novel X-ray spectroscopy methods, which are relevant for the molecular understanding of the catalysts and biocatalysts, i.e. soft X-ray absorption spectroscopy and nuclear resonant vibration spectroscopy are presented. We illustrate the perceived reality in fertilizer usage on the field, and fertilizer production in the factory complex with photos and thus provide a contrast to the academic view of the molecular process of ammonia function and production.

摘要

像卡萨莱股份公司(CASALE SA)这样的领先固氮技术开发商迎来百年诞辰,这促使我们回顾20世纪解决全球粮食供应问题的成功方案,并探寻氨生产可持续发展的解决方案。我们审视了氮作为光合作用和生物学中基本化学成分的作用,以及氨作为肥料在光合作用初级生产中用于农业和粮食供应的组成部分,及其未来作为能量载体的作用。在开发新型合成方法和基于同步加速器的非常先进的X射线分析技术的同时,我们认为参考氮的历史和经济背景很重要。在此背景下,打破N≡N三键仍然是一个基本的化学和能量问题。我们回顾了电化学氨合成作为一种能量和环境友好型方法。介绍了两种相对新颖的X射线光谱方法,它们对于从分子层面理解催化剂和生物催化剂很重要,即软X射线吸收光谱和核共振振动光谱。我们展示了田间肥料使用和工厂综合体肥料生产的实际情况,并配有图片,从而与氨功能和生产分子过程的学术观点形成对比。