等离子体氨合成的最新进展:现状、挑战和展望

IF 3.3 3区 化学 Q2 CHEMISTRY, PHYSICAL
Xin Zeng, Shuai Zhang, Xiucui Hu, Cheng Zhang, Kostya (Ken) Ostrikov and Tao Shao
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引用次数: 0

摘要

随着温室效应的加剧和化石燃料资源的减少,迫切需要找到一种可行的解决方案,利用可再生能源将电力直接转化为化学品,实现零碳排放目标。有必要将可再生能源(即太阳能、风能、水能等)转化为电能,以取代化石燃料发电。因此,电能转化为化学品的方法越来越受到人们的关注。在过去的二十年里,非热等离子体、电催化、光催化以及它们的混合方法在电力到化学品的解决方案中显示出巨大的潜力。本文介绍了等离子体技术在能量转换中的应用,重点介绍了等离子体氨合成的三种主要途径,并分析了目前的研究进展。讨论了基于等离子体技术的合成氨研究成果。先进的原位诊断技术的应用证明了特定中间物质和反应途径的重要性。电子、振动激发物质、自由基和表面吸附物质在等离子体催化合成氨中起着重要的作用。结合实验和模拟,探讨了等离子体催化合成氨的机理。振动激发态能有效降低催化表面能垒。从等离子体氨合成技术的竞争优势出发,讨论了等离子体氨合成技术的技术经济学。报告强调,电力转化为化学品的方法可以适用于大多数化学品制造商,这些方法将在减少碳排放和环境污染方面发挥关键作用。最后,对电力化工行业未来的可持续发展提出了建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent advances in plasma-enabled ammonia synthesis: state-of-the-art, challenges, and outlook

Recent advances in plasma-enabled ammonia synthesis: state-of-the-art, challenges, and outlook

With the increase in the greenhouse effect and reduction of fossil fuel resources, it is urgent to find a feasible solution to directly convert power to chemicals using renewable energy and achieving zero carbon emissions targets. It is necessary to convert renewable energy (i.e., solar, wind, water, etc.) into electrical power replacing fossil-fuel-fired power. Therefore, the power-to-chemicals approach is gaining more and more attention. In the past two decades, non-thermal plasma, electro-catalysis, photo-catalysis, and their hybrid approaches have shown great potential for the power-to-chemicals solution. This paper introduces the application of plasma technology in energy conversion, focusing on three main routes for plasma-enabled ammonia synthesis, and analyses the state-of-the-art. Research results of ammonia synthesis based on plasma technology are discussed. The application of advanced in situ diagnostics evidences the importance of specific intermediate species and reaction pathways. Electrons, vibrationally-excited species, free radicals, and surface-adsorbed species play important roles in plasma-catalytic ammonia synthesis. Combined with experiments and simulations, the mechanisms of plasma-catalytic ammonia synthesis are examined. Vibrationally-excited species can effectively reduce the catalytic surface energy barrier. The techno-economics of the plasma-enabled ammonia synthesis technology is discussed in view of its competitive advantages. It is emphasized that the power-to-chemicals approach can be adapted for most chemical manufacturers, and these methods would play crucial roles in reducing carbon emissions and environmental pollution. Finally, suggestions are provided for the sustainable development of the power-to-chemicals industry in the future.

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来源期刊
Faraday Discussions
Faraday Discussions 化学-物理化学
自引率
0.00%
发文量
259
期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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