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高溫熔鹽體系惰性陽極與月壤電解制氧技術

Inert anode in a high-temperature molten salt system and oxygen generation by moon regolith electrolysis

  • 摘要: 目前,熔鹽電化學冶金普遍采用炭素陽極,陽極CO2產物是重要的碳排放源。若在高溫熔鹽體系中使用惰性析氧陽極,則可實現熔鹽電解過程低碳排放。因此,開發適用于熔鹽電解體系的惰性陽極至關重要,也是近年來國內外研究熱點。本文首先綜述了各種高溫熔鹽體系惰性陽極的研究進展,所涉及熔鹽體系包括:鋁電解氟化物鹽、CaCl2熔鹽、碳酸鹽和熔融氧化物等。另外,近年來月球開發利用受到廣泛關注,太陽能驅動的月壤原位熔鹽電化學制氧,將是支撐人類未來月面生存氧氣需求的重要方法之一,故惰性析氧陽極不可或缺。因此,本文也簡要綜述了基于惰性陽極的月壤電解制氧技術。

     

    Abstract: In 2020, China proposed to reach the peak of CO2 emissions before 2030 and achieve carbon neutrality by 2060, which is the so-called “carbon peak and carbon neutrality” strategy. Due to strategic requirements, the metallurgical industry has the responsibility of reducing its CO2 emission as it is one of the major CO2 emitters. Therefore, it is imperative to develop low-carbon metallurgical technology. High-temperature molten salt electrochemical metallurgy uses electrons as the energy carrier and reaction driving force, having the advantages of cleanliness and high efficiency. It is the main extraction technology for aluminum, rare earth elements, alkali metal, and alkaline earth metals. Currently, carbon anodes are commonly used in molten salt electrochemical metallurgy, and CO2 product is an important carbon emission source. If an inert oxygen evolution anode is used in a high-temperature molten salt system, then low-carbon emissions can be achieved in the molten salt electrolysis process. Therefore, the development of inert anodes suitable for molten salt electrolysis systems is very important, which has recently become a worldwide research hotspot. This article first reviewed the research progress of inert anodes in various high-temperature molten salt systems, including aluminum electrolytic fluoride salts, CaCl2 molten salts, carbonates, and molten oxides. Meanwhile, the recent development and the utilization of the moon have received widespread attention. In the future construction of lunar bases, oxygen will be the basic prerequisite for human survival. Solar-driven in-situ oxygen production with molten salt electrochemistry from the moon regolith will be an important method in the future to support the oxygen demand for human survival on the moon. Hence, inert oxygen evolution anodes are essential. Therefore, this article also briefly summarized oxygen production technology by moon regolith electrolysis based on inert anodes.

     

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