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Nitrogen Dissociation via Reaction with Lithium Alloys

机译:通过与锂合金反应的氮解离

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Lithium alloys are synthesized by reactions between lithium metal and group 14 elements, such as carbon, silicon, germanium, and tin. The nitrogenation and denitrogenation properties are investigated by thermal and structural analyses. All alloys dissociate the nitrogen triple bond of gaseous molecules to form atomic state as nitrides below 500 °C, which is lower than those required for conventional thermochemical and catalytic processes on nitride syntheses. For all alloys except for germanium, it is indicated that nanosized lithium nitride is formed as the product. The denitrogenation (nitrogen desorption) reaction by lithium nitride and metals, which is an ideal opposite reaction of nitrogenation, occurs by heating up to 600 °C to form lithium alloys. Among them, the lithium–tin alloy is a potential material to control the dissociation and recombination of nitrogen below 500 °C by the reversible reaction with the largest amount of utilizable lithium in the alloy phase. The nitrogenation and denitrogenation reactions of the lithium alloys at lower temperature are realized by the high reactivity with nitrogen and mobility of lithium. The above reactions based on lithium alloys are adapted to the ammonia synthesis. As a result, ammonia can be synthesized below 500 °C under 0.5 MPa of pressure. Therefore, the reaction using lithium alloys is recognized as a pseudocatalyst for the ammonia synthesis.
机译:锂合金通过锂金属和14组元素之间的反应合成,例如碳,硅,锗和锡。通过热和结构分析研究氮化和脱氮性能。所有合金都将气态分子的氮三键解离于500℃以下的氮化物中的原子态,其低于氮化物合成常规热化学和催化过程所需的原子状态。对于除锗外的所有合金,表明纳米级氮化锂形成为产物。通过加热高达600℃形成锂合金,通过加热至600℃,氮化锂和金属的氮化锂和金属反应的脱氮(氮气解吸)反应。其中,锂 - 锡合金是通过在合金相中的最大可用锂的可逆反应中控制低于500℃以下氮的离解和重组的潜在材料。锂合金在较低温度下的氮化和脱氮反应通过与锂的氮和迁移率的高反应性实现。基于锂合金的上述反应适用于氨合成。结果,氨可以在0.5MPa的压力下合成500℃以下。因此,使用锂合金的反应被认为是氨合成的伪催化剂。

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