The First Reaction Steps of Lithium-Mediated Ammonia Synthesis: Ab Initio Simulation

Nitrogen Pub Date : 2022-07-04 DOI:10.3390/nitrogen3030026
Dominykas Maniscalco, D. Rudolph, E. Nadimi, I. Frank
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引用次数: 1

Abstract

The reaction of molecular nitrogen with molecular hydrogen was simulated using ab initio molecular dynamics. The reaction was catalyzed by the addition of bulk lithium and oxygen. As is known from the experiment, the limiting step is the breaking of the nitrogen–nitrogen triple bond. We observed a mechanism that has not been discussed before: one of the nitrogen atoms of a nitrogen molecule is absorbed by the lithium bulk, whereas the other nitrogen atom reacts with hydrogen. Adding oxygen leads to a dominating reaction of oxygen with the lithium surface. The oxygen molecules break easily into single atoms and are, in part, absorbed by the lithium structure. Part of them remains on the surface and reacts with hydrogen. In this way, hydrogen is activated and can, in turn, react easily with molecular nitrogen. The overall reactivity as observed in the ab initio simulations reflects the extremely low density of lithium. Interstitial sites are readily occupied, leading to oxide and nitride structures.
锂介导的氨合成的第一个反应步骤:从头算模拟
采用从头算分子动力学方法模拟了分子氮与分子氢的反应。该反应通过添加大块锂和氧来催化。从实验可知,氮-氮三键的断裂是极限步骤。我们观察到一个以前没有讨论过的机制:氮分子的一个氮原子被锂体吸收,而另一个氮原子与氢反应。加入氧气导致氧与锂表面的主要反应。氧分子很容易分解成单个原子,部分被锂结构吸收。它们的一部分留在表面并与氢反应。通过这种方式,氢被激活,反过来,可以很容易地与分子氮反应。从头算模拟中观察到的总体反应性反映了锂的极低密度。间隙位置很容易被占据,导致氧化物和氮化物结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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