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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Effect of Pore Confinement of LiNH2 on Ammonia Decomposition Catalysis and the Storage of Hydrogen and Ammonia
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Effect of Pore Confinement of LiNH2 on Ammonia Decomposition Catalysis and the Storage of Hydrogen and Ammonia

机译:LiNH2的孔隙限制对氨分解催化和氢氨存储的影响

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LiNH2 is of interest to several aspects of energy storage such as reversible hydrogen storage, battery technology, catalysis, and ammonia capture/storage. We investigated the impact of nanoconfinement in carbon scaffolds on the hydrogen and ammonia release properties of LiNH2 and its catalytic activity in NH3 decomposition. Ammonia release from macrocrystalline LiNH2 begins at 350 degrees C, while confined LiNH2 releases ammonia from below 100 degrees C under helium flow. This ammonia release consisted of 30.S wt % ammonia in the first cycle and was found to be partially reversible. Above 300 degrees C, hydrogen is also released due to an irreversible reaction between LiNH2 and the carbon support to form Li2NCN. Ni-doped LiNH2/C nanocomposites were active in the catalytic decomposition of ammonia into N-2 and H-2 with 53% conversion at 400 degrees C and a gas hourly space velocity of 13000 h(-1). This is comparable to the performance of a commercial-type Ru-based catalyst where 79% conversion is observed under the same conditions. This work demonstrates that nanoconfinement is effective for improving the functionality of LiNH2. The versatility of this system offers promise in a number of different areas including hydrogen/ammonia storage and ammonia decomposition catalysis.
机译:LiNH 2在能量存储的多个方面都令人感兴趣,例如可逆的氢存储,电池技术,催化作用以及氨的捕获/存储。我们研究了碳支架中的纳米限制对LiNH2的氢和氨释放特性及其在NH3分解中的催化活性的影响。从大晶体LiNH2释放的氨开始于350摄氏度,而受限的LiNH2在氦气流下从100摄氏度以下释放氨。在第一个循环中,这种氨释放包括30.S wt%的氨,并且发现是部分可逆的。高于300摄氏度,由于LiNH2和碳载体之间发生不可逆反应而形成Li2NCN,氢也被释放。镍掺杂的LiNH2 / C纳米复合材料在400℃和13000 h(-1)的气体时空速下,以53%的转化率将氨催化分解为N-2和H-2。这可与商业型Ru基催化剂的性能相比,后者在相同条件下的转化率为79%。这项工作表明,纳米约束可以有效地改善LiNH2的功能。该系统的多功能性在包括氢气/氨气存储和氨分解催化在内的许多不同领域都提供了希望。

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