Dongil A B
Institute of Catalysis and Petrochemistry, CSIC, c/Marie Curie No. 2, Cantoblanco, 28049 Madrid, Spain.
UA UNED-ICP (CSIC) Group Des. Appl. Heter. Catal, 28049 Madrid, Spain.
Nanomaterials (Basel). 2019 Aug 2;9(8):1111. doi: 10.3390/nano9081111.
This short review aims at providing an overview of the most recent literature regarding transition metal nitrides (TMN) applied in heterogeneous catalysis. These materials have received renewed attention in the last decade due to its potential to substitute noble metals mainly in biomass and energy transformations, the decomposition of ammonia being one of the most studied reactions. The reactions considered in this review are limited to thermal catalysis. However the potential of these materials spreads to other key applications as photo- and electrocatalysis in hydrogen and oxygen evolution reactions. Mono, binary and exceptionally ternary metal nitrides have been synthetized and evaluated as catalysts and, in some cases, promoters are added to the structure in an attempt to improve their catalytic performance. The objective of the latest research is finding new synthesis methods that allow to obtain smaller metal nanoparticles and increase the surface area to improve their activity, selectivity and stability under reaction conditions. After a brief introduction and description of the most employed synthetic methods, the review has been divided in the application of transition metal nitrides in the following reactions: hydrotreatment, oxidation and ammonia synthesis and decomposition.
这篇简短的综述旨在概述有关应用于多相催化的过渡金属氮化物(TMN)的最新文献。在过去十年中,这些材料因其在生物质和能量转化中替代贵金属的潜力而重新受到关注,氨分解是研究最多的反应之一。本综述中考虑的反应仅限于热催化。然而,这些材料的潜力还扩展到其他关键应用,如在析氢和析氧反应中的光催化和电催化。单金属、二元金属以及特殊的三元金属氮化物已被合成并作为催化剂进行评估,在某些情况下,还会向结构中添加促进剂以试图提高其催化性能。最新研究的目标是找到新的合成方法,从而能够获得更小的金属纳米颗粒并增加表面积,以提高它们在反应条件下的活性、选择性和稳定性。在简要介绍和描述了最常用的合成方法之后,综述分为过渡金属氮化物在以下反应中的应用:加氢处理、氧化以及氨的合成与分解。