| Literature DB >> 32948092 |
Chengliang Mao1,2, Jiaxian Wang1, Yunjie Zou1, Guodong Qi3, Joel Yi Yang Loh4, Tianhua Zhang5, Meikun Xia2, Jun Xu3, Feng Deng3, Mireille Ghoussoub2, Nazir P Kherani4, Lu Wang2, Huan Shang1, Meiqi Li1, Jie Li1, Xiao Liu1, Zhihui Ai1, Geoffrey A Ozin2, Jincai Zhao1, Lizhi Zhang1.
Abstract
Optimizing kinetic barriers of ammonia synthesis to reduce the energy intensity has recently attracted significant research interest. The motivation for the research is to discover means by which activation barriers of N2 dissociation and NHz (z = 1-2, surface intermediates) destabilization can be reduced simultaneously, that is, breaking the "scaling relationship". However, by far only a single success has been reported in 2016 based on the discovery of a strong-weak N-bonding pair: transition metals (nitrides)-LiH. Described herein is a second example that is counterintuitively founded upon a strong-strong N-bonding pair unveiled in a bifunctional nanoscale catalyst TiO2-xHy/Fe (where 0.02 ≤ x ≤ 0.03 and 0 < y < 0.03), in which hydrogen spillover (H) from Fe to cascade oxygen vacancies (OV-OV) results in the trapped form of OV-H on the TiO2-xHy component. The Fe component thus enables facile activation of N2, while the OV-H in TiO2-xHy hydrogenates the N or NHz to NH3 easily.Entities:
Year: 2020 PMID: 32948092 DOI: 10.1021/jacs.0c06118
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419