Literature DB >> 31021087

Synergy of Single-Atom Ni1 and Ru1 Sites on CeO2 for Dry Reforming of CH4.

Yu Tang1,2, Yuechang Wei2, Ziyun Wang3, Shiran Zhang2, Yuting Li2, Luan Nguyen2, Yixiao Li2, Yan Zhou4, Wenjie Shen4, Franklin Feng Tao1,2, Peijun Hu3.   

Abstract

Heterogeneous catalysis performs on specific sites of a catalyst surface even if specific sites of many catalysts during catalysis could not be identified readily. Design of a catalyst by managing catalytic sites on an atomic scale is significant for tuning catalytic performance and offering high activity and selectivity at a relatively low temperature. Here, we report a synergy effect of two sets of single-atom sites (Ni1 and Ru1) anchored on the surface of a CeO2 nanorod, Ce0.95Ni0.025Ru0.025O2. The surface of this catalyst, Ce0.95Ni0.025Ru0.025O2, consists of two sets of single-atom sites which are highly active for reforming CH4 using CO2 with a turnover rate of producing 73.6 H2 molecules on each site per second at 560 °C. Selectivity for producing H2 at this temperature is 98.5%. The single-atom sites Ni1 and Ru1 anchored on the CeO2 surface of Ce0.95Ni0.025Ru0.025O2 remain singly dispersed and in a cationic state during catalysis up to 600 °C. The two sets of single-atom sites play a synergistic role, evidenced by lower apparent activation barrier and higher turnover rate for production of H2 and CO on Ce0.95Ni0.025Ru0.025O2 in contrast to Ce0.95Ni0.05O2 with only Ni1 single-atom sites and Ce0.95Ru0.05O2 with only Ru1 single-atom sites. Computational studies suggest a molecular mechanism for the observed synergy effects, which originate at (1) the different roles of Ni1 and Ru1 sites in terms of activations of CH4 to form CO on a Ni1 site and dissociation of CO2 to CO on a Ru1 site, respectively and (2) the sequential role in terms of first forming H atoms through activation of CH4 on a Ni1 site and then coupling of H atoms to form H2 on a Ru1 site. These synergistic effects of the two sets of single-atom sites on the same surface demonstrated a new method for designing a catalyst with high activity and selectivity at a relatively low temperature.

Entities:  

Year:  2019        PMID: 31021087     DOI: 10.1021/jacs.8b10910

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  4 in total

1.  Dual-atom Pt heterogeneous catalyst with excellent catalytic performances for the selective hydrogenation and epoxidation.

Authors:  Shubo Tian; Bingxue Wang; Wanbing Gong; Zizhan He; Qi Xu; Wenxing Chen; Qinghua Zhang; Youqi Zhu; Jiarui Yang; Qiang Fu; Chun Chen; Yuxiang Bu; Lin Gu; Xiaoming Sun; Huijun Zhao; Dingsheng Wang; Yadong Li
Journal:  Nat Commun       Date:  2021-05-26       Impact factor: 14.919

2.  Atomically dispersed nickel as coke-resistant active sites for methane dry reforming.

Authors:  Mohcin Akri; Shu Zhao; Xiaoyu Li; Ketao Zang; Adam F Lee; Mark A Isaacs; Wei Xi; Yuvaraj Gangarajula; Jun Luo; Yujing Ren; Yi-Tao Cui; Lei Li; Yang Su; Xiaoli Pan; Wu Wen; Yang Pan; Karen Wilson; Lin Li; Botao Qiao; Hirofumi Ishii; Yen-Fa Liao; Aiqin Wang; Xiaodong Wang; Tao Zhang
Journal:  Nat Commun       Date:  2019-11-15       Impact factor: 14.919

3.  Enhanced localized dipole of Pt-Au single-site catalyst for solar water splitting.

Authors:  Xingyu Liu; Zhifei Hao; Haitao Wang; Tuo Wang; Zhurui Shen; Hao Zhang; Sihui Zhan; Jinlong Gong
Journal:  Proc Natl Acad Sci U S A       Date:  2022-02-22       Impact factor: 12.779

4.  Thermally-stable single-atom catalysts and beyond: A perspective.

Authors:  Sixu Liu; Jiwei Li; Haifeng Xiong
Journal:  Front Chem       Date:  2022-07-14       Impact factor: 5.545

  4 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.