4.8 Article

Size-dependent activity of supported Ru catalysts for ammonia synthesis at mild conditions

期刊

JOURNAL OF CATALYSIS
卷 408, 期 -, 页码 98-108

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcat.2022.02.024

关键词

Ammonia synthesis; Size effect; Ru nanoclusters; Corner sites; Associative route

资金

  1. National key research and development program [2021YFB4000400, 2021YFB4000401]
  2. National Key Natural Science Foundation of China [22038002]
  3. National Natural Science Foundation of China [21972019, 22108037]
  4. Fujian Outstanding Youth Fund [2019J06011]

向作者/读者索取更多资源

The impact of Ru size on NH3 synthesis is investigated in this study. The reduction of Ru particle size can increase the NH3 synthesis rate, and the 1.4 nm Ru nanoclusters show the highest activity.
Ammonia (NH3) synthesis is a structure-sensitive reaction, where a minute variation of catalyst structure would lead to a dramatic change of activity. To date, the roles of Ru size on NH3 synthesis still remain elusive, and it remains a major challenge. Herein, a series of Ru catalysts with sizes ranging from 1.4 to 5.0 nm were prepared by colloidal Ru deposition, which allows the investigation of size influence on NH3 synthesis. Through analyses of the geometric and electronic properties of variable-sized Ru particles, it shows that the reduction of Ru particle size could increase the proportion of corner sites while decrease that of terrace sites, which can decrease the work function and thus promote N-2 for its activation. Isotopic investigations show that the decrease of dissociative contribution but the increase of associative contribution as Ru particle size was decreased from 5.0 to 1.4 nm. Meanwhile, the NH3 synthesis rate increases when the size of Ru catalysts decreases from 5.0 to 1.4 nm. Using a suite of elaborate characterizations, we have observed that 1.4 nm Ru nanoclusters (NCs) with ample corner sites are conducive to activate N-2 via an associative route. As a result, the 1.4 nm Ru NCs catalyst shows the highest NH3 synthesis rate (up to 17.13 mmol(NH3) g(cat)(1)h(-1)) at 400 degrees C and 1 MPa. (C) 2022 Elsevier Inc. All rights reserved.

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