Active nitrogen mediated selective ruthenium migration on ceria for high pressure ammonia decomposition

G Gunjoo Kim G Gahong Kim H Hyunsik Hwang E Eunseong Yoo J Jae-eon Hwang J Jae Won Lee H Hae Ryeong Lee K Keunsoo Kim H Hyangsoo Jeong Y Yongmin Kim S Suk Woo Nam S Sungeun Yang A Andreas T. Güntner H Hyunjoo Lee (Department of Chemical and Biomolecular Engineering) K Keun Hwa Chae H Hyung Chul Ham H Hyuntae Sohn

Abstract

Abstract Precise stabilization of atomic structures under reaction environments remains a central challenge in heterogeneous catalysis. Here, we demonstrate that ammonia (NH 3 ) serves as a chemically active nitrogen source to derive the selective migration of ruthenium (Ru) atoms onto ceria (CeO 2 ) domains, forming a durable atomically dispersed structure. During ammonia decomposition, nitrogen-containing intermediates promote atomic redistribution of Ru and anchor the atoms selectively at CeO 2 , yielding stable Ru-ceria interfaces. The resulting catalyst exhibits high activity in high-pressure ammonia decomposition for hydrogen production, attributed to its lowered activation energy and mitigated hydrogen poisoning. Furthermore, both the catalytic performance and the atomic Ru structure are preserved during long-term high-pressure operation, confirming the exceptional structural stability of the designed configuration. This study establishes active-nitrogen-driven migration as an effective strategy for constructing robust and reaction-friendly catalyst surface.

Article Details

Volume / Issue Vol. 17, Issue 1
Published June 15, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

G

Gunjoo Kim

G

Gahong Kim

H

Hyunsik Hwang

E

Eunseong Yoo

J

Jae-eon Hwang

J

Jae Won Lee

H

Hae Ryeong Lee

K

Keunsoo Kim

H

Hyangsoo Jeong

Y

Yongmin Kim

S

Suk Woo Nam

S

Sungeun Yang

A

Andreas T. Güntner

H

Hyunjoo Lee

Department of Chemical and Biomolecular Engineering

K

Keun Hwa Chae

H

Hyung Chul Ham

H

Hyuntae Sohn