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Researchers realize ammonia synthesis at metallic Li/Ru interface under ambient conditions

03.11.26 | Dalian Institute of Chemical Physics, Chinese Academy Sciences

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Ammonia (NH 3 ) synthesis from nitrogen (N 2 ) and hydrogen (H 2 ) is an important chemical reaction. Because of the high stability of the N≡N triple bond in N 2 , industrial NH 3 production mainly relies on the Haber-Bosch process, which converts N 2 and H 2 to NH 3 under high temperatures and high pressures. This process is highly energy-intensive and associated with substantial carbon emissions.

In a study published in Chem , a team led by Prof. DENG Dehui and Prof. YU Liang from the Dalian Institute of Chemical Physics of the Chinese Academy of Sciences (CAS), along with Prof. CUI Yi from the Suzhou Institute of Nano-Tech and Nano-Bionics of CAS, developed a novel catalyst which enables thermocatalytic conversion of N 2 and H 2 to NH 3 at room temperature and ambient pressure.

The researchers deposited metallic lithium (Li) on ruthenium (Ru) surface to form highly active Li/Ru interfaces. They found that this interface exhibited a synergetic effect that promoted both N 2 activation and hydrogenation steps. Electron donation from Li to the antibonding orbital of adsorbed N 2 facilitated N 2 dissociation, while Li-N bonding interaction favored the hydrogenation of NH x intermediates.

Moreover, the researchers demonstrated the ambient-condition NH 3 synthesis in a reversible Li battery, with Li metal as the anode and well-dispersed Ru nanoparticles on carbon nanotubes (Ru/CNTs) as the cathode. They found that Li/Ru interfaces were generated in situ during battery discharge. With a mixture of N 2 and H 2 flowing across the Li/Ru interface on the cathode, an NH 3 productivity of 2.43 mmol NH3 g Ru -1 h -1 was achieved at about 25°C and 0.1 MPa.

Furthermore, the charge-discharge cycling of the Li battery enabled the in situ generation and regeneration of the Li/Ru interfaces. This process operated stably for over 400 hours across more than 120 cycles. "Integrated with high-efficiency energy-storage Li battery systems, this process provides a new way to establish a low-energy and sustainable paradigm for NH 3 synthesis," said Prof. DENG.

Chem

10.1016/j.chempr.2025.102884

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Ammonia synthesis at metallic Li/Ru interfaces under ambient conditions

10-Feb-2026

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Contact Information

Jean Wang
Dalian Institute of Chemical Physics, Chinese Academy Sciences
wangyj@dicp.ac.cn

How to Cite This Article

APA:
Dalian Institute of Chemical Physics, Chinese Academy Sciences. (2026, March 11). Researchers realize ammonia synthesis at metallic Li/Ru interface under ambient conditions. Brightsurf News. https://www.brightsurf.com/news/LDEMKXK8/researchers-realize-ammonia-synthesis-at-metallic-liru-interface-under-ambient-conditions.html
MLA:
"Researchers realize ammonia synthesis at metallic Li/Ru interface under ambient conditions." Brightsurf News, Mar. 11 2026, https://www.brightsurf.com/news/LDEMKXK8/researchers-realize-ammonia-synthesis-at-metallic-liru-interface-under-ambient-conditions.html.