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LJ
Verified CAS / Academic Author2 Decoded Studies

Prof. LIANG Jin-Xia

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4103-8

Urea synthesis via thermal catalytic coupling of N2 with CO2 on singly dispersed Co1Ru3 bimetallic clusters: a theoretical perspective

The industrial production of urea through the integrated Haber–Bosch and Bosch–Meiser processes involves high energy consumption and significant CO2 emissions. Given the persistent technical challenges inherent in direct electrocatalytic methods, catalytic systems that enable the thermal coupling of N2 and CO2 under mild conditions represent a promising and sustainable approach to urea synthesis. Herein, we designed MXene-based bimetallic single-cluster catalysts, M1Ru3@Mo2CO2, in which the M1Ru3 cluster is stably anchored on the Mo2CO2 support. Using density functional theory calculations, we systematically evaluated the structural stability and adsorption capabilities of 3d transition metal variants (M = Sc to Zn) toward N2, CO2, and H2. The results demonstrate that Co1Ru3@Mo2CO2 exhibits excellent thermodynamic stability and enables the synergistic activation of N2, CO2, and H2, fulfilling the prerequisite conditions for catalyzing the direct coupling of N2 and CO2 to form urea. Further analysis reveals that Co1Ru3@Mo2CO2 efficiently promotes the direct thermal coupling of N–C into urea under mild conditions via the associative pathway, with the rate-determining step corresponding to the conversion of *NHNH2 → *NH2NH2 with the low energy barrier of 1.16 eV. Under realistic conditions of 780 K and 29 bar, the calculated turnover frequency reaches 1.01 × 10−3 s−1 site−1. The high catalytic performance arises from the ability of the Co1Ru3 bimetallic cluster to precisely modulate charge transfer between support and reaction intermediates. Moreover, the in situ generated NH2 species acts as an autocatalyst for CO2 hydrogenation, while the cluster selectively enhances the electrophilicity of the *CO intermediate, thereby facilitating the nucleophilic attack by *NH2 and ensuring efficient C–N bond formation. The finding of the outstanding performance of Co1Ru3@Mo2CO2 single cluster catalysts could bypass the energy-intensive NH3 synthesis step, reduce overall energy demand, and remain compatible with existing urea production infrastructure, thereby offering significant scientific and technological significance.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3362-8

Importance of d-electron coupling in dual-atom catalysts for electrocatalytic CO2 reduction reaction

Electrocatalytic CO2 reduction reaction (CO2RR) to high-value-added products is a crucial approach for promoting carbon recycling and mitigating energy challenges. Here, extensive theoretical screenings were conducted on nitrogen-doped graphene-supported heteronuclear dual-atom catalysts (DACs) M1/M2-NC (M = V, Cr, Mn, Fe, Co, Ni, and Cu) for CO2RR using density functional theory (DFT) calculations. The calculations indicate that Mn/Cu-NC exhibits superior catalytic activity and selectivity for the CO2RR to HCOOH with a limiting potential as low as -0.15 V. The superior performance is attributed to the strong d-electron coupling between Mn and Cu dual atoms in Mn/Cu-NC, which results in an upward shift of the d-band center of the Mn single atom closer to the Fermi level. Moreover, the adsorption of the key intermediate *OCHO on the Mn single atom was further enhanced, thereby reducing the limiting potential and improving the catalytic performance for CO2RR. This work offers a comprehensive theoretical insight into the catalytic mechanism of the novel Mn/Cu-NC DAC for CO2RR and establishes a critical descriptor of d-band center of the catalytic active center to determine the catalytic activity of DACs for CO2RR, thereby providing guidance for the future design and fabrication of graphene-based metal DACs for CO2RR.