Dual p-block atoms anchored on N-doped graphene: Efficient transition-metal-free catalysts for nitrate reduction to ammonia

材料科学 催化作用 对偶(语法数字) 氨生产 硝酸盐 无机化学 还原(数学) 过渡金属 氮气 选择性催化还原 氧还原反应 光化学 化学工程 化学还原 双模
作者
M. T. Nasir,Qingchao Fang,Yun Han,Dimuthu Wijethunge
出处
期刊:Surfaces and Interfaces [Elsevier BV]
卷期号:91: 109275-109275
标识
DOI:10.1016/j.surfin.2026.109275
摘要

• All the catalysts are thermodynamically stable and electrochemically favourable, with great potential for experimental synthesis. • NO 3 - is strongly adsorbed and activated on the catalyst surfaces. • BAl@N 6 -G, BIn@N 6 -G, AlGa@N 6 -G, AlIn@N 6 -G, GaGa@N 6 -G and GaIn@N 6 -G possess low limiting potentials of -0.50, -0.25, -0.47, -0.23, -0.38, and -0.18 V, respectively. • HER and undesired NO2, NO, N2 and N2O reduction can be suppressed. Nitrate reduction reaction (NO 3 RR) is an efficient strategy to mitigate the nitrate-induced pollution and generate high-value product as a substitute for Haber-Bosch process. However, this process face challenges due to the lack of effective electrocatalysts and the limited understanding of the mechanism that drives NO 3 RR. Owing to more active sites, high selectivity and stability, double atom catalysts (DACs) outperform the single-atom counterparts. Herein, the catalytic performance of double p -block atoms embedded in nitrogen-doped graphene for the nitrate reduction reaction is investigated using density functional theory (DFT). A four-step screening process were conducted to evaluate stability, NO 3 - adsorption strength, selectivity and catalytic efficiency. Among the 10 candidates, BAl, BIn, AlGa, AlIn, GaGa and GaIn@N 6 -G stood out with low limiting potentials of -0.50, -0.25, -0.47, -0.23, -0.38, and -0.18 V, respectively. Furthermore, the hydrogen evolution reaction, and the formation of the by-products were effectively inhibited due to high energy barrier, validating outstanding selectivity. This study provides a fundamental insight into screening efficient novel catalysts and offers the theoretical guidance for the experimental design of the transition-metal free DACs for NO 3 RR.
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