4.7 Article

Theoretical investigation of novel p-block metal-based electrocatalysts for nitrogen reduction reaction

Journal

APPLIED SURFACE SCIENCE
Volume 572, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.apsusc.2021.151441

Keywords

Al-based catalysts; NRR; Electrocatalysis; DFT

Funding

  1. Guangdong Innovation Research Team for Higher Education [2017KCXTD030]
  2. High-level Talents Project of Dongguan University of Technology [KCYKYQD2017017]
  3. Engineering Research Center of None-food Biomass Efficient Pyrolysis and Utilization Technology of Guangdong Higher Education Institutes [2016GCZX009]
  4. Research Center of New Energy Materials [KCYCXPT2017005]

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This study presents a novel catalyst based on Al-doped phosphorene monolayer for electrochemical nitrogen reduction reaction, showing high activity, selectivity, and thermal stability. It offers a new approach for designing effective catalysts and promotes the study of p-block elements in NRR.
The electrochemical nitrogen reduction reaction (NRR) is regarded as the most promising alternative to the traditional Haber-Bosch route in current context of developing sustainable and green technologies. However, challenges around low kinetics and low selectivity of NRR are significant barriers for this enticing goal. Different from the transition metal-based NRR catalysts that are prevalent in artificial nitrogen fixation, here, novel pblock non-transition metal catalysts, constructed from an Al-doped phosphorene monolayer, are reported for electrochemical NRR through the density functional theory (DFT) calculations for the first time. We surmised the empty sp(3)-orbital of doped Al with sp(3) hybridization can act as strong Lewis acid sites for N-2 adsorption and activation. Among investigated concept-models, Al-2@P (-para) exhibits a high activity with an ultra-low limiting potential (U-L) of -0.31 V, significantly exceeding the benchmark stepped Ru(0001) surface (U-L = -0.98 V), which originates from the strong Lewis acid property of Al sites, good activation on adsorbed N-2, and improved redox capacity by 2D phosphorene electron reservoir. Additionally, Al-2 @P (-para) demonstrates high NRR selectivity and thermal stability under ambient conditions. This research offers a new way of designing effective catalysts and will further boost the study of p-block elements for NRR.

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