Regulating the Electrochemical Nitrate Reduction Performance with Controllable Distribution of Unconventional Phase Copper on Alloy Nanostructures.

Xiong, Yuecheng; Wang, Yunhao; Sun, Mingzi; Chen, Jing; Zhou, Jingwen; Hao, Fengkun; Liu, Fu; Lu, Pengyi et al. · Adv Mater · 2024

basic_science · Level V

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Abstract

Electrochemical nitrate reduction reaction (NO<sub>3</sub>RR) is emerging as a promising strategy for nitrate removal and ammonia (NH<sub>3</sub>) production using renewable electricity. Although great progresses have been achieved, the crystal phase effect of electrocatalysts on NO<sub>3</sub>RR remains rarely explored. Here, the epitaxial growth of unconventional 2H Cu on hexagonal close-packed (hcp) IrNi template, resulting in the formation of three IrNiCu@Cu nanostructures, is reported. IrNiCu@Cu-20 shows superior catalytic performance, with NH<sub>3</sub> Faradaic efficiency (FE) of 86% at -0.1 (vs reversible hydrogen electrode [RHE]) and NH<sub>3</sub> yield rate of 687.3 mmol g<sub>Cu</sub> <sup>-1</sup> h<sup>-1</sup>, far better than common face-centered cubic Cu. In sharp contrast, IrNiCu@Cu-30 and IrNiCu@Cu-50 covered by hcp Cu shell display high selectivity toward nitrite (NO<sub>2</sub> <sup>-</sup>), with NO<sub>2</sub> <sup>-</sup> FE above 60% at 0.1 (vs RHE). Theoretical calculations have demonstrated that the IrNiCu@Cu-20 has the optimal electronic structures for NO<sub>3</sub>RR due to the highest d-band center and strongest reaction trend with the lowest energy barriers. The high electroactivity of IrNiCu@Cu-20 originates from the abundant low coordination of Cu sites on the surface, which guarantees the fast electron transfer to accelerate the intermediate conversions. This work provides a feasible tactic to regulate the product distribution of NO<sub>3</sub>RR by crystal phase engineering of electrocatalysts.