Synthesis of 2H/fcc-Heterophase AuCu Nanostructures for Highly Efficient Electrochemical CO<sub>2</sub> Reduction at Industrial Current Densities.

Zhou, Xichen; Zhang, An; Chen, Bo; Zhu, Shangqian; Cui, Yu; Bai, Licheng; Yu, Jinli; Ge, Yiyao et al. · Adv Mater · 2023

basic_science · Level V

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Abstract

Structural engineering of nanomaterials offers a promising way for developing high-performance catalysts toward catalysis. However, the delicate modulation of thermodynamically unfavorable nanostructures with unconventional phases still remains a challenge. Here, the synthesis of hierarchical AuCu nanostructures is reported with hexagonal close-packed (2H-type)/face-centered cubic (fcc) heterophase, high-index facets, planar defects (e.g., stacking faults, twin boundaries, and grain boundaries), and tunable Cu content. The obtained 2H/fcc Au<sub>99</sub> Cu<sub>1</sub> hierarchical nanosheets exhibit excellent performance for the electrocatalytic CO<sub>2</sub> reduction to produce CO, outperforming the 2H/fcc Au<sub>91</sub> Cu<sub>9</sub> and fcc Au<sub>99</sub> Cu<sub>1</sub> . The experimental results, especially those obtained by in-situ differential electrochemical mass spectroscopy and attenuated total reflection Fourier-transform infrared spectroscopy, suggest that the enhanced catalytic performance of 2H/fcc Au<sub>99</sub> Cu<sub>1</sub> arises from the unconventional 2H/fcc heterophase, high-index facets, planar defects, and appropriate alloying of Cu. Impressively, the 2H/fcc Au<sub>99</sub> Cu<sub>1</sub> shows CO Faradaic efficiencies of 96.6% and 92.6% at industrial current densities of 300 and 500 mA cm<sup>-2</sup> , respectively, as well as good durability, placing it among the best CO<sub>2</sub> reduction electrocatalysts for CO production. The atomically structural regulation based on phase engineering of nanomaterials (PEN) provides an avenue for the rational design and preparation of high-performance electrocatalysts for various catalytic applications.