Wenping Gao, Haili Wei, Junjie Zhou, Zohaib Saddique, Yu Tian, Fengxia Wu, Ling Zhang, Hsien-Yi Hsu, Guobao Xu, Wenxin Niu
Plasmonic catalysts have drawn great attention due to their ability to enhance catalytic performance by using light as an energy source. To further advance plasmonic catalysis, a fundamental understanding of how intrinsic structural parameters, particularly the crystal phase, govern plasmon-enhanced catalytic behavior remains elusive. In this work, the Au@Pd core/shell nanomaterials with a metastable 4H phase exhibit superior plasmon-enhanced electrochemical performance for the methanol oxidation reaction. Specifically, we synthesized the 4H-Au@Pd nanoribbons (NRBs) using 4H-Au NRBs as templates through epitaxial growth. The mass activity of the 4H-Au@Pd NRBs exhibits a 3.18-fold enhancement, whereas that of the face-centered-cubic Au@Pd nanorods increases by a factor of 1.85. Because of the synergistic effects of the distinct localized surface plasmon resonance properties of the 4H phase, the unique ribbon morphology, and surface properties, the plasmon-enhanced catalytic performance of 4H-Au@Pd NRBs may originate from more efficient separation of photogenerated charge carriers, faster interfacial charge transfer, and a stronger localized heating effect. Our work highlights the potential of metastable nanostructures in plasmonic catalysis and may lead to opportunities for utilization of solar energy.