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Atomic Au 3 Cu Palisade Interlayer in Core@Shell Nanostructures for Efficient Kirkendall Effect Mediation.

Tailei HouXinyuan LiXiuming ZhangRongsheng CaiYi-Chi WangAkang ChenHongfei GuMengyao SuShouyuan LiQizhen LiLeining ZhangSarah J HaighJiaTao Zhang
Published in: Nano letters (2024)
Plasmonic Cu@semiconductor heteronanocrystals (HNCs) have many favorable properties, but the synthesis of solid structures is often hindered by the nanoscale Kirkendall effect. Herein, we present the use of an atomically thin Au 3 Cu palisade interlayer to reduce lattice mismatch and mediate the Kirkendall effect, enabling the successive topological synthesis of Cu@Au 3 Cu@Ag, Cu@Au 3 Cu@Ag 2 S, and further transformed solid Cu@Au 3 Cu@CdS core-shell HNCs via cation exchange. The atomically thin and intact Au 3 Cu palisade interlayer effectively modulates the diffusion kinetics of Cu atoms as demonstrated by experimental and theoretical investigations and simultaneously alleviates the lattice mismatch between Cu and Ag as well as Cu and CdS. The Cu@Au 3 Cu@CdS HNCs feature exceptional crystallinity and atomically organized heterointerfaces between the plasmonic metal and the semiconductor. This results in the efficient plasmon-induced injection of hot electrons from Cu@Au 3 Cu into the CdS shell, enabling the Cu@Au 3 Cu@CdS HNCs to achieve high activity and selectivity for the photocatalytic reduction of CO 2 to CO.
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