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Updated: May 10, 2025

Bulk and Thin Film Synthesis of Compositionally Variant Entropy-stabilized Oxides
Published on: May 29, 2018
High-Entropy Rare Earth Oxides Anchoring Tunable Cuδ+ Nanochimneys for Self-Tandem C-C Coupling Catalysis
Yong Jiang1, Zhong Liang1, Hao Fu1
1Tianjin Key Lab for Rare Earth Materials and Applications, Center for Rare Earth and Inorganic Functional Materials, Smart Sensing Interdisciplinary Science Center, School of Materials Science and Engineering & National Institute for Advanced Materials, Nankai University, Tianjin, 300350, P. R. China.
Abstract:
Copper (Cu)-based materials are promising for carbon-carbon bond (C─C) coupling catalysis, but they are limited to poor structural stability, high activation energy, and low selectivity toward C2+ products. Here a customized synthetic protocol is defined for the fabrication of 2D ultrathin high-entropy rare earth (RE) oxides (HE-REOs) with rich lattice distortions and oxygen vacancies, which act as robust supports for anchoring Cuδ+ serial domains with tunable oxidation states. The rationally integrated HE-REOs-Cuδ+ heterostructures feature largely exposed synergistic multi-site driving rapid *CO spillover, and multiple stabilized Cuδ+ chimneys promoting cascade *CO coupling, together with intrinsic electron activation channels enabling RE 4f electron delocalization to lower the energy barrier. The optimal CeZrZnAgPbO-Cu0.44+ self-tandem catalysts achieve a high Faradaic efficiency (FE) of 51.7% for C2+ gaseous products at a low potential of -0.9 V versus (vs) reversible hydrogen electrode (RHE) in H-type cell. The study proposes an "all-in-one" design principle for advanced RE-based catalysts through integrating advantageous individuals in a predictable manner.
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