Luo QiuLin, Ma Lin, Yang Chenghan, Song Youchao, Xu Yingchen, Zhu Min, Zhou Yuming, Zhang Yiwei
School of Chemistry and Chemical Engineering, Southeast University, Nanjing, 211189, PR China.
Chemphyschem. 2025 Mar 3;26(5):e202400838. doi: 10.1002/cphc.202400838. Epub 2024 Dec 13.
CeO/CuO heterojunction composite catalysts were synthesized using a one-step method, achieving the introduction of Ce species on nanoscale copper oxide (CuO) particles during the hydrothermal process. CeO is primarily encapsulated the auxiliary catalyst CuO in the form of nanoparticles. On one hand, this protects the nanostructure of the substrate from damage and prevents the agglomeration of CuO nanoparticles. On the other hand, the bimetallic synergistic effect between Ce and Cu effectively improves the conductivity and catalytic activity of the catalyst, significantly enhancing the selectivity of the catalyst for electrochemical reduction of CO to CH, while effectively suppressing the competing hydrogen evolution reaction (HER). By regulating the amount of CeO introducing, a series of CeO/CuO composite catalysts were designed. The results showed that the 15 % CeO/CuO catalyst exhibited the best selectivity and catalytic activity for CH. At a low overpotential of -1.2 V, the 15 % CeO/CuO catalyst demonstrated a current density of 14.2 mA cm and achieved a Faradaic efficiency for ethylene as high as 65.78 %, which is 2.85 times the current density (j=4.98 mA cm) and 3.27 times the Faradaic efficiency for ethylene (FE=20.13 %) of the undoped catalyst at the same potential. This work provides a feasible basis for achieving efficient CORR to C products, and even multi-carbon products.
采用一步法合成了CeO/CuO异质结复合催化剂,在水热过程中实现了Ce物种在纳米级氧化铜(CuO)颗粒上的引入。CeO主要以纳米颗粒的形式包裹辅助催化剂CuO。一方面,这保护了基底的纳米结构免受破坏,并防止了CuO纳米颗粒的团聚。另一方面,Ce和Cu之间的双金属协同效应有效地提高了催化剂的导电性和催化活性,显著提高了催化剂对CO电化学还原为CH的选择性,同时有效地抑制了竞争性析氢反应(HER)。通过调节CeO的引入量,设计了一系列CeO/CuO复合催化剂。结果表明,15%CeO/CuO催化剂对CH表现出最佳的选择性和催化活性。在-1.2 V的低过电位下,15%CeO/CuO催化剂的电流密度为14.2 mA cm,乙烯的法拉第效率高达65.78%,是相同电位下未掺杂催化剂电流密度(j = 4.98 mA cm)的2.85倍,乙烯法拉第效率(FE = 20.13%)的3.27倍。这项工作为实现CO高效电还原为含碳产物甚至多碳产物提供了可行的基础。