材料科学
纳米颗粒
氢
法拉第效率
纳米材料
化学合成
稀土
化学工程
化学反应
纳米技术
吸附
氢气储存
催化作用
合金
乙炔
电催化剂
无机化学
氧化还原
可逆氢电极
工作(物理)
作者
Cheng Yang,Huawei Li,Senyao Meng,Yaqin Hou,Ping Wang,Jiasai Yao,Jiarui Yang,Zechao Zhuang,Tianbao Zhang,Rui Tan,Dingsheng Wang,Zhenxing Li
出处
期刊:eScience
[Elsevier BV]
日期:2025-09-24
卷期号:6 (2): 100477-100477
被引量:4
标识
DOI:10.1016/j.esci.2025.100477
摘要
The controllable synthesis of palladium-based multi-rare-earth alloy nanomaterials via chemical methods poses a considerable challenge, owing to the low reduction potential and high oxophilicity of rare earth (RE) elements. Herein, a series of Pd-RE alloy nanoparticles, from binary to septenary alloy, is newly designed and synthesized through the single atom-enhanced chemical potential method. This synthetic strategy utilizes a single atom to effectively enhance the chemical potential of a rare earth atom, which thermodynamically favors the synthesis of a Pd-RE alloy. Using this general chemical synthesis method, we successfully synthesized 22 kinds of Pd-RE alloy nanoparticles, including 4 kinds of Pd-RE high-entropy alloy nanoparticles. The ErPd 3 catalyst demonstrated outstanding electrocatalytic performance in acetylene hydrogenation: electron-enriched Pd sites facilitated acetylene adsorption and activation, while the incorporated Er effectively suppressed the competing hydrogen evolution reaction, thereby significantly enhancing the utilization efficiency of H*. This work establishes a general strategy for designing Pd-RE alloy nanomaterials. • 22 kinds of Pd-based multi-rare-earth alloy nanoparticles, including 4 kinds of Pd-based high-entropy rare earth alloy nanoparticles, were synthesized and analyzed. • The existence of rare earth atoms in the form of single atoms can effectively enhance their chemical potential, which is thermodynamically favorable for the formation of rare earth alloys. • The hydrogen evolution reaction is significantly suppressed, and the Faradaic efficiency of hydrogen for ErPd 3 nanoparticles is only one-third that of Pd/C.
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