化学
尖晶石
纳米晶
氧化物
五元
成核
催化作用
纳米技术
合理设计
金属
表征(材料科学)
纳米棒
同种类的
纳米尺度
化学工程
反应性(心理学)
再分配(选举)
胶体
设计要素和原则
过渡金属
无机化学
共晶
复合氧化物
作者
Baolin Zhu,Liping Liu,Alex Butrum-Griffith,Zhengxing Peng,Feipeng Yang,Chenyu Yan,Huayu Guo,Nathanael C. Ramos,Chuanliang Huang,Yu-Hsuan Hsieh,Shan Jiang,Jun Chen,Maren Pink,Yaroslav Losovyj,Jeffrey T. Miller,Adam Holewinski,Ruipeng Li,Cheng Wang,Hongliang Xin,Xingchen Ye
摘要
Abstract High-entropy oxides (HEOs) offer vast compositional design space for discovering emergent functionalities, yet their controlled nanoscale synthesis remains challenging. Here, we develop a generalizable colloidal strategy that enables precision synthesis of HEO nanocrystals with compositions spanning quinary to septenary systems. Mechanistic studies reveal that differences in precursor reactivity drive a multistage growth pathway and that cooperative multimetal chemistry─where one metal initiates single-phase nucleation and a vacancy-forming metal promotes cation redistribution during growth─enables homogeneous multication incorporation. The resulting rocksalt HEO nanocrystals can be transformed into spinel phases and exhibit excellent oxygen-evolution reaction activity. Machine-learning-accelerated theoretical analysis and operando characterization identify Co–Co bridge sites on spinel {111} facets as the dominant oxygen-evolution active motifs operating through a lattice oxygen-mediated mechanism. These findings establish guiding principles for controlling nucleation, cation mixing, and active-site formation in compositionally complex oxides, enabling the rational design and data-driven optimization of high-entropy materials.
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