金属间化合物
材料科学
催化作用
瞬态(计算机编程)
阴极
铂金
功率密度
燃料电池
化学工程
纳米颗粒
纳米技术
耐久性
纳米晶
氧化物
非平衡态热力学
复合材料
纳米结构
氧还原反应
核工程
还原(数学)
作者
Jia Ding,Tao Zhang,Wanqing Song,Zezhou Li,X Wang,X Y Yang,Jiahui Feng,Ming Wen,Yanan Chen,Zhong Wu,Jihan Zhou,Bin Liu,Wenbin Hu
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-07-09
卷期号:393 (6807): 178-183
标识
DOI:10.1126/science.aeg2036
摘要
Highly efficient catalysts require precisely engineered intricate structures, yet conventional thermodynamically controlled syntheses often involve cumbersome procedures and limited structural precision. We report a nonequilibrium transient assembly strategy for the ultrafast synthesis of intricately structured nanocatalysts, including core-shell platinum (Pt)–skinned intermetallic nanocrystals exemplified by Pt@PtFe-i. By using a periodic thermal-pulse protocol to drive the continuous evolution of high-energy transient PtFe configurations, we achieved the synchronous assembly of a high-order PtFe intermetallic core and an atomic-layer-precise Pt skin. The Pt@PtFe-i catalyst exhibits coordination-dependent compressive strain within the Pt skin, creating a high density of highly active sites for the oxygen reduction reaction. The H 2 -air fuel cell with Pt@PtFe-i delivers a peak power of 1.25 watts per square centimeter at a cathode Pt loading of 0.1 milligrams per square centimeter, with a small peak power loss of 3.2% after 30,000 accelerated durability testing cycles.
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