材料科学
催化作用
纳米晶
电催化剂
化学工程
辐照
纳米技术
无定形固体
燃料电池
合金
甲醇
电极
化学
电化学
复合材料
物理化学
工程类
物理
生物化学
有机化学
核物理学
作者
Yingjun Sun,Yanxia Liang,Mingchuan Luo,Fan Lv,Yingnan Qin,Lei Wang,Chuan Xu,Engang Fu,Shaojun Guo
出处
期刊:Small
[Wiley]
日期:2017-11-22
卷期号:14 (3)
被引量:95
标识
DOI:10.1002/smll.201702259
摘要
Abstract Nanostructured Pt is the most efficient single‐metal catalyst for fuel cell technology. Great efforts have been devoted to optimizing the Pt‐based alloy nanocrystals with desired structure, composition, and shape for boosting the electrocatalytic activity. However, these well‐known controls still show the limited ability in maximizing the Pt utilization efficiency for achieving more efficient fuel cell catalysis. Herein, a new strategy for maximizing the fuel cell catalysis by controlling/tuning the defects and interfaces of PtPb nanoplates using ion irradiation technique is reported. The defects and interfaces on PtPb nanoplates, controlled by the fluence of incident C + ions, make them exhibit the volcano‐like electrocatalytic activity for methanol oxidation reaction (MOR), ethanol oxidation reaction (EOR), and oxygen reduction reaction (ORR) as a function of ion irradiation fluence. The optimized PtPb nanoplates with the mixed structure of dislocations, subgrain boundaries, and small amorphous domains are the most active for MOR, EOR, and ORR. They can also maintain high catalytic stability in acid solution. This work highlights the impact and significance of inducing/controlling the defects and interfaces on Pt‐based nanocrystals toward maximizing the catalytic performance by advanced ion irradiation strategy.
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