Sun Yingjun, Liang Yanxia, Luo Mingchuan, Lv Fan, Qin Yingnan, Wang Lei, Xu Chuan, Fu Engang, Guo Shaojun
Department of Materials Science and Engineering, College of Engineering, Peking University, Beijing, 100871, China.
College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.
Small. 2018 Jan;14(3). doi: 10.1002/smll.201702259. Epub 2017 Nov 22.
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.
纳米结构铂是燃料电池技术中最有效的单金属催化剂。人们已付出巨大努力来优化具有所需结构、组成和形状的铂基合金纳米晶体,以提高其电催化活性。然而,这些众所周知的控制方法在最大化铂的利用效率以实现更高效的燃料电池催化方面仍显示出有限的能力。在此,报道了一种通过离子辐照技术控制/调节PtPb纳米板的缺陷和界面来最大化燃料电池催化性能的新策略。由入射C离子的注量控制的PtPb纳米板上的缺陷和界面,使其对甲醇氧化反应(MOR)、乙醇氧化反应(EOR)和氧还原反应(ORR)表现出类似火山的电催化活性,这是离子辐照注量的函数。具有位错、亚晶界和小非晶域混合结构的优化PtPb纳米板对MOR、EOR和ORR最具活性。它们在酸性溶液中也能保持高催化稳定性。这项工作突出了通过先进的离子辐照策略诱导/控制铂基纳米晶体上的缺陷和界面对于最大化催化性能的影响和意义。