You Dae Jong, Pak Chanho, Jin Seon-Ah, Lee Kang Hee, Kwon Kyungjung, Choi Kyoung Hwan, Heo Pil Won, Jang Hongchul, Kim Jun Young, Kim Ji Man
J Nanosci Nanotechnol. 2016 May;16(5):4357-61. doi: 10.1166/jnn.2016.11021.
Palladium-cobalt-phosphorus (PdCoP) catalysts supported on carbon (Ketjen Black) were investigated as a cathode catalyst for oxygen reduction reaction (ORR) in high temperature proton exchange membrane fuel cells (HT-PEMFCs). The PdCoP catalyst was synthesized via a modified polyol process in teflon-sealed reactor by microwave-heating. From X-ray diffraction and transmission electron microscopic analysis, the PdCoP catalyst exhibits a face-centered cubic structure, similar to palladium (Pd), which is attributed to form a good solid solution of Co atoms and P atoms in the Pd lattice. The PdCoP nanoparticles with average diameter of 2.3 nm were uniformly distributed on the carbon support. The electrochemical surface area (ECSA) and ORR activity of PdP, PdCo and PdCoP catalysts were measured using a rotating disk electrode technique with cyclic voltammetry and the linear sweep method. The PdCoP catalysts showed the highest performances for ECSA and ORR, which might be attributed both to formation of small nanoparticle by phosphorus atom and to change in lattice constant of Pd by cobalt atom. Furthermore, The HT-PEMFCs single cell performance employing PdCoP catalyst exhibited an enhanced cell performance compared to a single cell using the PdP and PdCo catalysts. This result indicates the importance of electric and geometric control of Pd alloy nanoparticles that can improve the catalytic activity. This synergistic combination of Co and P with Pd could provide the direction of development of non-Pt catalyst for fuel cell system.
研究了负载在炭黑(科琴黑)上的钯 - 钴 - 磷(PdCoP)催化剂作为高温质子交换膜燃料电池(HT - PEMFC)中氧还原反应(ORR)的阴极催化剂。通过在聚四氟乙烯密封反应器中采用微波加热的改进多元醇法合成了PdCoP催化剂。通过X射线衍射和透射电子显微镜分析,PdCoP催化剂呈现面心立方结构,与钯(Pd)相似,这归因于Co原子和P原子在Pd晶格中形成了良好的固溶体。平均直径为2.3 nm的PdCoP纳米颗粒均匀分布在碳载体上。使用旋转圆盘电极技术结合循环伏安法和线性扫描法测量了PdP、PdCo和PdCoP催化剂的电化学表面积(ECSA)和ORR活性。PdCoP催化剂在ECSA和ORR方面表现出最高的性能,这可能既归因于磷原子形成了小纳米颗粒,也归因于钴原子导致Pd晶格常数的变化。此外,与使用PdP和PdCo催化剂的单电池相比,采用PdCoP催化剂的HT - PEMFC单电池性能有所提高。这一结果表明了对Pd合金纳米颗粒进行电学和几何控制以提高催化活性的重要性。Co和P与Pd的这种协同组合可为燃料电池系统非Pt催化剂的开发提供方向。