Dhanasekaran P, Lokesh K, Ojha P K, Sahu A K, Bhat S D, Kalpana D
CSIR-Central Electrochemical Research Institute - Madras Unit, CSIR-Madras Complex, Chennai 600 113, Tamil Nadu, India.
Naval Materials Research Laboratory, Addl Ambernath, Thane 421506, Maharashtra, India.
J Colloid Interface Sci. 2020 Jul 15;572:198-206. doi: 10.1016/j.jcis.2020.03.078. Epub 2020 Mar 23.
In the present work, the three-dimensional ultra-fine platinum nanoflowers are directly deposited on carbon-coated gas diffusion layer electrode (C-GDL) by a single-step electrodeposition method towards the application of polymer electrolyte fuel cells. The surface morphology, particle size distribution, crystallinity, and chemical oxidation state of platinum nanoflowers are examined using various techniques. The morphological features of the Pt nanostructures are highly influenced by the difference in current density. Notabely, the Pt nanospheres converts into three-dimensional nanoflower with an increase in current density from -1.6 to -32 mA cm. Electrodeposited Pt catalyst on C-GDL as the cathode catalyst was fabricated and steady-state polarization studies were carried out. Mainly, the fuel cell performance is analysed considering the electrodeposited Pt morphology. Among the prepared electrocatalysts, the nanoflower shaped Pt catalyst exhibit a high peak power density of 660 mW cm at 0.6 V in PEFC.
在本工作中,通过单步电沉积法将三维超细铂纳米花直接沉积在碳涂层气体扩散层电极(C-GDL)上,以用于聚合物电解质燃料电池。使用各种技术研究了铂纳米花的表面形态、粒径分布、结晶度和化学氧化态。铂纳米结构的形态特征受到电流密度差异的高度影响。值得注意的是,随着电流密度从-1.6增加到-32 mA/cm²,铂纳米球转变为三维纳米花。制备了作为阴极催化剂的C-GDL上的电沉积铂催化剂,并进行了稳态极化研究。主要考虑电沉积铂的形态来分析燃料电池性能。在所制备的电催化剂中,纳米花状铂催化剂在质子交换膜燃料电池中于0.6 V时表现出660 mW/cm²的高峰值功率密度。