High-Platinum-Content Catalysts on Atomically Dispersed and Nitrogen Coordinated Single Manganese Site Carbons for Heavy-Duty Fuel Cells

催化作用 铂金 化学工程 材料科学 电解质 碳纤维 质子交换膜燃料电池 电化学 无机化学 化学 电极 复合数 复合材料 有机化学 工程类 物理化学
作者
Mengjie Chen,Chenzhao Li,Bingzhang Zhang,Yachao Zeng,Stavros Karakalos,Sooyeon Hwang,Jian Xie,Gang Wu
出处
期刊:Journal of The Electrochemical Society [The Electrochemical Society]
卷期号:169 (3): 034510-034510 被引量:6
标识
DOI:10.1149/1945-7111/ac58c7
摘要

Fuel cells for heavy-duty vehicles (HDVs) have attracted considerable attention because of their unique scalability, better fuel economy, the less demand for hydrogen refilling infrastructure. However, the potential application requires more stringent fuel cell durability up to 25,000 h. Membrane electrode assemblies (MEAs) made from platinum group metal (PGM) catalyst with relatively high loading 0.3 mg Pt cm −2 play a crucial role in ensuring high-power and long-term durability. Integrating fine PGM nanoparticles and robust carbon support with strengthened interactions is critical for improving MEA performance and durability. Herein, a unique atomically dispersed and nitrogen coordinated single Mn site-rich carbon (M–N–C) support was developed for high content (40 wt%) platinum catalysts for the oxygen reduction reaction (ORR) cathode with reduced thickness. Compared with two controls studied in this work (e.g., a porous graphitic carbon-supported Pt and a commercial TKK Pt/C catalysts), the Pt (40 wt%)/Mn–N–C catalyst exhibited much enhanced catalytic activity and stability for the ORR in both aqueous acidic electrolyte and polymer electrolyte-based MEA. We carefully elucidated the—role of the Mn–N–C support in promoting Pt catalyst concerning its high surface area, partially graphitic structure, and nitrogen dopants, providing better Pt nanoparticle dispersion, and strengthened interactions between Pt and carbon. Consequently, the MEA from the Pt (40 wt%)/Mn–N–C catalyst generated a 1.61 A cm −2 at 0.7 V based on HDV conditions (0.2 mg Pt cm −2 and 250 kPa air). More importantly, the MEA is highly durable and can retain 1.31 A cm −2 at 0.7 V after 30,000 voltage cycles (∼19% loss), surpassing the commercial Pt/C catalyst (loss of ∼56%). Therefore, the Mn–N–C carbon-supported Pt catalyst holds a great promise to meet the challenging DOE target (1.07 A cm −2 at 0.7 V after 150,000 cycles) for HDVs.

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