Xiaoxiao Zeng, Zhen Fang, Jiakang Tian, Ziran Xu, Hairui Cai, Huijie He, Yulong Zhang, Bin Wang, Chao Liang, Feng Liu, Bingbao Mei, Fumin Li, Chi He, Jianbo Wu, Shengchun Yang
Pt-based intermetallic compounds with atomically ordered arrangements are highly promising catalysts for the oxygen reduction reaction (ORR) in proton exchange membrane fuel cells. However, the mutual constraint between high-temperature ordering and small-size stability (especially at high metal loadings), as well as the corrosion of both metal particles and carbon supports under operating conditions, severely limit their mass activity and long-term durability. Here, we report a borophene-mediated multimetal site co-anchoring strategy to synthesize sub-4-nanometer high-entropy Pt4FeCoNiCu intermetallic catalysts (MMCA-HEIMCs) supported on pristine carbon, which enables simultaneous anchoring of Pt and non-noble metals onto the carbon support. The strong metal-borophene interaction suppresses particle sintering during high temperature annealing (1000°C) and enables a high metal loading of 36 wt % at a small particle size. The resulting L10-ordered structure with a unique FeCoNiCu atomic stacking configuration is confirmed by electron microscopy and x-ray absorption spectroscopy. The catalyst achieves an exceptional H2-air fuel cell peak power density of 1.055 watts per square centimeter and an ORR mass activity of 1.4 amperes per milligram of Pt at 0.9 volts in H2-O2 fuel cells. Owing to the high-entropy stabilization effect and the robust borophene co-anchoring effect, the catalyst retains 72% of its peak power density and 80% of its initial mass activity after 30,000 durability cycles. Moreover, the borophene interlayer mitigates Pt-catalyzed carbon corrosion, as verified by a 5000 startup/shutdown cycling test and online mass spectrometry. This work demonstrates a general strategy to overcome the activity-durability trade-off in multicomponent intermetallic catalysts through strong metal-support interactions.