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Updated: Aug 13, 2026

Synthesis of Platinum-nickel Nanowires and Optimization for Oxygen Reduction Performance
Published on: April 27, 2018
Atmosphere-directed surface composition control on plasma-synthesized PtNi/C nanoparticles: decoupling bulk alloying
Yifu Ke1, Hojung Yun1, Seulgee Lee2
1Department of Chemical Systems Engineering, Graduate School of Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya 464-8603, Japan. saito.nagahiro.z7@f.mail.nagoya-u.ac.jp.
None:
Maximizing the mass activity (MA) of Pt-alloy oxygen reduction reaction (ORR) catalysts requires simultaneous optimization of two often-conflicting parameters: specific activity (SA) and electrochemically active surface area (ECSA). Here, we demonstrate that the post-synthesis annealing atmosphere enables control of the surface composition of PtNi/C nanoparticles independently of their bulk alloy structure, thereby decoupling the SA-ECSA trade-off. A systematic study of 12 catalysts-prepared by solution plasma synthesis and annealed under N2, dilute H2 (10% H2/Ar), and sequential N2 + H2 atmospheres at 300-600 °C-reveals that the annealing temperature governs bulk alloying (Pt(111)2θ shift), while the annealing atmosphere governs the near-surface Ni chemical state (XPS Ni 2p3/2). Under N2, near-surface NiOx formation creates a trade-off: SA increases with alloying (r = +0.98 with 2θ), but ECSA decreases due to carbon graphitization (r = +1.00 with ID/IG), yielding r(SA, ECSA) = -0.97. Under H2, the predominance of oxidized Ni species is suppressed, leading to uniformly high SA (1.61-1.74 mA cmPt-2) independent of bulk alloying, while the carbon structural/electrochemical properties are better preserved, yielding r(SA, ECSA) = +0.05-no trade-off. Sequential N2 + H2 treatment also eliminates the trade-off (r = +0.49) but yields lower SA, because the prior N2 annealing at 600 °C irreversibly over-alloys the particles (2θ > 40.5°) and damages the carbon support. The double-layer capacitance normalized by ECSA (Qdl/ECSA) is ∼2-fold higher for H2-treated catalysts at ≥400 °C, reflecting changes in both metal surface species and carbon-support surface chemistry. The MA of all 12 catalysts is quantitatively described by MA = SA × ECSA/100 (r = 1.00), confirming that SA and ECSA are independently tunable. The H2-400 °C catalyst achieves the highest MA of 1424 A gPt-1 at 0.9 V vs. RHE. These results establish atmosphere-directed surface composition control as a rational strategy for decoupling bulk and surface optimization in Pt-alloy ORR catalysts.
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