Alleviating Temperature-Induced Oxidative Poisoning in Oxophilic Pd for Methanol Electrocatalysis

电催化剂 甲醇中毒 甲醇 氧化磷酸化 催化作用 化学 生物化学 电化学 有机化学 电极 物理化学
作者
Komalpreet Kaur,Lipipuspa Sahoo,Reeya Garg,Sahil Kamra,Mukul Nawani,Ujjal K. Gautam
出处
期刊:ACS Catalysis [American Chemical Society]
卷期号:15 (11): 8653-8662 被引量:3
标识
DOI:10.1021/acscatal.5c01082
摘要

While simultaneously highly active and durable catalysts for the methanol-oxidation reaction (MOR) are rare, their performance at device-relevant elevated temperatures has been barely explored. In this work, we design oxophilic Ni-doped Pd nanowire morphology, which can impart multiple catalyst-electrode contacts, achieving a superior MOR mass activity of ∼3.5 A mg–1 and commendable stability with <0.8% degradation/hour. Through comprehensive studies across varying temperatures and potentials, we reveal significant performance deviations at high temperatures (HT) compared to conventional room-temperature data, as well as stark behavioral contrasts between Pt and Pd. The Pd nanowires exhibit superior resistance to surface oxidation at HT, thereby retaining their high MOR performance with 2-fold deviations in activation energy values with varied applied potentials, while Pt barely shows any variation. To corroborate this, we systematically map the temperature-dependent −OH formation vs utilization kinetics and establish a direct correlation with −OH tolerance. Due to superior activation by resisting −OH poisoning, the Pd nanowires widen their theoretical operating potential window by over 180% more than in Pt. While Pd is already recognized for its superior CO tolerance, our study establishes that it is also more resilient to OH poisoning at elevated temperatures, enabling simultaneous high activity and activation.
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