利用原位红外光谱研究氨电氧化用Pt/C纳米颗粒的粒径效应和表面反应性

Niloofar Aligholizadeh K, Ashwini Reddy N, Evans A. Monyoncho and Elena A. Baranova
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引用次数: 0

摘要

氨电氧化反应(AmER)因其在氢的储存和运输方面的潜力以及在直接氨燃料电池中的应用而受到广泛关注。在本研究中,我们研究了四种平均尺寸(1.3、2.2、2.8和4.2 nm)的碳负载Pt/C纳米粒子(NPs)的氨电氧化。采用多元醇法合成了负载金属量为20%的碳负载Pt NPs,通过控制合成溶液的pH,可以得到不同平均尺寸的Pt NPs,并通过TEM进行了验证。与较大的纳米颗粒相比,最小的纳米颗粒(1.3 nm)的起始电位更负。平均粒径为2.2 nm的Pt/C表现出更好的稳定性,且活性与1.3 nm的Pt/C相当。原位偏振调制红外反射吸收光谱(PM-IRRAS)显示,氧化产物包括N-H、叠氮化物、硝酸盐和亚硝酸盐化合物。在Pt表面和大部分电解质中观察到约2800 cm−1处的N-H拉伸峰。然而,反应产物对应的峰强度在Pt表面和电解质主体上是不同的。NO2−主要存在于电解液中。相反,Pt表面存在NO3−。PM-IRRAS结果表明,Pt/C纳米粒子的粒径对其催化活性有影响,但对其选择性没有影响。此外,PM-IRRAS技术首次允许区分对称和不对称的N-O键,这是以前在氨电氧化过程中使用IR光谱无法观察到的。关键词:氨电氧化;碳载铂纳米颗粒;催化剂;PM-IRRAS;原位红外光谱。
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Unveiling the particle size effect and surface reactivity of Pt/C nanoparticles for ammonia electrooxidation using in situ infrared spectroscopy†

The ammonia electrooxidation reaction (AmER) has attracted considerable attention due to its potential for hydrogen storage and transportation, as well as its possible application in direct ammonia fuel cells. In the present work, we studied ammonia electrooxidation on carbon-supported Pt/C nanoparticles (NPs) of four average sizes of 1.3, 2.2, 2.8, and 4.2 nm. Carbon-supported Pt NPs with a 20 wt% metal loading were synthesized using the polyol method, and the control of the synthesis solution pH allowed the formation of Pt NPs of different average sizes, which was confirmed by TEM. The onset potential was more negative for the smallest nanoparticles (1.3 nm) compared to those for the larger ones. Pt/C with a mean particle size of 2.2 nm showed better stability while exhibiting comparable activity to the 1.3 nm particles. As revealed by in situ polarization modulation infrared reflection absorption spectroscopy (PM-IRRAS), the oxidation products included N–H species, azide ions, and nitrate and nitrite compounds. The N–H stretching peak was observed at about 2800 cm−1 on the Pt surface and in the bulk of the electrolyte. However, the intensity of peaks corresponding to the reaction products was different on the surface of Pt and in the bulk of the electrolyte. NO2 was mostly observed in the bulk of the electrolyte. In contrast, NO3 was present on the Pt surface. PM-IRRAS demonstrated that the particle size affected the catalytic activity of Pt/C NPs but not their selectivity. In addition, the PM-IRRAS technique allowed, for the first time, distinguishing both symmetric and asymmetric N–O bonds that were not observed previously using IR spectroscopy during ammonia electrooxidation.

Keywords: Ammonia electrooxidation; Carbon-supported Pt nanoparticle; Catalyst; PM-IRRAS; In situ infrared spectroscopy.

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Industrial Chemistry & Materials
Industrial Chemistry & Materials chemistry, chemical engineering, functional materials, energy, etc.-
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期刊介绍: Industrial Chemistry & Materials (ICM) publishes significant innovative research and major technological breakthroughs in all aspects of industrial chemistry and materials, with a particular focus on the important innovation of low-carbon chemical industry, energy and functional materials. By bringing researchers, engineers, and policymakers into one place, research is inspired, challenges are solved and the applications of science and technology are accelerated. The global editorial and advisory board members are valued experts in the community. With their support, the rigorous editorial practices and dissemination ensures your research is accessible and discoverable on a global scale. Industrial Chemistry & Materials publishes: ● Communications ● Full papers ● Minireviews ● Reviews ● Perspectives ● Comments
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