单金属和双金属钯铂纳米颗粒作为一种有效的工具,加强跨晶氢运输

Georgy Andreev, Polina Pushankina, Stepan Dzhimak, Iliya Petriev
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摘要

研究了在全金属钯-23%银膜表面制备高活性钯-铂纳米催化剂的方法。这些涂层是大量的五边形结构的Pd-Pt纳米颗粒,平均尺寸约为100 nm,旨在加强氢的传输过程。通过中间退火和熔融轧制,得到了厚30µm的钯银箔,作为膜的基础。通过改变沉积电流参数和工作液的组成,采用电解沉积的方法对其进行表面改性。经典的方法使得在薄的钯银薄膜表面获得球形颗粒成为可能。然而,与传统方法相比,沉积电流密度降低,加上表面活性剂,工作溶液中组分的比例清晰,使得基于特殊几何形状颗粒的涂层成为可能。在低温(25°C)氢气传输过程中作为扩散膜过滤器对所开发的材料进行了研究,在高达0.3 MPa的工作压力下,它们的穿透通量密度高达0.42 mmol/s m2。结果表明,经五元钯-铂修饰膜的氢穿透通量密度值比经经典钯黑修饰膜的氢穿透通量密度值高2.1倍。这些基于五聚态Pd-Pt粒子的纳米催化剂使得在低温下显著增强氢的输运成为可能。所开发的膜材料可以成为燃料电池、氢气压缩机等低温装置的基础,也可以用作蒸汽重整反应器中的扩散过滤器
本文章由计算机程序翻译,如有差异,请以英文原文为准。
MONO- AND BIMETALLIC PD-PT NANOPARTICLES AS AN EFFICIENT TOOL FOR THE INTENSIFICATION OF TRANSCRYSTALLINE HYDROGEN TRANSPORT
A technique has been developed for obtaining highly active Pd-Pt nanocatalysts on the surface of all-metal Pd-23%Ag membranes. These coatings were a large number of pentagonally structured Pd-Pt nanoparticles with an average size of about 100 nm, designed to intensify the process of hydrogen transport. By melting and rolling with intermediate annealing, palladium-silver foils 30 µm thick were obtained, which acted as the basis of the membranes. Surface modification was carried out by electrolytic deposition with a change in the parameters of the deposition current and the composition of the working solution. Classical methods made it possible to obtain spherical particles on the surface of thin palladium-silver films. However, a decrease in the deposition current density, compared to classical methods, and a clear ratio of components in the working solution with the addition of a surfactant made it possible to obtain coatings based on particles with a special geometry. The developed materials were studied in the processes of low-temperature (25 °C) hydrogen transport as diffusion membrane filters, where they demonstrated penetrating flux density values up to 0.42 mmol/s m2 at operating pressures up to 0.3 MPa. It has been established that the density values of the hydrogen penetrating flux through membranes modified with pentatwinned Pd-Pt particles are up to 2.1 times higher than through membranes with classical palladium black. These nanocatalysts based on pentatwinned Pd-Pt particles made it possible to significantly intensify hydrogen transport at low temperatures. The developed membrane materials can become the basis for both low-temperature devices, such as a fuel cell, a hydrogen compressor, and find application as diffusion filters in steam reforming reactors
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