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纳米结构钯涂层修饰的PdCu-Nb-PdCu膜的气体传输特性

Gas-Transport Characteristics of PdCu-Nb-PdCu Membranes Modified with Nanostructured Palladium Coating.

作者信息

Petriev Iliya, Pushankina Polina, Shostak Nikita, Baryshev Mikhail

机构信息

Department of Physics, Kuban State University, 350040 Krasnodar, Russia.

Laboratory of Problems of Stable Isotope Spreading in Living Systems, Southern Scientific Centre of the RAS, 344000 Rostov-on-Don, Russia.

出版信息

Int J Mol Sci. 2021 Dec 25;23(1):228. doi: 10.3390/ijms23010228.

Abstract

A method for obtaining composite gas-diffusion PdCu-Nb-PdCu membranes modified with a nanostructured crystalline coating was developed to increase the performance of Nb-based membranes. A modifying functional layer with a controlled size and composition was synthesized by electrochemical deposition, which made it possible to determine a certain geometric shape for palladium nanocrystallites. Developed PdCu-Nb-PdCu membranes have demonstrated flux values up to 0.232 mmol s m in the processes of diffusion purification of hydrogen at 400 °C. A very significant difference in the hydrogen fluxes through the modified and non-modified composite PdCu-Nb-PdCu membranes reached 1.73 times at the lower threshold temperature of 300 °C. Cu doping of protective layer did not affect the selective properties of the membranes, which was confirmed by the obtained high selectivity values up to 1323, and made it possible to reduce the noble metal content. The research data indicate that the modification of the membrane surface significantly accelerates the hydrogen transfer process at sufficiently low temperatures due to the acceleration of dissociative-associative processes on the surface. The reported approach demonstrates new possibilities for creating productive and cost-efficient membranes based on niobium.

摘要

为提高铌基膜的性能,开发了一种获得用纳米结构晶体涂层改性的复合气体扩散PdCu-Nb-PdCu膜的方法。通过电化学沉积合成了具有可控尺寸和组成的改性功能层,这使得确定钯纳米微晶的特定几何形状成为可能。所开发的PdCu-Nb-PdCu膜在400℃氢气扩散净化过程中表现出高达0.232 mmol s⁻¹ m⁻²的通量值。在300℃的较低阈值温度下,通过改性和未改性的复合PdCu-Nb-PdCu膜的氢气通量差异非常显著,达到1.73倍。保护层的铜掺杂不影响膜的选择性,高达1323的高选择性值证实了这一点,并使得降低贵金属含量成为可能。研究数据表明,由于表面离解-缔合过程的加速,膜表面的改性在足够低的温度下显著加速了氢转移过程。所报道的方法展示了制造基于铌的高效且经济的膜的新可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/068b/8745148/c4d40f72d474/ijms-23-00228-g001.jpg

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