| Literature DB >> 35008654 |
Iliya Petriev1,2,3, Polina Pushankina1,3, Nikita Shostak3, Mikhail Baryshev1,2,3.
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-1 m-2 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.Entities:
Keywords: catalytic layer; composite membranes; fifth group metals; high-purity hydrogen; hydrogen permeability; nanostructured surface
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Year: 2021 PMID: 35008654 PMCID: PMC8745148 DOI: 10.3390/ijms23010228
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1Microphotographs of the PdCu–Nb–PdCu films surface modified with palladium nanocrystallites at a magnification of 500 (a), 5000 (b), 30,000 (c), 50,000 (d).
Statistical data of the surface morphology parameters of the PdCu–Nb–PdCu film modified with a nanostructured coating and non-modified film.
| Film Type | Modified | Non-Modified |
|---|---|---|
| RMS roughness, nm | 225.27 | 6.98 |
| Mean roughness, nm | 182.11 | 5.42 |
| Roughness coefficient | 16.18 | 1.54 |
| Projected surface area, µm2 | 12 | 12 |
| Actual surface area, µm2 | 194.12 | 18.48 |
Figure 2Elemental composition spectrum of the modified PdCu–Nb–PdCu film sample.
Figure 3Microphotograph of a modified PdCu–Nb–PdCu film section.
Figure 4Temperature dependence of the hydrogen flux at Δp = 0.1 MPa through a PdCu–Nb–PdCu membrane modified with a nanostructured coating (a) and non-modified membrane (b) and a regular Pd membrane (c).
Figure 5Gauge pressure dependence of the hydrogen flux at t = 300 °C on the inlet side of the PdCu–Nb–PdCu membrane modified with a nanostructured coating (a) and non-modified membrane (b) and a regular Pd membrane (c).
Figure 6The gauge pressure dependence of the H2/N2 selectivity at 300 °C at the inlet side of PdCu–Nb–PdCu membrane modified with nanostructured coating (a) and non-modified membrane (b).
Figure 7Stages of PdCu–Nb–PdCu membrane synthesis.