Synergistic approach to high-performance ultra-thin supported Pd-based membranes: Sacrificial graphene oxide interlayer and vacuum-assisted dip-coating
- Authors
- Magnone, Edoardo; Lee, Jeong In; Shin, Min Chang; Zhuang, Xuelong; Hwang, Jae Yeon; Han, Sung Woo; Park, Jung Hoon
- Issue Date
- Apr-2024
- Publisher
- Elsevier BV
- Keywords
- High-performance Pd–Ag–Cu-Based membranes; Pd-based membranes; Sacrificial graphene oxide interlayer; Ultra-thin supported membranes; Vacuum-assisted dip-coating process
- Citation
- Journal of Membrane Science, v.699, pp 1 - 20
- Pages
- 20
- Indexed
- SCIE
SCOPUS
- Journal Title
- Journal of Membrane Science
- Volume
- 699
- Start Page
- 1
- End Page
- 20
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/21897
- DOI
- 10.1016/j.memsci.2024.122660
- ISSN
- 0376-7388
1873-3123
- Abstract
- Pd-based membranes are essential for the separation of hydrogen, and the performances of these membranes are largely determined by their thickness. In this study, a sacrificial graphene oxide (GO) interlayer and vacuum-assisted (V) dip-coating process were used synergistically to prepare ultra-thin Pd–Ag–Cu-based membranes that were deposited on an ultra-thin γ-Al2O3 film-coated porous α-Al2O3 hollow fiber support. For comparison purposes, Pd-, Pd–Ag-, and Pd–Cu-based membranes were also prepared using identical advanced procedures. The H2 flow of the newly developed advanced composite membranes produced by this work was then examined for temperatures in a range of 350–450 °C. The high-performance ultra-thin Pd-, Pd–Ag-, Pd–Cu-, and Pd–Ag–Cu-based hollow fiber membranes were assessed by comparison with both traditionally prepared membranes and previous results. An extraordinary H2 flux in the order of 119.53 mL/cm2 min has been obtained for a 1.43 μm-thickness Pd–Ag–Cu-based (V) γ-Al2O3/GO/α-Al2O3 hollow fiber membrane at 450 °C. The advanced ultra-thin Pd–Ag–Cu-based membranes not only have very high permeance but can maintain their performance stability for more than one day of exercise at 450 °C. © 2024 Elsevier B.V.
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Collections - College of Engineering > Department of Chemical and Biochemical Engineering > 1. Journal Articles

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