膜
氢
合金
材料科学
氢气净化器
分子动力学
密度泛函理论
三元运算
化学物理
化学工程
选择性
氢气储存
掺杂剂
杂质
氢燃料
钇
兴奋剂
扩散
制氢
纳米技术
膜透性
磁导率
化学
作者
Qi Zhou,Jiang Xu,Zonghan Xie,Paul Munroe
出处
期刊:Energy & Fuels
[American Chemical Society]
日期:2026-02-02
卷期号:40 (6): 3423-3432
标识
DOI:10.1021/acs.energyfuels.5c06269
摘要
As the demand for clean energy continues to rise, hydrogen has attracted significant attention due to its high energy density and conversion efficiency. Efficient hydrogen separation and purification technologies are crucial for its industrial application. In this study, density functional theory (DFT) calculations, combined with molecular dynamics (MD) simulations, are employed to systematically investigate the hydrogen separation performance and elucidate the underlying mechanisms of Pd–Ag-based alloy membranes (Pd–Ag–Y and Pd–Ag–Ni). Our results indicate that doping with Y and Ni significantly enhances the structural stability of the alloy membranes and effectively reduces the hydrogen diffusion energy barrier. Notably, the Pd–Ag–Y membrane demonstrates the highest hydrogen permeability. Further analysis reveals that the incorporation of Y and Ni substantially improves the hydrogen selectivity of the alloy membranes over other gases, including N2, CO, CO2, CH4, and H2S. In most cases, their selectivity exceeds industrial thresholds, further enhancing the efficiency of hydrogen separation. The MD simulation results are in excellent agreement with the DFT calculations, validating the superior performance of the alloy membranes in hydrogen separation. This study demonstrates that judicious dopant selection, especially the incorporation of yttrium (Y), can simultaneously enhance hydrogen permeability and suppress impurity transport in Pd–Ag-based membranes, offering a promising pathway for designing high-performance ternary alloy membranes for gas separation.
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