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- W2078366372 abstract "Amorphous alloys are a promising alternative to Pd alloy membranes for hydrogen separation because of their lower cost and comparable hydrogen permeability. A series of amorphous alloy membranes consisting of Ni60Nb20Zr20 (at%), (Ni0.6Nb0.4)100−xZrx and (Ni0.6Nb0.3Ta0.1)100−xZrx (where x = 0, 10, 20 or 30) were prepared by melt spinning and then coating the foil surfaces with a thin (500 nm) layer of Pd using physical vapor deposition (PVD). A (Ni0.6Nb0.4)70Zr30 membrane exhibited the highest hydrogen permeability (1.4 × 10−8 mol m−1 s−1 Pa−0.5) of any of the materials, measured in pure hydrogen at 450 °C. Membrane permeability increased with Zr content, but membranes higher in Zr were more susceptible to brittle failure and were more thermally unstable. Decreases in hydrogen permeability were almost always observed during long-term permeability tests at 400 and 450 °C. The addition of Ta slightly increased the thermal stability, but moderately lowered the hydrogen permeability. An AES depth profile of the membrane surface showed that metallic interdiffusion had taken place between the Pd coating and the bulk membrane, which probably accounts for the reduction in hydrogen permeability over time at 400–450 °C." @default.
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- W2078366372 date "2011-08-01" @default.
- W2078366372 modified "2023-10-15" @default.
- W2078366372 title "Hydrogen permeability, thermal stability and hydrogen embrittlement of Ni–Nb–Zr and Ni–Nb–Ta–Zr amorphous alloy membranes" @default.
- W2078366372 cites W142588490 @default.
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- W2078366372 cites W1965723238 @default.
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- W2078366372 cites W1975040070 @default.
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- W2078366372 cites W1986917590 @default.
- W2078366372 cites W1991027338 @default.
- W2078366372 cites W1992431232 @default.
- W2078366372 cites W1992798037 @default.
- W2078366372 cites W1993279656 @default.
- W2078366372 cites W1994991408 @default.
- W2078366372 cites W2003831343 @default.
- W2078366372 cites W2005660037 @default.
- W2078366372 cites W2008009213 @default.
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- W2078366372 doi "https://doi.org/10.1016/j.memsci.2011.04.049" @default.
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