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Hydrogen absorption properties of amorphous (Ni0.6Nb0.4−yTay)100−xZrx membranes
作者姓名:O. Palumbo  F. Trequattrini  N. Pal  M. Hulyalkar  S. Sarker  D. Chandr  T. Flanagan  M. Dolan  A. Paolone
摘    要:Ni based amorphous materials have great potential as hydrogen purification membranes. In the present work the melt spun(Ni_(0.6)Nb_(0.4-y)Ta_y)_(100-x)Zr_x with y=0, 0.1 and x=20, 30 was studied. The result of X-ray diffraction spectra of the ribbons showed an amorphous nature of the alloys. Heating these ribbons below T 400 °C, even in a hydrogen atmosphere(1-10 bar), the amorphous structure was retained. The crystallization process was characterized by differential thermal analysis and the activation energy of such process was obtained. The hydrogen absorption properties of the samples in their amorphous state were studied by the volumetric method,and the results showed that the addition of Ta did not significantly influence the absorption properties, a clear change of the hydrogen solubility was observed with the variation of the Zr content. The values of the hydrogenation enthalpy changed from ~37 k J/mol for x=30 to ~9 k J/mol for x=20. The analysis of the volumetric data provides the indications about the hydrogen occupation sites during hydrogenation, suggesting that at the beginning of the absorption process the deepest energy levels are occupied, while only shallower energy levels are available at higher hydrogen content, with the available interstitial sites forming a continuum of energy levels.

收稿时间:3 November 2016

Hydrogen absorption properties of amorphous(Ni_(0.6)Nb_(0.4-y)Ta_y)_(100-x)Zr_x membranes
O. Palumbo,F. Trequattrini,N. Pal,M. Hulyalkar,S. Sarker,D. Chandr,T. Flanagan,M. Dolan,A. Paolone.Hydrogen absorption properties of amorphous(Ni_(0.6)Nb_(0.4-y)Ta_y)_(100-x)Zr_x membranes[J].Progress in Natural Science,2017,27(1):126-131.
Authors:O Palumbo  F Trequattrini  N Pal  M Hulyalkar  S Sarker  D Chandr  T Flanagan  M Dolan and A Paolone
Institution:CNR-ISC, U.O.S. La Sapienza, Piazzale A. Moro 5, 00185 Roma, Italy;Department of Physics, Sapienza University of Rome, Piazzale A. Moro 5, 00185 Roma, Italy;Department of Chemical and Materials Engineering, University of Nevada, Reno, NV 89557, USA;Department of Chemical and Materials Engineering, University of Nevada, Reno, NV 89557, USA;Department of Chemical and Materials Engineering, University of Nevada, Reno, NV 89557, USA;Department of Chemical and Materials Engineering, University of Nevada, Reno, NV 89557, USA;Department of Chemistry, University of Vermont, Burlington, VT 05405, USA;CSIRO, QCAT, Energy, 1 Technology Court, Pullenvale, QLD 4069, Australia;CNR-ISC, U.O.S. La Sapienza, Piazzale A. Moro 5, 00185 Roma, Italy
Abstract:Ni based amorphous materials have great potential as hydrogen purification membranes. In the present work the melt spun (Ni0.6Nb0.4−yTay)100−xZrx with y=0, 0.1 and x=20, 30 was studied. The result of X-ray diffraction spectra of the ribbons showed an amorphous nature of the alloys. Heating these ribbons below T<400 °C, even in a hydrogen atmosphere (1−10 bar), the amorphous structure was retained. The crystallization process was characterized by differential thermal analysis and the activation energy of such process was obtained. The hydrogen absorption properties of the samples in their amorphous state were studied by the volumetric method, and the results showed that the addition of Ta did not significantly influence the absorption properties, a clear change of the hydrogen solubility was observed with the variation of the Zr content. The values of the hydrogenation enthalpy changed from ~37 kJ/mol for x=30 to ~9 kJ/mol for x=20. The analysis of the volumetric data provides the indications about the hydrogen occupation sites during hydrogenation, suggesting that at the beginning of the absorption process the deepest energy levels are occupied, while only shallower energy levels are available at higher hydrogen content, with the available interstitial sites forming a continuum of energy levels.
Keywords:Amorphous Ni based alloy ribbons  High temperature X-ray diffraction  DTA  Activation energy  Crystallization temperature  Hydrogen solubility
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