Effects of B, Fe, Gd, Mg, and C on the structure, hydrogen storage, and electrochemical properties of vanadium-free AB2 metal hydride alloy

被引:22
作者
Young, K. [1 ]
Ouchi, T. [1 ]
Huang, B. [1 ]
Fetcenko, M. A. [1 ]
机构
[1] Ovon Battery Co, Energy Convers Devices Inc, Rochester Hills, MI 48309 USA
关键词
Hydrogen absorbing materials; Transition metal alloys; Metal hydride electrode; Electrochemical reactions; LAVES PHASE ALLOYS; COMPOSITION-TEMPERATURE HYSTERESIS; ABSORPTION PROPERTIES; MULTICOMPONENT ALLOYS; CARBON ADDITION; BORON ADDITION; HIGH-PRESSURE; PERFORMANCE; MGNI2; AL;
D O I
10.1016/j.jallcom.2011.09.044
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The structural, gaseous phase hydrogen storage, and electrochemical properties of a series of vanadium-free AB(2) Laves phase based metal hydride alloys with various modifiers (Ti5Zr30Cr9Mn19Co5Ni32-xMx, M = B, Fe, Gd, Mg, and C) were studied. While B and Fe completely dissolve in the main AB(2) phases, Gd, Mg, and C form individual secondary phases. The solubilities of Gd, Mg, and C in the AB(2) phases are not detectable, 0.3 at.%, and very low, respectively. The C14 crystallite sizes, C15 phase abundances, and Zr7Ni10 phase abundances of modified alloys are larger than those of the base alloy. All modified alloys show decreases in plateau pressure, reversible gaseous phase storage capacity, formation activity, electrochemical capacity, and cycle life. A small amount of boron (0.2 at.%) and carbon in the alloy improve the half-cell high-rate dischargeability and bulk hydrogen diffusion. All modifiers, except for boron, reduce the surface exchange reaction current densities of the alloys. Both Mg and C show improvement in charge retention. Full-cell high-rate performance is improved by adding only a small amount of boron (0.2 at.%). Fe, Gd and 0.2 at.% of boron improve the low-temperature performance of the sealed batteries. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:242 / 250
页数:9
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