材料科学
氢气储存
氢
固态
吸附低温
化学工程
冶金
工程物理
合金
有机化学
工程类
化学
作者
Ulrich Ulmer,Daria Oertel,Thomas Diemant,Christian Bonatto Minella,Thomas Bergfeldt,Roland Dittmeyer,R. Jürgen Behm,Maximilian Fichtner
标识
DOI:10.1021/acsami.7b13541
摘要
Two approaches of engineering surface structures of V–Ti-based solid solution hydrogen storage alloys are presented, which enable improved tolerance toward gaseous oxygen (O2) impurities in hydrogen (H2) gas. Surface modification is achieved through engineering lanthanum (La)- or nickel (Ni)-rich surface layers with enhanced cyclic stability in an H2/O2 mixture. The formation of a Ni-rich surface layer does not improve the cycling stability in H2/O2 mixtures. Mischmetal (Mm, a mixture of La and Ce) agglomerates are observed within the bulk and surface of the alloy when small amounts of this material are added during arc melting synthesis. These agglomerates provide hydrogen-transparent diffusion pathways into the bulk of the V–Ti–Cr–Fe hydrogen storage alloy when the remaining oxidized surface is already nontransparent for hydrogen. Thus, the cycling stability of the alloy is improved in an O2-containing hydrogen environment as compared to the same alloy without addition of Mm. The obtained surface-engineered storage material still absorbs hydrogen after 20 cycles in a hydrogen–oxygen mixture, while the original material is already deactivated after 4 cycles.
科研通智能强力驱动
Strongly Powered by AbleSci AI