Kwak Young Jun, Lee Seong Ho, Song Myoung Youp
Division of Advanced Materials Engineering, Hydrogen and Fuel Cell Research Center, Engineering Research Institute, Chonbuk National University, 567 Baekje-daero Deokjin-gu Jeonju, 54896, Republic of Korea.
Department of Materials Engineering, Graduate School, Chonbuk National University, 567 Baekje-daero Deokjin-gu Jeonju, 54896, Republic of Korea.
J Nanosci Nanotechnol. 2018 Sep 1;18(9):6040-6046. doi: 10.1166/jnn.2018.15607.
A sample with a composition of 95 wt% Mg + 5 wt% TaF5 (named Mg-5TaF5) was prepared by reactive mechanical grinding. The activation of Mg-5TaF5 was not necessary, and Mg-5TaF5 had an effective hydrogen storage capacity (the quantity of hydrogen absorbed for 60 min) larger than 5 wt%. At the first cycle (n = 1), the sample absorbed 4.50 wt% H for 10 min and 5.06 wt% H for 60 min at 593 K under 12 bar H2. At n = 1, the sample desorbed 1.58 wt% H for 10 min and 4.93 wt% H for 60 min at 593 K under 1.0 bar H2. The Mg-5TaF5 sample dehydrided at n = 3 contained MgF2 and Ta2H. The hydriding-dehydriding cycling of the sample, which forms MgF2 and Ta2H by reaction with hydrogen, is considered to produce defects on the surface of and inside the Mg particles, to create clean surfaces, and to reduce the particle size of Mg, due to the repetition of expansion with hydrogen absorption and contraction with hydrogen release. Mg-5TaF5 had a higher hydriding rate and a higher dehydriding rate after an incubation period and greater quantities of hydrogen absorbed and desorbed for 60 min than Mg-10TaF5, Mg-10MnO, or Mg-10Fe2O3.
通过反应机械研磨制备了一种组成为95 wt% Mg + 5 wt% TaF5的样品(命名为Mg-5TaF5)。Mg-5TaF5无需活化,其有效储氢容量(60分钟内吸收的氢气量)大于5 wt%。在第一个循环(n = 1)时,该样品在593 K、12 bar H2条件下,10分钟内吸收了4.50 wt%的H,60分钟内吸收了5.06 wt%的H。在n = 1时,该样品在593 K、1.0 bar H2条件下,10分钟内解吸了1.58 wt%的H,60分钟内解吸了4.93 wt%的H。在n = 3时脱氢的Mg-5TaF5样品含有MgF2和Ta2H。该样品通过与氢反应形成MgF2和Ta2H的吸氢-脱氢循环,由于吸氢时膨胀和释氢时收缩的重复,被认为会在Mg颗粒表面和内部产生缺陷,形成清洁表面,并减小Mg的颗粒尺寸。与Mg-10TaF5、Mg-10MnO或Mg-10Fe2O3相比,Mg-5TaF5在经过一段诱导期后具有更高的吸氢速率和脱氢速率,且60分钟内吸收和解吸的氢气量更多。