首页> 外文OA文献 >Élaboration, caractérisation et propriétés de stockage d’hydrogène électrochimique des alliages : Mg2Ni1–xMnx (x = 0, 0.125, 0.25, 0.375) et Mg2–xAlxNi (x = 0, 0.25) + 5 wt. MWCNTs préparés par mécanosynthèse
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Élaboration, caractérisation et propriétés de stockage d’hydrogène électrochimique des alliages : Mg2Ni1–xMnx (x = 0, 0.125, 0.25, 0.375) et Mg2–xAlxNi (x = 0, 0.25) + 5 wt. MWCNTs préparés par mécanosynthèse

机译:通过机械合成制备的合金电化学氢的开发,表征和存储特性:Mg2Ni1 – xMnx(x = 0,0.125,0.25,0.375)和Mg2 – xAlxNi(x = 0,0.25)+ 5 wt。%MWCNT

摘要

The use of fossil fuels (non-renewable energy) is responsible for increasing the concentration of greenhouse gases in the atmosphere. Among the considered alternatives, hydrogen is seen as the most attractive energy vector. The storage in intermetallics makes it possible to obtain mass and volume capacities (e.g. 140 g/L) higher than those obtained by liquid form or under pressure (respectively 71 and 40 g/L). The negative electrode of Nickel-Metal Hydride (NiMH) batteries, is constituted by an intermetallic compound which is able to reversibly absorb hydrogen under normal conditions. In this work, on the one hand, Mg2Ni1-xMnx(x=0, 0.125, 0.25, 0.375) and Mg2-xAlxNi (x = 0, 0.25) electrode alloys with and without multiwalled carbon nanotubes (MWCNTs) have been prepared by Mechanical Alloying. On the other hand, influence of the partial elements substitution on the microstructure and electrochemical hydrogen storage properties of Mg2Ni-type alloy has been studied.The results show that the discharge capacities of Mg2Ni1-xMnx (x =0, 0.125, 0.25, 0.375) alloys increase with the prolongation of milling time. The new phase Mg3MnNi2 is formed only when x=0.375 after 48 h of milling. Mg3MnNi2 phase is relatively stable during charge/discharge cycles and therefore can significantly enhance the cycle stability under simultaneously maintaining a high discharge capacity.Based on the calculated results of first principles, the lattice parameters and atomic coordinates are in good agreement with the experimental results and the stability of phases gradually decreases along the sequence pure Mg2Ni phase > Mg3MnNi2 phase > Mn-substitution doped Mg2Ni phase.When Al and MWCNTs are added simultaneously, the highest discharge capacity is obtained for Mg1.75Al0.25Ni-MWCNTs composite, which implies that MWCNTs and Al have synergistic effects on electrochemical hydrogen storage capacity of milled alloys.
机译:化石燃料(不可再生能源)的使用负责增加大气中温室气体的浓度。在考虑的替代方案中,氢被视为最具吸引力的能源载体。金属间化合物的储存使得可以获得比通过液体形式或在压力下获得的质量和体积容量(例如140g / L)更高的质量和体积容量(分别为71g / L和40g / L)。镍氢(NiMH)电池的负极由金属间化合物构成,该金属间化合物在正常条件下能够可逆地吸收氢。在这项工作中,一方面,通过机械制备了Mg2Ni1-xMnx(x = 0,0.125,0.25,0.375)和Mg2-xAlxNi(x = 0,0.25)带有和不带有多壁碳纳米管(MWCNT)的电极合金。合金化。另一方面,研究了部分元素置换对Mg2Ni型合金组织和电化学储氢性能的影响,结果表明Mg2Ni1-xMnx的放电容量(x = 0,0.125,0.25,0.375)合金随着铣削时间的延长而增加。仅在研磨48小时后x = 0.375时才形成新相Mg3MnNi2。 Mg3MnNi2相在充放电循环中相对稳定,因此可以在保持高放电容量的同时显着增强循环稳定性。基于第一性原理的计算结果,晶格参数和原子坐标与实验结果和相的稳定性沿着纯Mg2Ni相> Mg3MnNi2相> Mn取代掺杂的Mg2Ni相的顺序逐渐降低。当同时添加Al和MWCNTs时,Mg1.75Al0.25Ni-MWCNTs复合材料的放电容量最高。 MWCNT和Al对铣削合金的电化学储氢能力具有协同作用。

著录项

  • 作者

    Huang Liwu;

  • 作者单位
  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 fr
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