Hydrogen storage and thermal transport properties of pelletized porous Mg-2 wt.% multiwall carbon nanotubes and Mg-2 wt.% graphite composites

被引:59
作者
Popileusky, L. [1 ,2 ]
Skripnyuk, V. M. [1 ]
Beregavsky, M. [1 ]
Sezen, M. [3 ]
Amouyal, Y. [1 ]
Rabkin, E. [1 ]
机构
[1] Technion Israel Inst Technol, Dept Mat Sci & Engn, IL-32000 Haifa, Israel
[2] Technion Israel Inst Technol, GTEP, IL-32000 Haifa, Israel
[3] Sabanci Univ, Nanotechnol Res & Applicat Ctr SUNUM, TR-34956 Istanbul, Turkey
关键词
Magnesium hydride; Multiwall carbon nanotubes; High energy ball milling; Porous metal matrix composites; RAMAN-SPECTRA; MAGNESIUM; MICROSTRUCTURE; ADDITIVES; DEFECTS;
D O I
10.1016/j.ijhydene.2016.03.014
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
We synthesized pelletized porous composites of Mg admixed with 2 wt.% of either multiwall carbon nanotubes or graphite. The composites were prepared by high energy ball-milling of Mg powder with carbonaceous additives, followed by uniaxial compression and sintering in hydrogen environment under mechanical constraint. The correlations between ball-milling conditions, composite microstructure, hydrogenation kinetics, and thermal conductivity of the pellets were established. The presence and condition of carbon additives controls the morphology of Mg particles and, consequently, the mechanical stability of the pellet upon hydrogenation cycling. The best combination of hydrogen desorption kinetics, thermal conductivity, and mechanical stability was obtained for the pellets synthesized from the mixture of Mg with 2 wt.% of carbon nanotubes processed by 4 h of co-milling. The milling transformed carbon nanotubes into carbon nano-particles/nano-onions. These carbonaceous species promote metal nucleation from the hydride phase and allow formation of Mg-Mg bonds between the Mg particles contributing to mechanical stability of the pellet. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:14461 / 14474
页数:14
相关论文
共 47 条
  • [1] Structural modification of carbon nanotubes by various ball milling
    Ahn, J.-H.
    Shin, H.-S.
    Kim, Y.-J.
    Chung, H.
    [J]. JOURNAL OF ALLOYS AND COMPOUNDS, 2007, 434 : 428 - 432
  • [2] Reducing Lattice Thermal Conductivity of the Thermoelectric Compound AgSbTe2 (P4/mmm) by Lanthanum Substitution: Computational and Experimental Approaches
    Amouyal, Yaron
    [J]. JOURNAL OF ELECTRONIC MATERIALS, 2014, 43 (10) : 3772 - 3779
  • [3] Balandin AA, 2011, NAT MATER, V10, P569, DOI [10.1038/NMAT3064, 10.1038/nmat3064]
  • [4] Electrocatalysis at graphite and carbon nanotube modified electrodes: edge-plane sites and tube ends are the reactive sites
    Banks, CE
    Davies, TJ
    Wildgoose, GG
    Compton, RG
    [J]. CHEMICAL COMMUNICATIONS, 2005, (07) : 829 - 841
  • [5] Activation characteristics of graphite modified hydrogen absorbing materials
    Bouaricha, S
    Dodelet, JP
    Guay, D
    Huot, J
    Schulz, R
    [J]. JOURNAL OF ALLOYS AND COMPOUNDS, 2001, 325 (1-2) : 245 - 251
  • [6] Enhancement of hydrogen sorption in magnesium hydride using expanded natural graphite
    Chaise, A.
    de Rango, P.
    Marty, Ph.
    Fruchart, D.
    Miraglia, S.
    Olives, R.
    Garrier, S.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (20) : 8589 - 8596
  • [7] Low-temperature structure and dynamics of brucite
    Chakoumakos, BC
    Loong, CK
    Schultz, AJ
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 1997, 101 (46): : 9458 - 9462
  • [8] Charles K, 2004, INTRO SOLID STATE PH, V8th
  • [9] Chen D, 2004, J ALLOY COMPD, V372, P231, DOI 10.1016/j.jallcom.2003.08.104
  • [10] Generation of curved or closed-shell carbon nanostructures by ball-milling of graphite
    Chen, XH
    Yang, HS
    Wu, GT
    Wang, M
    Deng, FM
    Zhang, XB
    Peng, JC
    Li, WZ
    [J]. JOURNAL OF CRYSTAL GROWTH, 2000, 218 (01) : 57 - 61