Effect of Particle Size and Pretreatment on the Conductivity of Glass Powder during Compaction

被引:6
|
作者
Murawski, Dawid [1 ,2 ]
Behrens, Harald [1 ,2 ]
机构
[1] Leibniz Univ Hannover, Inst Mineral, Callinstr 3, D-30167 Hannover, Germany
[2] Leibniz Univ Hannover, Ctr Solid State Chem & New Mat, ZFM, Hannover, Germany
关键词
amorphous solids; conductivity; impedance spectroscopy; lithium mobility; porosity; powder compaction; water vapor; IONIC-CONDUCTIVITY; ELECTRICAL-CONDUCTIVITY; SILICATE-GLASSES; PRESSURE; LI; TEMPERATURE; DIFFUSION; NANOCRYSTALLINE; DEPENDENCE; VISCOSITY;
D O I
10.1515/zpch-2016-0926
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
Physical properties of solid materials can be strongly modified by pressure treatment at elevated temperatures. This study focuses on the compaction-induced behavior of powdered amorphous solids using Li2Si3O7-glass as an example. Experiments were carried out on distinct fractions with particle sizes from <25 mu m to 224-250 mu m. Measurements of electrical conductivity using impedance spectroscopy were carried out in situ at pressures up to 930 MPa and at temperatures from 373 K to 667 K. Simultaneous monitoring of volume changes allows correlating conductivity and porosity of samples. To study the effect of adsorbed water on surfaces, the material was pretreated by flushing with water-bearing nitrogen before the experiment. Continuous increase of electrical conductivity upon pressurization was observed for all particle size fractions both in the brittle and in the plastic deformation regimes. The pressure derivative of DC conductivity strongly increases with grain size at low T (373 K). At high T (608-665 K) the effect is less pronounced due to the onset of welding of particles forming continuous pathways for charge transport without grain boundaries as barriers. Welding of particles occurs already at temperatures significantly below the glass transition temperature, induced by strong local forces at grain-grain contacts. No effect by pretreatment of glass powder with water vapor was observed at low temperature, while at high temperature surface modification by adsorbed water resulted in enhancement of electrical conductivity, probably caused by lowering of viscosity at grain surfaces, which facilitates welding of particles.
引用
收藏
页码:1323 / 1343
页数:21
相关论文
共 50 条
  • [1] On the Effect of Particle Size Distribution in Cold Powder Compaction
    Olsson, Erik
    Larsson, Per-Lennart
    JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2012, 79 (05):
  • [2] Effect of particle size on powder compaction and tablet strength using limestone
    Cabiscol, Ramon
    Shi, Hao
    Wuensch, Isabell
    Magnanimo, Vanessa
    Finke, Jan Henrik
    Luding, Stefan
    Kwade, Arno
    ADVANCED POWDER TECHNOLOGY, 2020, 31 (03) : 1280 - 1289
  • [3] Particle rearrangement during powder compaction
    Jianxin Liu
    David P. De Lo
    Metallurgical and Materials Transactions A, 2001, 32 : 3117 - 3124
  • [4] Particle rearrangement during powder compaction
    Liu, JX
    DeLo, DP
    METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2001, 32 (12): : 3117 - 3124
  • [5] EFFECT OF COMPACTION ON PARTICLE-SIZE
    KHAN, KA
    RHODES, CT
    JOURNAL OF PHARMACEUTICAL SCIENCES, 1975, 64 (03) : 444 - 447
  • [6] EFFECT OF POWDER PROPERTIES AND COMPACTION PRESSURE ON PARTICLE SIZE OF ROLL-COMPACTED GRANULATE
    Svehla, O.
    Zamostny, P.
    9TH INTERNATIONAL CONFERENCE ON CHEMICAL TECHNOLOGY, 2022, : 331 - 335
  • [7] Inclusion particle size effects on the cyclic compaction of powder composites
    Jiang, G
    Daehn, GS
    Wagoner, RH
    SCRIPTA MATERIALIA, 2001, 44 (07) : 1117 - 1123
  • [8] COMPACTION MECHANISM AS THE FUNCTION OF ATOMIZED POWDER PARTICLE-SIZE
    RADEKA, M
    RANOGAJEC, J
    MARINKOVICNEDUCIN, R
    ZIVANOVIC, B
    CERAMICS INTERNATIONAL, 1995, 21 (04) : 249 - 255
  • [9] Densification and deformation during uniaxial cold compaction of stainless steel powder with different particle size
    Cristofolini, I.
    Pederzini, G.
    Rambelli, A.
    Molinari, A.
    POWDER METALLURGY, 2016, 59 (01) : 73 - 84