Model for the cold sintering of lead zirconate titanate ceramic composites

被引:19
作者
Wang, Dixiong [1 ]
Tsuji, Kosuke [1 ]
Randall, Clive A. [1 ]
Trolier-McKinstry, Susan [1 ]
机构
[1] Penn State Univ, Dept Mat Sci & Engn, State Coll, PA 16802 USA
基金
美国国家科学基金会;
关键词
cold sintering; lead zirconate titanate; low temperature; sinter; sintering; DIELECTRIC-PROPERTIES; LIQUID-PHASE; DENSIFICATION; MICROSTRUCTURE; DEFORMATION;
D O I
10.1111/jace.17269
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
A model was developed to describe the cold sintering process (CSP) of lead zirconate titanate (PZT) using moistened lead nitrate as a sintering aid. The densities of PZT powder with different volume fractions of lead nitrate were evaluated after cold sintering at 300 degrees C and 500 MPa for 3 hours. The densities were categorized into three zones. In zone I, the relative density following cold sintering increases from 66% to 80%, as the lead nitrate contents rise from 0 to 14 vol%. In this case, the lead nitrate acts to fill some of the pore volume between PZT grains. Zone II serves as a transition region, where there is both pore filling and dilution of the PZT grains associated with lead nitrate contents from 14 to 34 vol%. In zone III, the relative density drops due to dilution at lead nitrate contents exceeding 34 vol%. To slow the process down so that the kinetics could be studied more readily, samples were cold sintered at room-temperature and 500 MPa. It was found that during the first few seconds of compaction, 85PZT/15Pb(NO3)(2)rapidly densified from 51% to 61% relative density due to particle re-arrangement. For longer times at pressure, the CSP improved the packing relative to PZT compacted without the lead nitrate, yielding a higher relative density. The late stages of the PZT/Pb(NO3)(2)CSP could be well described using a viscous sintering model for pressures from 50 MPa to 1000 MPa and temperatures from 25 degrees C to 300 degrees C.
引用
收藏
页码:4894 / 4902
页数:9
相关论文
共 50 条
[31]   Novel forming of columnar lead zirconate titanate structures [J].
Sun, Dongyang ;
Rocks, Sophie A. ;
Wang, Dazhi ;
Edirisinghe, Mohan J. ;
Dorey, Robert A. .
JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2008, 28 (16) :3131-3139
[32]   Lead zirconate titanate behaviors in an LDMOS [J].
翟亚红 ;
李威 ;
李平 ;
李俊宏 ;
胡滨 ;
霍伟荣 ;
范雪 ;
王刚 .
Chinese Physics B, 2013, 22 (07) :582-585
[33]   Electrodeposition of lead zirconate titanate nanotubes [J].
A. Nourmohammadi ;
M. A. Bahrevar ;
S. Schulze ;
M. Hietschold .
Journal of Materials Science, 2008, 43 :4753-4759
[34]   Thermal expansion in lead zirconate titanate [J].
FENG Yujun .
ChineseScienceBulletin, 2002, (16) :1351-1355
[35]   Thermal expansion in lead zirconate titanate [J].
Feng, YJ ;
Xu, Z ;
Yao, X .
CHINESE SCIENCE BULLETIN, 2002, 47 (16) :1351-1355
[36]   Lead zirconate titanate behaviors in an LDMOS [J].
Zhai Ya-Hong ;
Li Wei ;
Li Ping ;
Li Jun-Hong ;
Hu Bin ;
Huo Wei-Rong ;
Fan Xue ;
Wang Gang .
CHINESE PHYSICS B, 2013, 22 (07)
[37]   Effect of the Type of Sintering on the Dielectric Hysteresis of a Hard Piezoceramic Material based on Lead Zirconate Titanate [J].
Marakhovskiy M.A. ;
Panich A.A. ;
Talanov M.V. ;
Marakhovskiy V.A. .
Bulletin of the Russian Academy of Sciences: Physics, 2020, 84 (11) :1419-1421
[38]   Electrophoretic deposition of lead-zirconate-titanate perovskite thick films with low sintering temperature [J].
Kuscer, Danjela ;
Kosec, Marija .
ELECTROPHORETIC DEPOSITION: FUNDAMENTALS AND APPLICATIONS III, 2009, 412 :101-106
[39]   Effect of sintering media on the properties of ceramics based on lead zirconate–titanate and manganese–zinc ferrites [J].
Yu. S. Prilipko .
Powder Metallurgy and Metal Ceramics, 2009, 48 :667-671
[40]   AC Poling study of lead zirconate titanate/vinylidene fluoride-trifluoroethylene composites [J].
Kwok, KW ;
Wong, CK ;
Zeng, R ;
Shin, FG .
APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2005, 81 (01) :217-222