Theoretical study and pathways for nanoparticle capture during solidification of metal melt

被引:135
作者
Xu, J. Q. [1 ]
Chen, L. Y. [1 ,2 ]
Choi, H. [2 ]
Li, X. C. [1 ,2 ]
机构
[1] Univ Wisconsin Madison, Mat Sci Program, Madison, WI 53706 USA
[2] Univ Wisconsin Madison, Dept Mech Engn, Madison, WI 53706 USA
关键词
THERMOPHYSICAL PROPERTIES; SOLIDIFYING INTERFACES; PARTICLE ENGULFMENT; FOREIGN PARTICLES; NANOCOMPOSITES; MATRIX; MICROSTRUCTURE; MODEL; ALLOY; BEHAVIOR;
D O I
10.1088/0953-8984/24/25/255304
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
Nanocomposites can provide exciting physical, chemical, and mechanical properties for numerous applications. The solidification processing method has great potential for economical fabrication of bulk nanocomposites, especially for those with crystalline materials as the matrix, such as metal matrix nanocomposites (MMNCs). However, it is extremely difficult to effectively capture nanoparticles (less than 100 nm) into the solidification fronts during solidification. It is thus very important to initiate a theoretical study to examine the physics that governs the interactions between nanoparticles and the solidification front, and to provide enabling pathways for effective nanoparticle capture during solidification. The aim of this paper is to establish a theoretical framework for the fundamental understanding of nanoparticle capture during solidification of metal melt in order to obtain bulk MMNCs. A thermodynamically favorable condition is set as the starting point for further theoretical analysis of the three-party model system, namely a nanoparticle-metal-melt-solidification front. Three key interaction potentials, the interfacial energy at short range (0.2-0.4 nm), the van der Waals potential (especially at a longer range beyond 0.4 nm and up to similar to 10 nm) and the Brownian potential, were studied. Three possible pathways for nanoparticle capture were thus devised: viscous capture, Brownian capture and spontaneous capture. Spontaneous capture is proposed as the most favorable for nanoparticle capture during solidification of metal melt. The theoretical model of nanoparticle capture from this study will serve as a powerful tool for future experimental studies to realize exciting functionalities offered by bulk MMNCs.
引用
收藏
页数:10
相关论文
共 79 条
[1]   Hard and corrosion resistant nanocomposite coating for Al alloy [J].
Aal, A. Abdel .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2008, 474 (1-2) :181-187
[2]   Alleviating fatigue and failure of NiTi endodontic files by a coating containing inorganic fullerene-like WS2 nanoparticles [J].
Adini, Adi Ram ;
Feldman, Yishay ;
Cohen, Sidney R. ;
Rapoport, Lev ;
Moshkovich, Alexey ;
Redlich, Meir ;
Moshonov, Joshua ;
Shay, Boaz ;
Tenne, Reshef .
JOURNAL OF MATERIALS RESEARCH, 2011, 26 (10) :1234-1242
[3]  
[Anonymous], 2009, P INT C HEAT EXCH FO
[4]  
[Anonymous], ELECT ENERGY LOSS SP
[5]   Synthesis and properties of electrodeposited Ni/ceria nanocomposite coatings [J].
Aruna, S. T. ;
Bindu, C. N. ;
Selvi, V. Ezhil ;
Grips, V. K. William ;
Rajam, K. S. .
SURFACE & COATINGS TECHNOLOGY, 2006, 200 (24) :6871-6880
[6]   Thermophysical properties effects on segregation during solidification [J].
Azouni, MA ;
Casses, P .
ADVANCES IN COLLOID AND INTERFACE SCIENCE, 1998, 75 (02) :83-106
[7]  
Banerjea A., 1991, FUNDAMENTALS ADHESIO, P325
[8]  
Benerjee R, 2005, SCRIPTA MATER, V53, P1433
[9]   Magnetically textured γ-Fe2O3 nanoparticles in a silica gel matrix:: Structural and magnetic properties [J].
Bentivegna, F ;
Ferre, J ;
Nyvlt, M ;
Jamet, JP ;
Imhoff, D ;
Canva, M ;
Brun, A ;
Veillet, P ;
Visnovsky, S ;
Chaput, F ;
Boilot, JP .
JOURNAL OF APPLIED PHYSICS, 1998, 83 (12) :7776-7788
[10]   Estimation of Hamaker constants of ceramic materials from optical data using Lifshitz theory [J].
Bergstrom, L ;
Meurk, N ;
Arwin, H ;
Rowcliffe, DJ .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 1996, 79 (02) :339-348