Phase separation and physico-chemical processes at microscopic and macroscopic levels in MWCNT laden polymer blends using a unique droplet based architecture

被引:2
作者
Pathak, Binita [1 ]
Kar, Goutam Prasanna [2 ]
Bose, Suryasarathi [2 ]
Basu, Saptarshi [1 ]
机构
[1] Indian Inst Sci, Dept Mech Engn, Bangalore 560012, Karnataka, India
[2] Indian Inst Sci, Dept Mat Engn, Bangalore 560012, Karnataka, India
关键词
SPINODAL DECOMPOSITION; THERMAL-CONDUCTIVITY; BINARY; MISCIBILITY; BEHAVIOR;
D O I
10.1039/c7cp03621c
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 propose a unique contact-free droplet based architecture in which thermally induced instabilities can be used to precisely alter the phase separation behavior in a dynamically asymmetric polymer blend (solution of PS/PVME in toluene) by controlling the external heating rates and concentration of added nanoparticles (multi-walled carbon nanotube particles, MWCNTs). In addition, by tuning the heating rates, distinctly different macroscopic morphologies (hollow shell or globular mass) can be obtained as a final structure in such droplets. Furthermore, the process of separation is temporally aggravated by several orders (about 3-5 orders) as compared to the traditional bulk processing techniques (thin film of blends). Faster production rate and high throughput promise a new spray-based architecture for producing phase separated structures. Addition of MWCNTs in the polymer blend delays the separation phenomenon as it interacts with the polymers and alters the stability criteria. Furthermore, addition of nanoparticles also introduces a different mode of instability at higher external heating rates. Heat accumulation due to particles causes boiling of the solvent (toluene) trapped inside the droplet which leads to subsequent explosion of the entire droplet, in addition to the phase separation phenomena (at the microscopic level). Volumetric expansion due to bubble growth leads to the formation of a unique hollow structure which is distinctly different from the globular mass obtained at lower heating rates.
引用
收藏
页码:24961 / 24970
页数:10
相关论文
共 40 条
[1]   Multi-scale model for binary mixtures containing nanoscopic particles [J].
Balazs, AC ;
Ginzburg, VV ;
Qiu, F ;
Peng, GW ;
Jasnow, D .
JOURNAL OF PHYSICAL CHEMISTRY B, 2000, 104 (15) :3411-3422
[2]   Nanoparticle polymer composites: Where two small worlds meet [J].
Balazs, Anna C. ;
Emrick, Todd ;
Russell, Thomas P. .
SCIENCE, 2006, 314 (5802) :1107-1110
[3]   Thermally induced secondary atomization of droplet in an acoustic field [J].
Basu, Saptarshi ;
Saha, Abhishek ;
Kumar, Ranganathan .
APPLIED PHYSICS LETTERS, 2012, 100 (05)
[4]   Unusually high thermal conductivity of carbon nanotubes [J].
Berber, S ;
Kwon, YK ;
Tománek, D .
PHYSICAL REVIEW LETTERS, 2000, 84 (20) :4613-4616
[5]   Nanoparticle-Driven Intermolecular Cooperativity and Miscibility in Polystyrene/Poly(vinyl methyl ether) Blends [J].
Bharati, Avanish ;
Xavier, Priti ;
Kar, Goutam Prasanna ;
Madras, Giridhar ;
Bose, Suryasarathi .
JOURNAL OF PHYSICAL CHEMISTRY B, 2014, 118 (08) :2214-2225
[6]   FREE ENERGY OF A NONUNIFORM SYSTEM .1. INTERFACIAL FREE ENERGY [J].
CAHN, JW ;
HILLIARD, JE .
JOURNAL OF CHEMICAL PHYSICS, 1958, 28 (02) :258-267
[7]   PHASE SEPARATION BY SPINODAL DECOMPOSITION IN ISOTROPIC SYSTEMS [J].
CAHN, JW .
JOURNAL OF CHEMICAL PHYSICS, 1965, 42 (01) :93-+
[8]   The present status and key problems of carbon nanotube based polymer composites [J].
Du, J-H. ;
Bai, J. ;
Cheng, H-M. .
EXPRESS POLYMER LETTERS, 2007, 1 (05) :253-273
[9]   Electrical conductivity of individual carbon nanotubes [J].
Ebbesen, TW ;
Lezec, HJ ;
Hiura, H ;
Bennett, JW ;
Ghaemi, HF ;
Thio, T .
NATURE, 1996, 382 (6586) :54-56
[10]   Measuring the thermal conductivity of a single carbon nanotube [J].
Fujii, M ;
Zhang, X ;
Xie, HQ ;
Ago, H ;
Takahashi, K ;
Ikuta, T ;
Abe, H ;
Shimizu, T .
PHYSICAL REVIEW LETTERS, 2005, 95 (06)