Effects of process parameters on the physical properties of poly (urea-formaldehyde) microcapsules prepared by a one-step method

被引:14
作者
Fan Chuanjie [1 ]
Tang Juntao [1 ]
Zhou Xiaodong [1 ]
机构
[1] E China Univ Sci & Technol, State Key Lab Chem Engn, Shanghai 200237, Peoples R China
关键词
Microcapsule; Poly (urea-formaldehyde); One-step method; Processing parameters; MICROENCAPSULATION; MECHANISM; RESINS;
D O I
10.1007/s13726-013-0165-z
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The physical properties of microcapsules are strongly influenced by the synthetic conditions used for their preparation. To prepare microcapsules possessing a smooth surface morphology, high mechanical strength, and reduced permeability of the core material, in situ polymerization in an oil-in-water emulsion was performed using poly (urea-formaldehyde) and tetrachloroethylene as the shell and core materials, respectively. The influence of the synthetic conditions, including the initial pH value, concentration of wall material, concentration of NaCl, and heating rate, on the properties of the resulting microcapsules was investigated systematically by an orthogonal factorial design. The physical properties of the microcapsules were characterized using scanning electron microscopy and optical-photographic microscopy. The results showed that the concentration of shell material has a substantial effect on the mechanical strength of the microcapsules. Additionally, a slow heating rate and high initial pH value enhance the preparation of well-defined spherical microcapsules having excellent barrier properties. Finally, a moderate concentration of sodium chloride can remarkably improve the compactness of the capsule wall. The optimum conditions, determined on the basis of utilization of wall material, are as follows: initial pH value: 3.5; concentration of shell material: 3.6 x 10(-2) g/mL; heating rate: 0.5 A degrees C/min; and concentration of sodium chloride: 5.0 x 10(-2) g/mL.
引用
收藏
页码:665 / 675
页数:11
相关论文
共 35 条
[1]   Microcapsules filled with reactive solutions for self-healing materials [J].
Blaiszik, B. J. ;
Caruso, M. M. ;
McIlroy, D. A. ;
Moore, J. S. ;
White, S. R. ;
Sottos, N. R. .
POLYMER, 2009, 50 (04) :990-997
[2]  
Bolboaca S.D., 2007, ENTROPY-SWITZ, V9, P198, DOI [10.3390/e9040198, DOI 10.3390/E9040198]
[3]   Microcapsule induced toughening in a self-healing polymer composite [J].
Brown, EN ;
White, SR ;
Sottos, NR .
JOURNAL OF MATERIALS SCIENCE, 2004, 39 (05) :1703-1710
[4]   In situ poly(urea-formaldehyde) microencapsulation of dicyclopentadiene [J].
Brown, EN ;
Kessler, MR ;
Sottos, NR ;
White, SR .
JOURNAL OF MICROENCAPSULATION, 2003, 20 (06) :719-730
[5]   Self-Healing Polymer Coatings [J].
Cho, Soo Hyoun ;
White, Scott R. ;
Braun, Paul V. .
ADVANCED MATERIALS, 2009, 21 (06) :645-+
[6]   C-13 CP/MAS NMR-STUDY OF THE STRUCTURAL DEPENDENCE OF UREA FORMALDEHYDE RESINS ON FORMALDEHYDE-TO-UREA MOLAR RATIOS AT DIFFERENT UREA CONCENTRATIONS AND PH VALUES [J].
CHUANG, IS ;
MACIEL, GE .
MACROMOLECULES, 1992, 25 (12) :3204-3226
[7]   Properties of poly(urea-formaldheyde) microcapsules containing an epoxy resin [J].
Cosco, S. ;
Ambrogi, V. ;
Musto, P. ;
Carfagna, C. .
JOURNAL OF APPLIED POLYMER SCIENCE, 2007, 105 (03) :1400-1411
[8]   AMINO RESIN MICROCAPSULES .4. SURFACE-TENSION OF THE RESINS AND MECHANISM OF CAPSULE FORMATION [J].
DIETRICH, K ;
BONATZ, E ;
NASTKE, R ;
HERMA, H ;
WALTER, M ;
TEIGE, W .
ACTA POLYMERICA, 1990, 41 (02) :91-95
[9]  
Dongbin Fan, 2006, [Adhesion and lnterface, 접착 및 계면], V7, P45
[10]  
Dubey R, 2009, DEFENCE SCI J, V59, P82