Colloidal stabilization of nanoparticles in concentrated suspensions

被引:233
|
作者
Studart, Andre R. [1 ]
Amstad, Esther [1 ]
Gauckler, Ludwig J. [1 ]
机构
[1] ETH, Dept Mat, CH-8093 Zurich, Switzerland
关键词
D O I
10.1021/la062042s
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The stabilization of nanoparticles in concentrated aqueous suspensions is required in many manufacturing technologies and industrial products. Nanoparticles are commonly stabilized through the adsorption of a dispersant layer around the particle surface. The formation of a dispersant layer (adlayer) of appropriate thickness is crucial for the stabilization of suspensions containing high nanoparticle concentrations. Thick adlayers result in an excessive excluded volume around the particles, whereas thin adlayers lead to particle agglomeration. Both effects reduce the maximum concentration of nanoparticles in the suspension. However, conventional dispersants do not allow for a systematic control of the adlayer thickness on the particle surface. In this study, we synthesized dispersants with a molecular architecture that enables better control over the particle adlayer thickness. By tailoring the chemistry and length of these novel dispersants, we were able to prepare fluid suspensions (viscosity < 1 Pa center dot s at 100 s(-1)) with more than 40 vol % of 65-nm alumina particles in water, as opposed to the 30 vol % achieved with a state-of-the-art dispersing agent. This remarkably high concentration facilitates the fabrication of a wide range of products and intermediates in materials technology, cosmetics, pharmacy, and in all other areas where concentrated nanoparticle suspensions are required. On the basis of the proposed molecular architecture, one can also envisage other similar molecules that could be successfully applied for the functionalization of surfaces for biosensing, chromatography, medical imaging, drug delivery, and aqueous lubrication, among others.
引用
收藏
页码:1081 / 1090
页数:10
相关论文
共 50 条
  • [41] Viscosity of concentrated colloidal suspensions: comparison of bidisperse models
    Qin, KD
    Zaman, AA
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2003, 266 (02) : 461 - 467
  • [42] On the absence of structure factors in concentrated colloidal suspensions and nanocomposites
    Anne-Caroline Genix
    Julian Oberdisse
    The European Physical Journal E, 2023, 46
  • [43] Diffusiophoresis and electrophoresis in concentrated suspensions of charged colloidal spheres
    Wei, YK
    Keh, HJ
    LANGMUIR, 2001, 17 (05) : 1437 - 1447
  • [44] Colloidal processing of highly concentrated aqueous copper suspensions
    Vieira, Luiz E., Jr.
    Rodrigues Neto, Joao B.
    Klein, Aloisio N.
    Hotza, Dachamir
    Moreno, Rodrigo
    POWDER TECHNOLOGY, 2014, 256 : 540 - 544
  • [45] Viscosity equation for concentrated suspensions of charged colloidal particles
    Ogawa, A
    Yamada, H
    Matsuda, S
    Okajima, K
    Doi, M
    JOURNAL OF RHEOLOGY, 1997, 41 (03) : 769 - 785
  • [46] Structure, dynamics and interactions in concentrated colloidal suspensions and gels
    Urban, C
    Romer, S
    Scheffold, F
    Schurtenberger, P
    TRENDS IN COLLOID AND INTERFACE SCIENCE XIV, 2000, 115 : 270 - 274
  • [47] Microdivers to study sedimentation in polydisperse, concentrated colloidal suspensions
    Biesheuvel, PM
    Verweij, H
    Breedveld, V
    AICHE JOURNAL, 2001, 47 (09) : 1969 - 1977
  • [48] Dynamics of interacting Brownian particles in concentrated colloidal suspensions
    Xia, Hui
    Ishii, Katsuhiro
    Iwaii, Toshiaki
    Li, Hongjian
    Yang, Bingchu
    APPLIED OPTICS, 2008, 47 (09) : 1257 - 1262
  • [49] Sol-gel transition of concentrated colloidal suspensions
    Romer, S
    Scheffold, F
    Schurtenberger, P
    PHYSICAL REVIEW LETTERS, 2000, 85 (23) : 4980 - 4983
  • [50] Friction factor for the analysis of acoustophoresis in concentrated colloidal suspensions
    Pendse, HP
    JOURNAL OF THE CHINESE INSTITUTE OF CHEMICAL ENGINEERS, 2004, 35 (01): : 23 - 29