An Expanded State Diagram for the Directed Self-Assembly of Colloidal Suspensions in Toggled Fields

被引:14
|
作者
Kim, Hojin [1 ]
Sau, Moujhuri [1 ]
Furst, Eric M. [1 ]
机构
[1] Univ Delaware, Dept Chem & Biomol Engn, Allan P Colburn Lab, Newark, DE 19716 USA
关键词
ELECTROHYDRODYNAMIC PATTERNS; PARTICLES; KINETICS; NANOPARTICLES; INSTABILITY; FABRICATION; TRANSITION; DEPOSITION; CHAINS; FLUIDS;
D O I
10.1021/acs.langmuir.0c01616
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The suspension structure and assembly kinetics of micrometer-diameter paramagnetic spheres in toggled magnetic fields are investigated at a constant field strength H = 1750A.m(-1) while toggling the field on and off over the frequency range 0.3<f<5 Hz and duty ratio values (the fraction of time the field is on over one toggle period) 0.05 <= xi <= 0.8. Five microstructures form after sufficient time in the toggled field, fluid, columnar, percolated, ellipsoidal-shaped, and perpendicular, and their kinetic pathways are identified. For ellipsoidal-shaped microstructures, diffusion-driven particle aggregation at early times gives way to a fluid-like breakup. For columnar and percolated structures, this coarsening arrests before breakup. As the toggling duty cycle decreases, the range of frequencies for each structure narrows, giving way to an unstructured fluid; below xi<0.1, only the fluid state is observed. The existence of fluid, columnar, percolated, and ellipsoidal-shaped microstructures agrees well with those predicted by the theoretical and computational work of Sherman et al. (Sherman, Z. M.; Rosenthal, H.; Swan, J. W. Langmuir 2018, 34, 1029-1041). Microstructures that connect perpendicularly to the magnetic field are identified for 0.1 <= xi <= 0.3 and 1.6<f<3.7 Hz. Perpendicular microstructures also exhibit emergent dynamics with continuous rotation, breakup, and coalescence events.
引用
收藏
页码:9926 / 9934
页数:9
相关论文
共 50 条
  • [41] Defects in the Self-Assembly of Block Copolymers and Their Relevance for Directed Self-Assembly
    Li, Weihua
    Mueller, Marcus
    ANNUAL REVIEW OF CHEMICAL AND BIOMOLECULAR ENGINEERING, VOL 6, 2015, 6 : 187 - 216
  • [42] Large Area Plasmonic Color Palettes with Expanded Gamut Using Colloidal Self-Assembly
    Wang, Liancheng
    Ng, Ray Jia Hong
    Dinachali, Saman Safari
    Jalali, Mahsa
    Yu, Ye
    Yang, Joel K. W.
    ACS PHOTONICS, 2016, 3 (04): : 627 - 633
  • [43] Kinetically blocked self-assembly of colloidal strings with tunable interactions in magnetic fields
    Yakovlev, Egor V.
    Simkin, Ivan V.
    Shirokova, Anastasia A.
    Kohanovskaya, Alexandra V.
    Gursky, Konstantin D.
    Dragun, Maksim A.
    Nasyrov, Artur D.
    Yurchenko, Stanislav O.
    Kryuchkov, Nikita P.
    JOURNAL OF CHEMICAL PHYSICS, 2024, 161 (18):
  • [44] An experimental and simulation study on the self-assembly of colloidal cubes in external electric fields
    Vutukuri, Hanumantha Rao
    Smallenburg, Frank
    Badaire, Stephane
    Imhof, Arnout
    Dijkstra, Marjolein
    van Blaaderen, Alfons
    SOFT MATTER, 2014, 10 (45) : 9110 - 9119
  • [45] Transition state annealing for defect control during colloidal self-assembly
    Koh, Yaw Koon
    Teh, Lay Kuan
    Wong, Chee Cheong
    THIN SOLID FILMS, 2008, 516 (16) : 5637 - 5639
  • [46] Columnar self-assembly of colloidal nanodisks
    Saunders, Aaron E.
    Ghezelbash, Ali
    Smilgies, Detlef-M.
    Sigman, Michael B., Jr.
    Korgel, Brian A.
    NANO LETTERS, 2006, 6 (12) : 2959 - 2963
  • [47] An active approach to colloidal self-assembly
    Mallory, S.A.
    Valeriani, Chantal
    Cacciuto, A.
    arXiv, 2021,
  • [48] Self-assembly of patchy colloidal dumbbells
    Avvisati, Guido
    Vissers, Teun
    Dijkstra, Marjolein
    JOURNAL OF CHEMICAL PHYSICS, 2015, 142 (08):
  • [49] COLLOIDAL SELF-ASSEMBLY Interlocked octapods
    Rupich, Sara M.
    Talapin, Dmitri V.
    NATURE MATERIALS, 2011, 10 (11) : 815 - 816
  • [50] A Review on Colloidal Self-Assembly and their Applications
    Xu, Zongwei
    Wang, Liyang
    Fang, Fengzhou
    Fu, Yongqi
    Yin, Zhen
    CURRENT NANOSCIENCE, 2016, 12 (06) : 725 - 746