Multiscale directed self-assembly of composite microgels in complex electric fields

被引:0
|
作者
Crassous J.J. [1 ]
Demirörs A.F. [2 ]
机构
[1] Division of Physical Chemistry, Department of Chemistry, Lund University, Lund
[2] Complex Materials, Department of Materials, ETH Zürich, Zürich
来源
Crassous, Jérôme J. (jerome.crassous@fkem1.lu.se) | 1600年 / Royal Society of Chemistry卷 / 13期
关键词
Electrodes - Crystalline materials - Self assembly - Gels - Micromachining - Electrophoresis;
D O I
10.1039/C6SM00857G
中图分类号
学科分类号
摘要
This study explored the application of localized electric fields for reversible directed self-assembly of colloidal particles in 3 dimensions. Electric field microgradients, arising from the use of micro-patterned electrodes, were utilized to direct the localization and self-assembly of polarizable (charged) particles resulting from a combination of dielectrophoretic and multipolar forces. Deionized dispersions of spherical and ellipsoidal core-shell microgels were employed for investigating their assembly under an external alternating electric field. We demonstrated that the frequency of the field allowed for an exquisite control over the localization of the particles and their self-assembled structures near the electrodes. We extended this approach to concentrated binary dispersions consisting of polarizable and less polarizable composite microgels. Furthermore, we utilized the thermosensitivity of the microgels to adjust the effective volume fraction and the dynamics of the system, which provided the possibility to dynamically “solidify” the assembly of the field-responsive particles by a temperature quench from their initial fluid state into an arrested crystalline state. Reversible solidification enables us to re-write/reconstruct various 3 dimensional assemblies by varying the applied field frequency. © The Royal Society of Chemistry.
引用
收藏
页码:88 / 100
页数:12
相关论文
共 50 条
  • [31] Enabling complex nanoscale pattern customization using directed self-assembly
    Doerk, Gregory S.
    Cheng, Joy Y.
    Singh, Gurpreet
    Rettner, Charles T.
    Pitera, Jed W.
    Balakrishnan, Srinivasan
    Arellano, Noel
    Sanders, Daniel P.
    NATURE COMMUNICATIONS, 2014, 5
  • [32] Friction-directed self-assembly of Janus lithographic microgels into anisotropic 2D structures
    Kodakkadan, Yadu Nath Vakkipurath
    Maslen, Charlie
    Cigler, Petr
    Stepanek, Frantisek
    Rehor, Ivan
    JOURNAL OF MATERIALS CHEMISTRY B, 2021, 9 (23) : 4718 - 4725
  • [33] An Expanded State Diagram for the Directed Self-Assembly of Colloidal Suspensions in Toggled Fields
    Kim, Hojin
    Sau, Moujhuri
    Furst, Eric M.
    LANGMUIR, 2020, 36 (33) : 9926 - 9934
  • [34] Directed self-assembly of spherical particles on patterned electrodes by an applied electric field
    Winkleman, A
    Gates, BD
    McCarty, LS
    Whitesides, GM
    ADVANCED MATERIALS, 2005, 17 (12) : 1507 - 1511
  • [35] Electric Field Directed Self-Assembly of Cuprous Oxide Nanostructures for Photon Sensing
    Sahoo, Sangeeta
    Husale, Sudhir
    Colwill, Bryant
    Lu, Toh-Ming
    Nayak, Saroj
    Ajayan, Pulickel M.
    ACS NANO, 2009, 3 (12) : 3935 - 3944
  • [36] Directed Self-Assembly: Expectations and Achievements
    Kumar, Prashant
    NANOSCALE RESEARCH LETTERS, 2010, 5 (09): : 1367 - 1376
  • [37] Directed self-assembly for advanced chips
    Pan, David Z.
    NATURE ELECTRONICS, 2018, 1 (10): : 530 - 531
  • [38] Electrochemically directed self-assembly on gold
    Hsueh, CC
    Lee, MT
    Freund, MS
    Ferguson, GS
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2000, 39 (07) : 1228 - +
  • [39] Directed Self-Assembly: Expectations and Achievements
    Prashant Kumar
    Nanoscale Research Letters, 5
  • [40] Inspection of Directed Self-Assembly Defects
    Ito, Chikashi
    Durant, Stephane
    Lange, Steve
    Harukawa, Ryota
    Miyagi, Takemasa
    Nagaswami, Venkat
    Delgadillo, Paulina Rincon
    Gronheid, Roel
    Nealey, Paul
    ALTERNATIVE LITHOGRAPHIC TECHNOLOGIES VI, 2014, 9049