4.8 Article

Programmable Stepwise Collective Magnetic Self-Assembly of Micropillar Arrays

Journal

ACS NANO
Volume 16, Issue 2, Pages 3152-3162

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c10844

Keywords

magnetic composites; micro arrays; soft actuators; self-assembly; stimuli-responsive polymers

Funding

  1. AOARD - U.S. government (AFOSR/AOARD) [FA2386-18-1-4104, FA2386-18-1-4103]
  2. NRF [NRF-2019M3D1A2103919]
  3. U.S Department of Energy [DE-AC52-07NA27344]
  4. National Research Foundation of Korea [2019M3D1A2103919] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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In this study, a stepwise collective magnetic self-assembly method using periodic polymeric micropillar arrays is reported. The magnetic polarities of the micropillars are arranged by an external magnetic field, and long-range connectivity is achieved by increasing the magnetic flux density. The effects of geometric shape and spatial selectivity on magnetic self-assembly are also investigated.
Chain-like magnetic self-organizations have been documented for micron/submicron-scale magnetic particles. However, the positions of the particles are not stationary in a sustaining fluid owing to Brownian translational motion, resulting in irregular magnetic self-assembly. Toward the development of a programmable and reversible magnetic self-assembly, we report a stepwise collective magnetic self-assembly with periodic polymeric micropillar arrays containing magnetic particles. Under an external magnetic field, the individual micropillar acts as a micromagnet; magnetic polarities of embedded ferromagnetic particles are arranged in the same direction. The nearest pillar tops undergo a pairwise assembly owing to the anisotropic quadrupolar interaction, whereas the pillar bases remain stationary because of the presence of a magnetically inert substrate. By increasing the magnetic flux density, a collective quad-body assembly of vicinal paired micropillars is accomplished, finally leading to long-range connectivity of the pillar tops. Simple evaporation of the polymeric solution yields shape-fixation of the connected micropillar architectures even after magnetic fields are removed. We investigate geometric effects on this stepwise collective magnetic self-assembly using rectangular, square, and circular micropillars. Also, we demonstrate spatially selective magnetic self-assembly (e.g., arbitrary letters) using a masking technique. Finally, we demonstrate on-demand programming of bidirectional liquid spreading through long-range ordered magnetic self-assembly.

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