English

Colloidal Joints with Designed Motion Range and Tunable Joint Flexibility

Soft Condensed Matter 2016-10-14 v1 Mesoscale and Nanoscale Physics

Abstract

The miniaturization of machines towards the micron and nanoscales requires the development of joint-like elements that enable and constrain motion. We present a facile method to create colloidal joints, that is, anisotropic colloidal particles containing surface mobile DNA linkers that control the motion range of bonded particles. We demonstrate quantitatively that we can control the flexibility of these colloidal joints by tuning the DNA linker concentration in the bond area. We show that the colloidal shape controls the range of motion that these colloidal joints enable, due to the finite-sized patch of bonded linkers that cannot cross regions of high curvature. Finally we demonstrate the potential of the colloidal joints for programmable bottom-up self-assembly by creating flexible colloidal molecules and colloidal polymers. The reconfigurability and motion constraint offered by our colloidal joints make them promising building blocks for the development of switchable materials and nanorobots.

Keywords

Cite

@article{arxiv.1610.04018,
  title  = {Colloidal Joints with Designed Motion Range and Tunable Joint Flexibility},
  author = {Indrani Chakraborty and Vera Meester and Casper van der Wel and Daniela J Kraft},
  journal= {arXiv preprint arXiv:1610.04018},
  year   = {2016}
}
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