4.8 Article

Optimization of Chiral Structures for Microscale Propulsion

Journal

NANO LETTERS
Volume 13, Issue 2, Pages 531-537

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nl3040477

Keywords

Microswimmers; shape optimization; chiral; microfluidics; fluid-structure interaction; simulation

Funding

  1. Department of Energy grant [FG02-88ER25053]
  2. National Science Foundation grants [DMS-0700669, DMS-0920930, DMS-1115636]
  3. MRSEC program [DMR-0820341]
  4. Division Of Mathematical Sciences
  5. Direct For Mathematical & Physical Scien [1115636] Funding Source: National Science Foundation

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Recent advances in micro- and nanoscale fabrication techniques allow for the construction of rigid, helically shaped microswimmers that can be actuated using applied magnetic fields. These swimmers represent the first steps toward the development of microrobots for targeted drug delivery and minimally invasive surgical procedures. To assess the performance of these devices and improve on their design, we perform shape optimization computations to determine swimmer geometries that maximize speed in the direction of a given applied magnetic torque. We directly assess aspects of swimmer shapes that have been developed in previous experimental studies, including helical propellers with elongated cross sections and attached payloads. From these optimizations, we identify key improvements to existing designs that result in swimming speeds that are 70-470% of their original values.

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