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Collective guiding of acoustically propelled nano- and microparticles

Nitschke, Tobias ; Stenhammar, Joakim LU and Wittkowski, Raphael (2022) In Nanoscale Advances 4(13). p.2844-2856
Abstract

One of the most important potential applications of motile nano- and microdevices is targeted drug delivery. To realize this, biocompatible particles that can be guided collectively towards a target inside a patient's body are required. Acoustically propelled nano- and microparticles constitute a promising candidate for such biocompatible, artificial motile particles. The main remaining obstacle to targeted drug delivery by motile nano- and microdevices is to also achieve a reliable and biocompatible method for guiding them collectively to their target. Here, we propose such a method. As we confirm by computer simulations, it allows for the remote guiding of large numbers of acoustically propelled particles to a prescribed target by... (More)

One of the most important potential applications of motile nano- and microdevices is targeted drug delivery. To realize this, biocompatible particles that can be guided collectively towards a target inside a patient's body are required. Acoustically propelled nano- and microparticles constitute a promising candidate for such biocompatible, artificial motile particles. The main remaining obstacle to targeted drug delivery by motile nano- and microdevices is to also achieve a reliable and biocompatible method for guiding them collectively to their target. Here, we propose such a method. As we confirm by computer simulations, it allows for the remote guiding of large numbers of acoustically propelled particles to a prescribed target by combining a space- and time-dependent acoustic field and a time-dependent magnetic field. The method works without detailed knowledge about the particle positions and for arbitrary initial particle distributions. With these features, it paves the way for the future application of motile particles as vehicles for targeted drug delivery in nanomedicine.

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author
; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
in
Nanoscale Advances
volume
4
issue
13
pages
13 pages
publisher
Royal Society of Chemistry
external identifiers
  • scopus:85131967097
  • pmid:36132012
ISSN
2516-0230
DOI
10.1039/d2na00007e
language
English
LU publication?
yes
id
6dfc6a2d-83ad-4757-9579-7a0db95835f1
date added to LUP
2022-09-05 08:50:43
date last changed
2024-04-18 13:33:05
@article{6dfc6a2d-83ad-4757-9579-7a0db95835f1,
  abstract     = {{<p>One of the most important potential applications of motile nano- and microdevices is targeted drug delivery. To realize this, biocompatible particles that can be guided collectively towards a target inside a patient's body are required. Acoustically propelled nano- and microparticles constitute a promising candidate for such biocompatible, artificial motile particles. The main remaining obstacle to targeted drug delivery by motile nano- and microdevices is to also achieve a reliable and biocompatible method for guiding them collectively to their target. Here, we propose such a method. As we confirm by computer simulations, it allows for the remote guiding of large numbers of acoustically propelled particles to a prescribed target by combining a space- and time-dependent acoustic field and a time-dependent magnetic field. The method works without detailed knowledge about the particle positions and for arbitrary initial particle distributions. With these features, it paves the way for the future application of motile particles as vehicles for targeted drug delivery in nanomedicine.</p>}},
  author       = {{Nitschke, Tobias and Stenhammar, Joakim and Wittkowski, Raphael}},
  issn         = {{2516-0230}},
  language     = {{eng}},
  month        = {{05}},
  number       = {{13}},
  pages        = {{2844--2856}},
  publisher    = {{Royal Society of Chemistry}},
  series       = {{Nanoscale Advances}},
  title        = {{Collective guiding of acoustically propelled nano- and microparticles}},
  url          = {{http://dx.doi.org/10.1039/d2na00007e}},
  doi          = {{10.1039/d2na00007e}},
  volume       = {{4}},
  year         = {{2022}},
}