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Controlling the rotation modes of hematite nanospindles using dynamic magnetic fields

The magnetic field-induced actuation of colloidal nanoparticles has enabled tremendous recent progress towards microrobots, suitable for a variety of applications including targeted drug delivery, environmental remediation, or minimally invasive surgery. Further size reduction to the nanoscale requi...

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Autores principales: Honecker, Dirk, Bender, Philipp, Falke, Yannic, Dresen, Dominique, Kundt, Matthias, Schmidt, Annette M., Tschöpe, Andreas, Sztucki, Michael, Burghammer, Manfred, Disch, Sabrina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9595103/
https://www.ncbi.nlm.nih.gov/pubmed/36341302
http://dx.doi.org/10.1039/d2na00522k
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author Honecker, Dirk
Bender, Philipp
Falke, Yannic
Dresen, Dominique
Kundt, Matthias
Schmidt, Annette M.
Tschöpe, Andreas
Sztucki, Michael
Burghammer, Manfred
Disch, Sabrina
author_facet Honecker, Dirk
Bender, Philipp
Falke, Yannic
Dresen, Dominique
Kundt, Matthias
Schmidt, Annette M.
Tschöpe, Andreas
Sztucki, Michael
Burghammer, Manfred
Disch, Sabrina
author_sort Honecker, Dirk
collection PubMed
description The magnetic field-induced actuation of colloidal nanoparticles has enabled tremendous recent progress towards microrobots, suitable for a variety of applications including targeted drug delivery, environmental remediation, or minimally invasive surgery. Further size reduction to the nanoscale requires enhanced control of orientation and locomotion to overcome dominating viscous properties. Here, control of the coherent precession of hematite spindles via a dynamic magnetic field is demonstrated using nanoscale particles. Time-resolved small-angle scattering and optical transmission measurements reveal a clear frequency-dependent variation of orientation and rotation of an entire ensemble of non-interacting hematite nanospindles. The different motion mechanisms by nanoscale spindles in bulk dispersion resemble modes that have been observed for much larger, micron-sized elongated particles near surfaces. The dynamic rotation modes promise hematite nanospindles as a suitable model system for field-induced locomotion in nanoscale magnetic robots.
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spelling pubmed-95951032022-11-04 Controlling the rotation modes of hematite nanospindles using dynamic magnetic fields Honecker, Dirk Bender, Philipp Falke, Yannic Dresen, Dominique Kundt, Matthias Schmidt, Annette M. Tschöpe, Andreas Sztucki, Michael Burghammer, Manfred Disch, Sabrina Nanoscale Adv Chemistry The magnetic field-induced actuation of colloidal nanoparticles has enabled tremendous recent progress towards microrobots, suitable for a variety of applications including targeted drug delivery, environmental remediation, or minimally invasive surgery. Further size reduction to the nanoscale requires enhanced control of orientation and locomotion to overcome dominating viscous properties. Here, control of the coherent precession of hematite spindles via a dynamic magnetic field is demonstrated using nanoscale particles. Time-resolved small-angle scattering and optical transmission measurements reveal a clear frequency-dependent variation of orientation and rotation of an entire ensemble of non-interacting hematite nanospindles. The different motion mechanisms by nanoscale spindles in bulk dispersion resemble modes that have been observed for much larger, micron-sized elongated particles near surfaces. The dynamic rotation modes promise hematite nanospindles as a suitable model system for field-induced locomotion in nanoscale magnetic robots. RSC 2022-09-14 /pmc/articles/PMC9595103/ /pubmed/36341302 http://dx.doi.org/10.1039/d2na00522k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Honecker, Dirk
Bender, Philipp
Falke, Yannic
Dresen, Dominique
Kundt, Matthias
Schmidt, Annette M.
Tschöpe, Andreas
Sztucki, Michael
Burghammer, Manfred
Disch, Sabrina
Controlling the rotation modes of hematite nanospindles using dynamic magnetic fields
title Controlling the rotation modes of hematite nanospindles using dynamic magnetic fields
title_full Controlling the rotation modes of hematite nanospindles using dynamic magnetic fields
title_fullStr Controlling the rotation modes of hematite nanospindles using dynamic magnetic fields
title_full_unstemmed Controlling the rotation modes of hematite nanospindles using dynamic magnetic fields
title_short Controlling the rotation modes of hematite nanospindles using dynamic magnetic fields
title_sort controlling the rotation modes of hematite nanospindles using dynamic magnetic fields
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9595103/
https://www.ncbi.nlm.nih.gov/pubmed/36341302
http://dx.doi.org/10.1039/d2na00522k
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