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Charge-based separation of micro-and nanoparticles

Ho, Bao D. LU ; Beech, Jason P. LU and Tegenfeldt, Jonas O. LU orcid (2020) In Micromachines 11(11).
Abstract

Deterministic Lateral Displacement (DLD) is a label-free particle sorting method that separates by size continuously and with high resolution. By combining DLD with electric fields (eDLD), we show separation of a variety of nano and micro-sized particles primarily by their zeta potential. Zeta potential is an indicator of electrokinetic charge—the charge corresponding to the electric field at the shear plane—an important property of micro-and nanoparticles in colloidal or separation science. We also demonstrate proof of principle of separation of nanoscale liposomes of different lipid compositions, with strong relevance for biomedicine. We perform careful characterization of relevant experimental conditions necessary to obtain adequate... (More)

Deterministic Lateral Displacement (DLD) is a label-free particle sorting method that separates by size continuously and with high resolution. By combining DLD with electric fields (eDLD), we show separation of a variety of nano and micro-sized particles primarily by their zeta potential. Zeta potential is an indicator of electrokinetic charge—the charge corresponding to the electric field at the shear plane—an important property of micro-and nanoparticles in colloidal or separation science. We also demonstrate proof of principle of separation of nanoscale liposomes of different lipid compositions, with strong relevance for biomedicine. We perform careful characterization of relevant experimental conditions necessary to obtain adequate sorting of different particle types. By choosing a combination of frequency and amplitude, sorting can be made sensitive to the particle subgroup of interest. The enhanced displacement effect due to electrokinetics is found to be significant at low frequency and for particles with high zeta potential. The effect appears to scale with the square of the voltage, suggesting that it is associated with either non-linear electrokinetics or dielectrophoresis (DEP). However, since we observe large changes in separation behavior over the frequency range at which DEP forces are expected to remain constant, DEP can be ruled out.

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organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Charge-based separation, Electrokinetic deterministic lateral displacement
in
Micromachines
volume
11
issue
11
article number
1014
publisher
MDPI AG
external identifiers
  • scopus:85097499893
  • pmid:33218201
ISSN
2072-666X
DOI
10.3390/mi11111014
language
English
LU publication?
yes
id
b8873cec-c514-443c-a8aa-88793719c8e9
date added to LUP
2020-12-22 10:12:37
date last changed
2024-05-31 04:39:13
@article{b8873cec-c514-443c-a8aa-88793719c8e9,
  abstract     = {{<p>Deterministic Lateral Displacement (DLD) is a label-free particle sorting method that separates by size continuously and with high resolution. By combining DLD with electric fields (eDLD), we show separation of a variety of nano and micro-sized particles primarily by their zeta potential. Zeta potential is an indicator of electrokinetic charge—the charge corresponding to the electric field at the shear plane—an important property of micro-and nanoparticles in colloidal or separation science. We also demonstrate proof of principle of separation of nanoscale liposomes of different lipid compositions, with strong relevance for biomedicine. We perform careful characterization of relevant experimental conditions necessary to obtain adequate sorting of different particle types. By choosing a combination of frequency and amplitude, sorting can be made sensitive to the particle subgroup of interest. The enhanced displacement effect due to electrokinetics is found to be significant at low frequency and for particles with high zeta potential. The effect appears to scale with the square of the voltage, suggesting that it is associated with either non-linear electrokinetics or dielectrophoresis (DEP). However, since we observe large changes in separation behavior over the frequency range at which DEP forces are expected to remain constant, DEP can be ruled out.</p>}},
  author       = {{Ho, Bao D. and Beech, Jason P. and Tegenfeldt, Jonas O.}},
  issn         = {{2072-666X}},
  keywords     = {{Charge-based separation; Electrokinetic deterministic lateral displacement}},
  language     = {{eng}},
  number       = {{11}},
  publisher    = {{MDPI AG}},
  series       = {{Micromachines}},
  title        = {{Charge-based separation of micro-and nanoparticles}},
  url          = {{http://dx.doi.org/10.3390/mi11111014}},
  doi          = {{10.3390/mi11111014}},
  volume       = {{11}},
  year         = {{2020}},
}