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Enhanced Accumulation of Colloidal Particles in Microgrooved Channels via Diffusiophoresis and Steady-State Electrolyte Flows

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Enhanced Accumulation of Colloidal Particles in Microgrooved Channels via Diffusiophoresis and Steady-State Electrolyte Flows. / Singh, Naval; Vladisavljević, Goran T.; Nadal, François et al.
In: Langmuir, Vol. 38, No. 46, 22.11.2022, p. 14053-14062.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Singh, N, Vladisavljević, GT, Nadal, F, Cottin-Bizonne, C, Pirat, C & Bolognesi, G 2022, 'Enhanced Accumulation of Colloidal Particles in Microgrooved Channels via Diffusiophoresis and Steady-State Electrolyte Flows', Langmuir, vol. 38, no. 46, pp. 14053-14062. https://doi.org/10.1021/acs.langmuir.2c01755

APA

Singh, N., Vladisavljević, G. T., Nadal, F., Cottin-Bizonne, C., Pirat, C., & Bolognesi, G. (2022). Enhanced Accumulation of Colloidal Particles in Microgrooved Channels via Diffusiophoresis and Steady-State Electrolyte Flows. Langmuir, 38(46), 14053-14062. https://doi.org/10.1021/acs.langmuir.2c01755

Vancouver

Singh N, Vladisavljević GT, Nadal F, Cottin-Bizonne C, Pirat C, Bolognesi G. Enhanced Accumulation of Colloidal Particles in Microgrooved Channels via Diffusiophoresis and Steady-State Electrolyte Flows. Langmuir. 2022 Nov 22;38(46):14053-14062. Epub 2022 Nov 9. doi: 10.1021/acs.langmuir.2c01755

Author

Singh, Naval ; Vladisavljević, Goran T. ; Nadal, François et al. / Enhanced Accumulation of Colloidal Particles in Microgrooved Channels via Diffusiophoresis and Steady-State Electrolyte Flows. In: Langmuir. 2022 ; Vol. 38, No. 46. pp. 14053-14062.

Bibtex

@article{ade1ff2ce4a7494a9b8bffc41119eacf,
title = "Enhanced Accumulation of Colloidal Particles in Microgrooved Channels via Diffusiophoresis and Steady-State Electrolyte Flows",
abstract = "The delivery of colloidal particles in dead-end microstructures is very challenging, since these geometries do not allow net flows of particle-laden fluids; meanwhile, diffusive transport is slow and inefficient. Recently, we introduced a novel particle manipulation strategy, based on diffusiophoresis, whereby the salt concentration gradient between parallel electrolyte streams in a microgrooved channel induces the rapid (i.e., within minutes) and reversible accumulation, retention, and removal of colloidal particles in the microgrooves. In this study, we investigated the effects of salt contrast and groove depth on the accumulation process in silicon microgrooves and determined the experimental conditions that lead to a particle concentration peak of more than four times the concentration in the channel bulk. Also, we achieved an average particle concentration in the grooves of more than twice the concentration in the flowing streams and almost 2 orders of magnitude larger than the average concentration in the grooves in the absence of a salt concentration gradient. Analytical sufficient and necessary conditions for particle accumulation are also derived. Finally, we successfully tested the accumulation process in polydimethylsiloxane microgrooved channels, as they are less expensive to fabricate than silicon microgrooved substrates. The controlled and enhanced accumulation of colloidal particles in dead-end structures by solute concentration gradients has potential applications in soft matter and living systems, such as drug delivery, synthetic biology, and on-chip diagnostics.",
author = "Naval Singh and Vladisavljevi{\'c}, {Goran T.} and Fran{\c c}ois Nadal and C{\'e}cile Cottin-Bizonne and Christophe Pirat and Guido Bolognesi",
year = "2022",
month = nov,
day = "22",
doi = "10.1021/acs.langmuir.2c01755",
language = "English",
volume = "38",
pages = "14053--14062",
journal = "Langmuir",
issn = "0743-7463",
publisher = "AMER CHEMICAL SOC",
number = "46",

}

RIS

TY - JOUR

T1 - Enhanced Accumulation of Colloidal Particles in Microgrooved Channels via Diffusiophoresis and Steady-State Electrolyte Flows

AU - Singh, Naval

AU - Vladisavljević, Goran T.

AU - Nadal, François

AU - Cottin-Bizonne, Cécile

AU - Pirat, Christophe

AU - Bolognesi, Guido

PY - 2022/11/22

Y1 - 2022/11/22

N2 - The delivery of colloidal particles in dead-end microstructures is very challenging, since these geometries do not allow net flows of particle-laden fluids; meanwhile, diffusive transport is slow and inefficient. Recently, we introduced a novel particle manipulation strategy, based on diffusiophoresis, whereby the salt concentration gradient between parallel electrolyte streams in a microgrooved channel induces the rapid (i.e., within minutes) and reversible accumulation, retention, and removal of colloidal particles in the microgrooves. In this study, we investigated the effects of salt contrast and groove depth on the accumulation process in silicon microgrooves and determined the experimental conditions that lead to a particle concentration peak of more than four times the concentration in the channel bulk. Also, we achieved an average particle concentration in the grooves of more than twice the concentration in the flowing streams and almost 2 orders of magnitude larger than the average concentration in the grooves in the absence of a salt concentration gradient. Analytical sufficient and necessary conditions for particle accumulation are also derived. Finally, we successfully tested the accumulation process in polydimethylsiloxane microgrooved channels, as they are less expensive to fabricate than silicon microgrooved substrates. The controlled and enhanced accumulation of colloidal particles in dead-end structures by solute concentration gradients has potential applications in soft matter and living systems, such as drug delivery, synthetic biology, and on-chip diagnostics.

AB - The delivery of colloidal particles in dead-end microstructures is very challenging, since these geometries do not allow net flows of particle-laden fluids; meanwhile, diffusive transport is slow and inefficient. Recently, we introduced a novel particle manipulation strategy, based on diffusiophoresis, whereby the salt concentration gradient between parallel electrolyte streams in a microgrooved channel induces the rapid (i.e., within minutes) and reversible accumulation, retention, and removal of colloidal particles in the microgrooves. In this study, we investigated the effects of salt contrast and groove depth on the accumulation process in silicon microgrooves and determined the experimental conditions that lead to a particle concentration peak of more than four times the concentration in the channel bulk. Also, we achieved an average particle concentration in the grooves of more than twice the concentration in the flowing streams and almost 2 orders of magnitude larger than the average concentration in the grooves in the absence of a salt concentration gradient. Analytical sufficient and necessary conditions for particle accumulation are also derived. Finally, we successfully tested the accumulation process in polydimethylsiloxane microgrooved channels, as they are less expensive to fabricate than silicon microgrooved substrates. The controlled and enhanced accumulation of colloidal particles in dead-end structures by solute concentration gradients has potential applications in soft matter and living systems, such as drug delivery, synthetic biology, and on-chip diagnostics.

U2 - 10.1021/acs.langmuir.2c01755

DO - 10.1021/acs.langmuir.2c01755

M3 - Journal article

VL - 38

SP - 14053

EP - 14062

JO - Langmuir

JF - Langmuir

SN - 0743-7463

IS - 46

ER -