Literature DB >> 25221433

Measuring the Soret coefficient of nanoparticles in a dilute suspension.

Chao Zhao1, Jinxin Fu2, Alparslan Oztekin3, Xuanhong Cheng1.   

Abstract

Thermophoresis is an efficient process for the manipulation of molecules and nanoparticles due to the strong force it generates on the nanoscale. Thermophoresis is characterized by the Soret coefficient. Conventionally, the Soret coefficient of nanosized species is obtained by fitting the concentration profile under a temperature gradient at the steady state to a continuous phase model. However, when the number density of the target is ultralow and the dispersed species cannot be treated as a continuous phase, the bulk concentration fluctuates spatially, preventing extraction of temperature-gradient induced concentration profile. The present work demonstrates a strategy to tackle this problem by superimposing snapshots of nanoparticle distribution. The resulting image is suitable for the extraction of the Soret coefficient through the conventional data fitting method. The strategy is first tested through a discrete phase model that illustrates the spatial fluctuation of the nanoparticle concentration in a dilute suspension in response to the temperature gradient. By superimposing snapshots of the stochastic distribution, a thermophoretic depletion profile with low standard error is constructed, indicative of the Soret coefficient. Next, confocal analysis of nanoparticle distribution in response to a temperature gradient is performed using polystyrene nanobeads down to 1e-5% (v/v). The experimental results also reveal that superimposing enhances the accuracy of extracted Soret coefficient. The critical particle number density in the superimposed image for predicting the Soret coefficient is hypothesized to depend on the spatial resolution of the image. This study also demonstrates that the discrete phase model is an effective tool to study particle migration under thermophoresis in the liquid phase.

Entities:  

Keywords:  Soret coefficient; discrete phase model; nanoparticles; thermophoresis

Year:  2014        PMID: 25221433      PMCID: PMC4160128          DOI: 10.1007/s11051-014-2625-6

Source DB:  PubMed          Journal:  J Nanopart Res        ISSN: 1388-0764            Impact factor:   2.253


  12 in total

1.  Colloid transport in nonuniform temperature.

Authors:  E Bringuier; A Bourdon
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2003-01-29

2.  Thermophoresis of dissolved molecules and polymers: Consideration of the temperature-induced macroscopic pressure gradient.

Authors:  Semen Semenov; Martin Schimpf
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2004-01-30

3.  Protein-binding assays in biological liquids using microscale thermophoresis.

Authors:  Christoph J Wienken; Philipp Baaske; Ulrich Rothbauer; Dieter Braun; Stefan Duhr
Journal:  Nat Commun       Date:  2010-10-19       Impact factor: 14.919

4.  Thermophoresis of DNA determined by microfluidic fluorescence.

Authors:  S Duhr; S Arduini; D Braun
Journal:  Eur Phys J E Soft Matter       Date:  2004-11-17       Impact factor: 1.890

Review 5.  Optothermal molecule trapping by opposing fluid flow with thermophoretic drift.

Authors:  Stefan Duhr; Dieter Braun
Journal:  Phys Rev Lett       Date:  2006-07-21       Impact factor: 9.161

6.  Extreme accumulation of nucleotides in simulated hydrothermal pore systems.

Authors:  Philipp Baaske; Franz M Weinert; Stefan Duhr; Kono H Lemke; Michael J Russell; Dieter Braun
Journal:  Proc Natl Acad Sci U S A       Date:  2007-05-09       Impact factor: 11.205

7.  Manipulation of colloids by a nonequilibrium depletion force in a temperature gradient.

Authors:  Hong-Ren Jiang; Hirofumi Wada; Natsuhiko Yoshinaga; Masaki Sano
Journal:  Phys Rev Lett       Date:  2009-05-20       Impact factor: 9.161

8.  Gravity-induced swirl of nanoparticles in microfluidics.

Authors:  Chao Zhao; Alparslan Oztekin; Xuanhong Cheng
Journal:  J Nanopart Res       Date:  2013-04-01       Impact factor: 2.253

9.  Effects of long DNA folding and small RNA stem-loop in thermophoresis.

Authors:  Yusuke T Maeda; Tsvi Tlusty; Albert Libchaber
Journal:  Proc Natl Acad Sci U S A       Date:  2012-10-15       Impact factor: 11.205

10.  Formation of protocell-like vesicles in a thermal diffusion column.

Authors:  Itay Budin; Raphael J Bruckner; Jack W Szostak
Journal:  J Am Chem Soc       Date:  2009-07-22       Impact factor: 15.419

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  1 in total

1.  Consensus protein engineering on the thermostable histone-like bacterial protein HUs significantly improves stability and DNA binding affinity.

Authors:  Anastasios Georgoulis; Maria Louka; Stratos Mylonas; Philemon Stavros; George Nounesis; Constantinos E Vorgias
Journal:  Extremophiles       Date:  2020-01-24       Impact factor: 2.395

  1 in total

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