Flow Cell Coupled Dynamic Light Scattering for Real-Time Monitoring of Nanoparticle Size during Liquid Phase Bottom-Up Synthesis

To tailor the properties of nanoparticles and nanocomposites, precise control over particle size is of vital importance. Real-time monitoring of particle size during bottom-up synthesis in liquids would allow a detailed study of particle nucleation and growth, which provides valuable insights in the...

Full description

Bibliographic Details
Main Authors: Nicole Meulendijks, Renz van Ee, Ralph Stevens, Maurice Mourad, Marcel Verheijen, Nils Kambly, Ricardo Armenta, Pascal Buskens
Format: Article
Language:English
Published: MDPI AG 2018-01-01
Series:Applied Sciences
Subjects:
Online Access:http://www.mdpi.com/2076-3417/8/1/108
id doaj-e5cfd19b53b54666b042cc8346a12cba
record_format Article
spelling doaj-e5cfd19b53b54666b042cc8346a12cba2020-11-24T21:17:56ZengMDPI AGApplied Sciences2076-34172018-01-018110810.3390/app8010108app8010108Flow Cell Coupled Dynamic Light Scattering for Real-Time Monitoring of Nanoparticle Size during Liquid Phase Bottom-Up SynthesisNicole Meulendijks0Renz van Ee1Ralph Stevens2Maurice Mourad3Marcel Verheijen4Nils Kambly5Ricardo Armenta6Pascal Buskens7The Netherlands Organisation for Applied Scientific Research (TNO), De Rondom 1, 5612 AP Eindhoven, The NetherlandsThe Netherlands Organisation for Applied Scientific Research (TNO), De Rondom 1, 5612 AP Eindhoven, The NetherlandsThe Netherlands Organisation for Applied Scientific Research (TNO), De Rondom 1, 5612 AP Eindhoven, The NetherlandsThe Netherlands Organisation for Applied Scientific Research (TNO), De Rondom 1, 5612 AP Eindhoven, The NetherlandsPhilips Innovation Labs, High Tech Campus 11, 5656 AE Eindhoven, The NetherlandsLS Instruments AG, Passage du Cardinal 1, CH-1700 Fribourg, SwitzerlandLS Instruments AG, Passage du Cardinal 1, CH-1700 Fribourg, SwitzerlandThe Netherlands Organisation for Applied Scientific Research (TNO), De Rondom 1, 5612 AP Eindhoven, The NetherlandsTo tailor the properties of nanoparticles and nanocomposites, precise control over particle size is of vital importance. Real-time monitoring of particle size during bottom-up synthesis in liquids would allow a detailed study of particle nucleation and growth, which provides valuable insights in the mechanism of formation of the nanoparticles. Furthermore, it facilitates a rational scale-up, and would enable adequate intervention in the production process of nanoparticle dispersions to minimize the number of off-spec batches. Since real-time monitoring requires particle size measurements on dispersions in flow, conventional dynamic light scattering (DLS) techniques are not suited: they rely on single scattering and measure the Brownian motion of particles dispersed in a liquid. Here, we present a set-up that allows accurate measurements in real-time on flowing dispersions using a DLS technique based on modulated 3D cross-correlation. This technique uses two simultaneous light scattering experiments performed at the same scattering vector on the same sample volume in order to extract only the single scattering information common to both. We connected the reactor to a flow-cell in the DLS equipment using a tailor-made analysis loop, and successfully demonstrated the complete set-up through monitoring of the size of spherical silica nanoparticles during Stöber synthesis in a water-alcohol mixture starting from the molecular precursor tetraethyl orthosilicate.http://www.mdpi.com/2076-3417/8/1/108dynamic light scattering3D cross correlationreal-time analysiscolloidsnanoparticle synthesis
collection DOAJ
language English
format Article
sources DOAJ
author Nicole Meulendijks
Renz van Ee
Ralph Stevens
Maurice Mourad
Marcel Verheijen
Nils Kambly
Ricardo Armenta
Pascal Buskens
spellingShingle Nicole Meulendijks
Renz van Ee
Ralph Stevens
Maurice Mourad
Marcel Verheijen
Nils Kambly
Ricardo Armenta
Pascal Buskens
Flow Cell Coupled Dynamic Light Scattering for Real-Time Monitoring of Nanoparticle Size during Liquid Phase Bottom-Up Synthesis
Applied Sciences
dynamic light scattering
3D cross correlation
real-time analysis
colloids
nanoparticle synthesis
author_facet Nicole Meulendijks
Renz van Ee
Ralph Stevens
Maurice Mourad
Marcel Verheijen
Nils Kambly
Ricardo Armenta
Pascal Buskens
author_sort Nicole Meulendijks
title Flow Cell Coupled Dynamic Light Scattering for Real-Time Monitoring of Nanoparticle Size during Liquid Phase Bottom-Up Synthesis
title_short Flow Cell Coupled Dynamic Light Scattering for Real-Time Monitoring of Nanoparticle Size during Liquid Phase Bottom-Up Synthesis
title_full Flow Cell Coupled Dynamic Light Scattering for Real-Time Monitoring of Nanoparticle Size during Liquid Phase Bottom-Up Synthesis
title_fullStr Flow Cell Coupled Dynamic Light Scattering for Real-Time Monitoring of Nanoparticle Size during Liquid Phase Bottom-Up Synthesis
title_full_unstemmed Flow Cell Coupled Dynamic Light Scattering for Real-Time Monitoring of Nanoparticle Size during Liquid Phase Bottom-Up Synthesis
title_sort flow cell coupled dynamic light scattering for real-time monitoring of nanoparticle size during liquid phase bottom-up synthesis
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2018-01-01
description To tailor the properties of nanoparticles and nanocomposites, precise control over particle size is of vital importance. Real-time monitoring of particle size during bottom-up synthesis in liquids would allow a detailed study of particle nucleation and growth, which provides valuable insights in the mechanism of formation of the nanoparticles. Furthermore, it facilitates a rational scale-up, and would enable adequate intervention in the production process of nanoparticle dispersions to minimize the number of off-spec batches. Since real-time monitoring requires particle size measurements on dispersions in flow, conventional dynamic light scattering (DLS) techniques are not suited: they rely on single scattering and measure the Brownian motion of particles dispersed in a liquid. Here, we present a set-up that allows accurate measurements in real-time on flowing dispersions using a DLS technique based on modulated 3D cross-correlation. This technique uses two simultaneous light scattering experiments performed at the same scattering vector on the same sample volume in order to extract only the single scattering information common to both. We connected the reactor to a flow-cell in the DLS equipment using a tailor-made analysis loop, and successfully demonstrated the complete set-up through monitoring of the size of spherical silica nanoparticles during Stöber synthesis in a water-alcohol mixture starting from the molecular precursor tetraethyl orthosilicate.
topic dynamic light scattering
3D cross correlation
real-time analysis
colloids
nanoparticle synthesis
url http://www.mdpi.com/2076-3417/8/1/108
work_keys_str_mv AT nicolemeulendijks flowcellcoupleddynamiclightscatteringforrealtimemonitoringofnanoparticlesizeduringliquidphasebottomupsynthesis
AT renzvanee flowcellcoupleddynamiclightscatteringforrealtimemonitoringofnanoparticlesizeduringliquidphasebottomupsynthesis
AT ralphstevens flowcellcoupleddynamiclightscatteringforrealtimemonitoringofnanoparticlesizeduringliquidphasebottomupsynthesis
AT mauricemourad flowcellcoupleddynamiclightscatteringforrealtimemonitoringofnanoparticlesizeduringliquidphasebottomupsynthesis
AT marcelverheijen flowcellcoupleddynamiclightscatteringforrealtimemonitoringofnanoparticlesizeduringliquidphasebottomupsynthesis
AT nilskambly flowcellcoupleddynamiclightscatteringforrealtimemonitoringofnanoparticlesizeduringliquidphasebottomupsynthesis
AT ricardoarmenta flowcellcoupleddynamiclightscatteringforrealtimemonitoringofnanoparticlesizeduringliquidphasebottomupsynthesis
AT pascalbuskens flowcellcoupleddynamiclightscatteringforrealtimemonitoringofnanoparticlesizeduringliquidphasebottomupsynthesis
_version_ 1726011380410089472