Cargando…

X-ray Absorption Spectroscopy as a Process Analytical Technology: Reaction Studies for the Manufacture of Sulfonate-Stabilized Calcium Carbonate Particles

[Image: see text] Process analytical technologies are widely used to inform process control by identifying relationships between reagents and products. Here, we present a novel process analytical technology system for operando XAS on multiphase multicomponent synthesis processes based on the combina...

Descripción completa

Detalles Bibliográficos
Autores principales: Kathyola, Thokozile A., Chang, Sin-Yuen, Willneff, Elizabeth A., Willis, Colin J., Cibin, Giannantonio, Wilson, Paul, Kroner, Anna B., Shotton, Elizabeth J., Dowding, Peter J., Schroeder, Sven L.M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10571072/
https://www.ncbi.nlm.nih.gov/pubmed/37841415
http://dx.doi.org/10.1021/acs.iecr.3c02540
_version_ 1785119903616860160
author Kathyola, Thokozile A.
Chang, Sin-Yuen
Willneff, Elizabeth A.
Willis, Colin J.
Cibin, Giannantonio
Wilson, Paul
Kroner, Anna B.
Shotton, Elizabeth J.
Dowding, Peter J.
Schroeder, Sven L.M.
author_facet Kathyola, Thokozile A.
Chang, Sin-Yuen
Willneff, Elizabeth A.
Willis, Colin J.
Cibin, Giannantonio
Wilson, Paul
Kroner, Anna B.
Shotton, Elizabeth J.
Dowding, Peter J.
Schroeder, Sven L.M.
author_sort Kathyola, Thokozile A.
collection PubMed
description [Image: see text] Process analytical technologies are widely used to inform process control by identifying relationships between reagents and products. Here, we present a novel process analytical technology system for operando XAS on multiphase multicomponent synthesis processes based on the combination of a conventional lab-scale agitated reactor with a liquid-jet cell. The preparation of sulfonate-stabilized CaCO(3) particles from polyphasic Ca(OH)(2) dispersions was monitored in real time by Ca K-edge XAS to identify changes in Ca speciation in the bulk solution/dispersion as a function of time and process conditions. Linear combination fitting of the spectra quantitatively resolved composition changes from the initial conversion of Ca(OH)(2) to the Ca(R–SO(3))(2) surfactant to the ultimate formation of nCaCO(3)·mCa(R− SO(3))(2) particles. The system provides a novel tool with strong chemical specificity for probing multiphase synthesis processes at a molecular level, providing an avenue to establishing the relationships between critical quality attributes of a process and the quality and performance of the product.
format Online
Article
Text
id pubmed-10571072
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-105710722023-10-14 X-ray Absorption Spectroscopy as a Process Analytical Technology: Reaction Studies for the Manufacture of Sulfonate-Stabilized Calcium Carbonate Particles Kathyola, Thokozile A. Chang, Sin-Yuen Willneff, Elizabeth A. Willis, Colin J. Cibin, Giannantonio Wilson, Paul Kroner, Anna B. Shotton, Elizabeth J. Dowding, Peter J. Schroeder, Sven L.M. Ind Eng Chem Res [Image: see text] Process analytical technologies are widely used to inform process control by identifying relationships between reagents and products. Here, we present a novel process analytical technology system for operando XAS on multiphase multicomponent synthesis processes based on the combination of a conventional lab-scale agitated reactor with a liquid-jet cell. The preparation of sulfonate-stabilized CaCO(3) particles from polyphasic Ca(OH)(2) dispersions was monitored in real time by Ca K-edge XAS to identify changes in Ca speciation in the bulk solution/dispersion as a function of time and process conditions. Linear combination fitting of the spectra quantitatively resolved composition changes from the initial conversion of Ca(OH)(2) to the Ca(R–SO(3))(2) surfactant to the ultimate formation of nCaCO(3)·mCa(R− SO(3))(2) particles. The system provides a novel tool with strong chemical specificity for probing multiphase synthesis processes at a molecular level, providing an avenue to establishing the relationships between critical quality attributes of a process and the quality and performance of the product. American Chemical Society 2023-10-02 /pmc/articles/PMC10571072/ /pubmed/37841415 http://dx.doi.org/10.1021/acs.iecr.3c02540 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Kathyola, Thokozile A.
Chang, Sin-Yuen
Willneff, Elizabeth A.
Willis, Colin J.
Cibin, Giannantonio
Wilson, Paul
Kroner, Anna B.
Shotton, Elizabeth J.
Dowding, Peter J.
Schroeder, Sven L.M.
X-ray Absorption Spectroscopy as a Process Analytical Technology: Reaction Studies for the Manufacture of Sulfonate-Stabilized Calcium Carbonate Particles
title X-ray Absorption Spectroscopy as a Process Analytical Technology: Reaction Studies for the Manufacture of Sulfonate-Stabilized Calcium Carbonate Particles
title_full X-ray Absorption Spectroscopy as a Process Analytical Technology: Reaction Studies for the Manufacture of Sulfonate-Stabilized Calcium Carbonate Particles
title_fullStr X-ray Absorption Spectroscopy as a Process Analytical Technology: Reaction Studies for the Manufacture of Sulfonate-Stabilized Calcium Carbonate Particles
title_full_unstemmed X-ray Absorption Spectroscopy as a Process Analytical Technology: Reaction Studies for the Manufacture of Sulfonate-Stabilized Calcium Carbonate Particles
title_short X-ray Absorption Spectroscopy as a Process Analytical Technology: Reaction Studies for the Manufacture of Sulfonate-Stabilized Calcium Carbonate Particles
title_sort x-ray absorption spectroscopy as a process analytical technology: reaction studies for the manufacture of sulfonate-stabilized calcium carbonate particles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10571072/
https://www.ncbi.nlm.nih.gov/pubmed/37841415
http://dx.doi.org/10.1021/acs.iecr.3c02540
work_keys_str_mv AT kathyolathokozilea xrayabsorptionspectroscopyasaprocessanalyticaltechnologyreactionstudiesforthemanufactureofsulfonatestabilizedcalciumcarbonateparticles
AT changsinyuen xrayabsorptionspectroscopyasaprocessanalyticaltechnologyreactionstudiesforthemanufactureofsulfonatestabilizedcalciumcarbonateparticles
AT willneffelizabetha xrayabsorptionspectroscopyasaprocessanalyticaltechnologyreactionstudiesforthemanufactureofsulfonatestabilizedcalciumcarbonateparticles
AT williscolinj xrayabsorptionspectroscopyasaprocessanalyticaltechnologyreactionstudiesforthemanufactureofsulfonatestabilizedcalciumcarbonateparticles
AT cibingiannantonio xrayabsorptionspectroscopyasaprocessanalyticaltechnologyreactionstudiesforthemanufactureofsulfonatestabilizedcalciumcarbonateparticles
AT wilsonpaul xrayabsorptionspectroscopyasaprocessanalyticaltechnologyreactionstudiesforthemanufactureofsulfonatestabilizedcalciumcarbonateparticles
AT kronerannab xrayabsorptionspectroscopyasaprocessanalyticaltechnologyreactionstudiesforthemanufactureofsulfonatestabilizedcalciumcarbonateparticles
AT shottonelizabethj xrayabsorptionspectroscopyasaprocessanalyticaltechnologyreactionstudiesforthemanufactureofsulfonatestabilizedcalciumcarbonateparticles
AT dowdingpeterj xrayabsorptionspectroscopyasaprocessanalyticaltechnologyreactionstudiesforthemanufactureofsulfonatestabilizedcalciumcarbonateparticles
AT schroedersvenlm xrayabsorptionspectroscopyasaprocessanalyticaltechnologyreactionstudiesforthemanufactureofsulfonatestabilizedcalciumcarbonateparticles