TY - JOUR
T1 - Novel multimethod approach for the determination of the colloidal stability of nanomaterials in complex environmental mixtures using a global stability index
T2 - TiO2 as case study
AU - Badetti, Elena
AU - Brunelli, Andrea
AU - Basei, Gianpietro
AU - Gallego-Urrea, Julián A
AU - Stoll, Serge
AU - Walch, Helene
AU - Praetorius, Antonia
AU - von der Kammer, Frank
AU - Marcomini, Antonio
N1 - Publisher Copyright:
© 2021 Elsevier B.V.
PY - 2021/12/20
Y1 - 2021/12/20
N2 - A systematic study on the colloidal behavior of uncoated and polyvinylpyrrolidone (PVP) coated TiO2 engineered nanomaterials (ENMs) in simulated aqueous media is herein reported, in which conditions representative for natural waters (pH, presence of divalent electrolytes (i.e. Ca2+/Mg2+ and SO42-), of natural organic matter (NOM) and of suspended particulate matter (SPM)) were systematically varied. The colloidal stability of the different dispersions was investigated by means of Dynamic and Electrophoretic Light Scattering (DLS and ELS) and Centrifugal Separation Analysis (CSA), and a global stability index based on these three techniques was developed. The index allows to quantitatively classify the nano-based dispersions according to their colloidal stability affected by the different parameters studied. This multimethod approach clearly identifies inorganic SPM followed by divalent electrolytes as the main natural components destabilizing TiO2 ENMs upon entering in simulated natural waters, while it highlights a moderate stabilization induced by NOM, depending mainly on pH. Moreover, the PVP coating was found to attenuate the influence of these parameters on the colloidal stability. The obtained results show how the global stability index developed is influenced by the complexity of the system, suggesting the importance of combining the information gathered from all the techniques employed to better elucidate the fate and behavior of ENMs in natural surface waters.
AB - A systematic study on the colloidal behavior of uncoated and polyvinylpyrrolidone (PVP) coated TiO2 engineered nanomaterials (ENMs) in simulated aqueous media is herein reported, in which conditions representative for natural waters (pH, presence of divalent electrolytes (i.e. Ca2+/Mg2+ and SO42-), of natural organic matter (NOM) and of suspended particulate matter (SPM)) were systematically varied. The colloidal stability of the different dispersions was investigated by means of Dynamic and Electrophoretic Light Scattering (DLS and ELS) and Centrifugal Separation Analysis (CSA), and a global stability index based on these three techniques was developed. The index allows to quantitatively classify the nano-based dispersions according to their colloidal stability affected by the different parameters studied. This multimethod approach clearly identifies inorganic SPM followed by divalent electrolytes as the main natural components destabilizing TiO2 ENMs upon entering in simulated natural waters, while it highlights a moderate stabilization induced by NOM, depending mainly on pH. Moreover, the PVP coating was found to attenuate the influence of these parameters on the colloidal stability. The obtained results show how the global stability index developed is influenced by the complexity of the system, suggesting the importance of combining the information gathered from all the techniques employed to better elucidate the fate and behavior of ENMs in natural surface waters.
KW - Electrolytes
KW - Nanostructures
KW - Particulate Matter
KW - Titanium
KW - global stability index
KW - multimethod approach
KW - SUSPENDED PARTICULATE MATTER
KW - mulitdimensional parameter matrix
KW - natural organic matter
KW - TiO2 nanomaterials
KW - TiO nanomaterials
KW - Multidimensional parameter matrix
KW - Suspended particulate matter
KW - Multimethod approach
KW - Natural organic matter
KW - Global stability index
KW - GOLD NANOPARTICLES
KW - POLYVINYLPYRROLIDONE
KW - SEDIMENTATION
KW - HETEROAGGREGATION
KW - AGGREGATION KINETICS
KW - ENGINEERED NANOPARTICLES
KW - CEO2 NANOPARTICLES
KW - IRON-OXIDES
KW - TITANIUM-DIOXIDE NANOPARTICLES
KW - NATURAL ORGANIC-MATTER
UR - http://www.scopus.com/inward/record.url?scp=85113712898&partnerID=8YFLogxK
U2 - 10.1016/j.scitotenv.2021.149607
DO - 10.1016/j.scitotenv.2021.149607
M3 - Article
C2 - 34425449
SN - 0048-9697
VL - 801
JO - Science of the Total Environment
JF - Science of the Total Environment
M1 - 149607
ER -