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  4. Assessment of nanoparticle immersion depth at liquid interfaces from chemically equivalent macroscopic surfaces
 
Zitierlink DOI
10.26092/elib/3642
Verlagslink DOI
10.1016/j.jcis.2021.12.113

Assessment of nanoparticle immersion depth at liquid interfaces from chemically equivalent macroscopic surfaces

Veröffentlichungsdatum
2022-04
Autoren
Smits, Joeri  
Giri, Rajendra Prasad  
Shen, Chen  
Mendonça, Diogo  
Murphy, Bridget Mary  
Huber, Patrick  
Rezwan, Kurosch  
Maas, Michael  
Zusammenfassung
Hypothesis: We test whether the wettability of nanoparticles (NPs) straddling at an air/water surface or oil/water interface can be extrapolated from sessile drop-derived macroscopic contact angles (mCAs) on planar substrates, assuming that both the nanoparticles and the macroscopic substrates are chemically equivalent and feature the same electrokinetic potential.

Experiments: Pure silica (SiO2) and amino-terminated silica (APTES-SiO2) NPs are compared to macroscopic surfaces with extremely low roughness (root mean square [RMS] roughness ≤ 2 nm) or a roughness determined by a close-packed layer of NPs (RMS roughness ∼ 35 nm). Equivalence of the surface chemistry is assessed by comparing the electrokinetic potentials of the NPs via electrophoretic light scattering and of the macroscopic substrates via streaming current analysis. The wettability of the macroscopic substrates is obtained from advancing (ACAs) and receding contact angles (RCAs) and in situ synchrotron X-ray reflectivity (XRR) provided by the NP wettability at the liquid interfaces.

Findings: Generally, the RCA on smooth surfaces provides a good estimate of NP wetting properties. However, mCAs alone cannot predict adsorption barriers that prevent NP segregation to the interface, as is the case with the pure SiO2 nanoparticles. This strategy greatly facilitates assessing the wetting properties of NPs for applications such as emulsion formulation, flotation, or water remediation.
Schlagwörter
Contact angle

; 

Nanoparticles

; 

Liquid surface/interface

; 

Immersion depth

; 

Zeta (electrokinetic) potential

; 

Electrophoretic mobility

; 

Sessile drop

; 

Atomic Force Microscopy

; 

Streaming current

; 

X-ray reflectivity
Verlag
Elsevier Science
Institution
Universität Bremen  
Fachbereich
Fachbereich 05: Geowissenschaften (FB 05)  
Zentrale Wissenschaftliche Einrichtungen und Kooperationen  
Institute
MAPEX Center for Materials and Processes  
Dokumenttyp
Artikel/Aufsatz
Zeitschrift/Sammelwerk
Journal of colloid and interface science  
Band
611
Startseite
670
Endseite
683
Zweitveröffentlichung
Ja
Dokumentversion
Postprint
Lizenz
https://creativecommons.org/licenses/by-nc-nd/4.0/
Sprache
Englisch
Dateien
Lade...
Vorschaubild
Name

Smits et al_Assessment of nanoparticle immersion depth at liquid interfaces_2022_accepted-version.pdf

Size

3.56 MB

Format

Adobe PDF

Checksum

(MD5):9c21595cdca4d17e1eefcb21c48efa0f

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