EGU25-14864, updated on 15 Mar 2025
https://doi.org/10.5194/egusphere-egu25-14864
EGU General Assembly 2025
© Author(s) 2025. This work is distributed under
the Creative Commons Attribution 4.0 License.
Poster | Thursday, 01 May, 10:45–12:30 (CEST), Display time Thursday, 01 May, 08:30–12:30
 
Hall A, A.86
Hydrophobic Interaction Effects on the Transport of a Model Nanoplastic in 2D and 3D Porous Media
Marios Ioannidis1, Youssra Rahham1, Noemi Moraglio2, Monica Granetto2, Tiziana Tosco2, and Rajandrea Sethi2
Marios Ioannidis et al.
  • 1University of Waterloo, Chemical Engineering, Waterloo, Canada (mioannid@uwaterloo.ca)
  • 2Politecnico di Torino, Dipartimento di Ingegneria dell'Ambiente, del Territorio e delle Infrastrutture

The attraction between a hydrophobic particle and a hydrophobic surface may be strong enough for irreversible attachment to take place, even under conditions of strong electrostatic repulsion (so called “unfavorable” attachment conditions). This fact has fundamental implications for the transport and retention of hydrophobic nano-colloids (i.e., nanoplastics) in subsurface aquatic environments, where hydrophobic surfaces and interfaces are ubiquitous. Inclusion of hydrophobic attraction in extended DLVO calculations of the total interaction potential between hydrophobic negatively charged ethyl cellulose nanoparticles (a model nanoplastic) and (i) glass surfaces rendered hydrophobic via treatment with octadecyltrichlorosilane (OTS) or (ii) naturally hydrophobic air-water interfaces, indicate the absence of a barrier to attachment and support an expectation of irreversible attachment. We present here a series of experiments in saturated and unsaturated 2D (pore networks etched on glass) and 3D (columns packed with glass beads) porous media which confirm this expectation. The ability of a continuum model accounting for advection, dispersion and irreversible attachment to describe the breakthrough curves is also tested. The results advance the ability to describe the fate of hydrophobic nano-colloids in porous media for a variety of applications.  

How to cite: Ioannidis, M., Rahham, Y., Moraglio, N., Granetto, M., Tosco, T., and Sethi, R.: Hydrophobic Interaction Effects on the Transport of a Model Nanoplastic in 2D and 3D Porous Media, EGU General Assembly 2025, Vienna, Austria, 27 Apr–2 May 2025, EGU25-14864, https://doi.org/10.5194/egusphere-egu25-14864, 2025.