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Veronika Kralj-Iglič

Researcher at University of Ljubljana

Publications -  281
Citations -  10824

Veronika Kralj-Iglič is an academic researcher from University of Ljubljana. The author has contributed to research in topics: Membrane & Vesicle. The author has an hindex of 42, co-authored 261 publications receiving 8803 citations. Previous affiliations of Veronika Kralj-Iglič include Ljubljana University Medical Centre & University Medical Center Groningen.

Papers
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Biological properties of extracellular vesicles and their physiological functions

María Yáñez-Mó, +72 more
TL;DR: A comprehensive overview of the current understanding of the physiological roles of EVs is provided, drawing on the unique EV expertise of academia-based scientists, clinicians and industry based in 27 European countries, the United States and Australia.
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Titanium nanostructures for biomedical applications

TL;DR: Perhaps the most spectacular and surprising one-dimensional structures and their unique biomedical applications for increased osseointegration, protein interaction and antibacterial properties are focused on.
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Evidence-Based Clinical Use of Nanoscale Extracellular Vesicles in Nanomedicine

TL;DR: The high potential of nanosized EVs for both diagnostic and therapeutic areas of nanomedicine, as demonstrated by the European Network on Microvesicles and Exosomes in Health and Disease (ME-HAD), is demonstrated.
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Thickness of electrical double layer. Effect of ion size

TL;DR: In this paper, a simple statistical approach is used, where the particles in the solution are distributed over a lattice with an adjustable lattice constant, and different sizes of ions are described by different values of the lattice constants.
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A Simple Statistical Mechanical Approach to the free Energy of the Electric Double Layer Including the Excluded Volume Effect

TL;DR: In this paper, a simple analytic statistical mechanical approach is applied to derive an expression for the free energy of a single electric double layer, where the mean electrostatic field and the finite size of particles constituting the electrolyte solution are considered by including the excluded volume effect.