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<dc:title>Polarity-Driven Selective Adsorption of Quercetin on Kaolinite: An Integrated DFT and Monte Carlo Study</dc:title>
<dc:creator>Ayad, Abdelilah</dc:creator>
<dc:creator>El Himri, Abdelouahad</dc:creator>
<dc:creator>Harrou, Achraf</dc:creator>
<dc:creator>Benali, Mohammed</dc:creator>
<dc:creator>Dira, Abdelouassia</dc:creator>
<dc:creator>Aparicio Martínez, Santiago</dc:creator>
<dc:creator>Gutiérrez Vega, Alberto</dc:creator>
<dc:creator>Soldera, Armand</dc:creator>
<dc:creator>Gharibi, Elkhadir</dc:creator>
<dc:subject>Clay</dc:subject>
<dc:subject>Flavonoid</dc:subject>
<dc:subject>Surface engineering</dc:subject>
<dc:subject>Nanocarrier design</dc:subject>
<dc:subject>Food</dc:subject>
<dc:subject>Encapsulation</dc:subject>
<dc:description>Quercetin’s therapeutic potential is limited by its poor water solubility and rapid degradation.&#xd;
Natural clay minerals such as kaolinite present sustainable platforms for drug&#xd;
delivery, yet the molecular mechanisms of drug encapsulation are not fully understood.&#xd;
Specifically, the role of kaolinite’s structural polarity, its hydrophilic aluminol (001) and hydrophobic&#xd;
siloxane (00-1) basal surfaces, in selective drug adsorption remains unexplored.&#xd;
This study combines Monte Carlo sampling and Density Functional Theory (DFT) to provide&#xd;
the first quantitative, atomistic comparison of quercetin adsorption on both kaolinite&#xd;
surfaces. The results demonstrate a pronounced polarity-driven selectivity. Strong, exothermic&#xd;
adsorption (−206.65 kJ mol−1) occurs on the hydrophilic (001) surface, stabilized by&#xd;
a network of five hydrogen bonds. In contrast, the hydrophobic (00-1) surface exhibits&#xd;
significantly weaker sorption (−147.16 kJ mol−1), dominated by van derWaals interactions.&#xd;
Charge-transfer analysis shows that the hydrophilic (001) surface exhibits a net charge&#xd;
transfer of −0.198 e, approximately 2.4 times greater than that of the hydrophobic (00-1)&#xd;
surface (−0.083 e), consistent with differential electron density maps and partial density&#xd;
of states. By linking hydrogen bonding and charge transfer to adsorption energy, these&#xd;
results elucidate how surface polarity dictates drug encapsulation. This work establishes a&#xd;
predictive framework for designing kaolinite-based nanocarriers with optimized stability,&#xd;
bioavailability, and controlled release, guiding the development of sustainable drug delivery&#xd;
systems. It is noted that this DFT study models adsorption at 0 K using periodic slab&#xd;
models in a vacuum.</dc:description>
<dc:date>2026-09-04T07:43:15Z</dc:date>
<dc:date>2026-09-04T07:43:15Z</dc:date>
<dc:date>2026-01</dc:date>
<dc:type>info:eu-repo/semantics/article</dc:type>
<dc:identifier>https://hdl.handle.net/10259/11996</dc:identifier>
<dc:identifier>10.3390/MA19020368</dc:identifier>
<dc:identifier>1996-1944</dc:identifier>
<dc:language>eng</dc:language>
<dc:relation>Materials. 2026, V. 19, n. 2, art. 368</dc:relation>
<dc:relation>https://doi.org/10.3390/ma19020368</dc:relation>
<dc:rights>http://creativecommons.org/licenses/by/4.0/</dc:rights>
<dc:rights>info:eu-repo/semantics/openAccess</dc:rights>
<dc:rights>Atribución 4.0 Internacional</dc:rights>
<dc:publisher>MDPI</dc:publisher>
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