<?xml version="1.0" encoding="UTF-8"?>
<feed xmlns="http://www.w3.org/2005/Atom" xmlns:dc="http://purl.org/dc/elements/1.1/">
<title>Artículos AdF</title>
<link href="https://hdl.handle.net/10259/4330" rel="alternate"/>
<subtitle/>
<id>https://hdl.handle.net/10259/4330</id>
<updated>2026-09-09T20:40:47Z</updated>
<dc:date>2026-09-09T20:40:47Z</dc:date>
<entry>
<title>Exploring the thermophysical properties of natural deep eutectic solvents for gas capture applications: a comprehensive review</title>
<link href="https://hdl.handle.net/10259/12058" rel="alternate"/>
<author>
<name>Al Bodour, Ahmad</name>
</author>
<author>
<name>Gutiérrez Vega, Alberto</name>
</author>
<author>
<name>Alomari, Noor</name>
</author>
<author>
<name>Aparicio Martínez, Santiago</name>
</author>
<author>
<name>Atilhan, Mert</name>
</author>
<id>https://hdl.handle.net/10259/12058</id>
<updated>2026-09-09T12:41:11Z</updated>
<published>2024-09-01T00:00:00Z</published>
<summary type="text">Exploring the thermophysical properties of natural deep eutectic solvents for gas capture applications: a comprehensive review
Al Bodour, Ahmad; Gutiérrez Vega, Alberto; Alomari, Noor; Aparicio Martínez, Santiago; Atilhan, Mert
With the intensifying challenge of global warming driven largely by anthropogenic activities, effective greenhouse gas capture techniques are critical. This paper focuses on the role of deep eutectic solvents (DES) as promising agents for such capture at the source. We review the key DES-based methods for greenhouse gas capture, drawing conclusions from a thorough analysis of the existing literature. In particular, we examine the effect of DES structure on gas solubilities and explore the mechanism of gas solubility in DES through molecular simulation. We present a synthesis of state-of-the-art results in this area, assessing the potential of DES as an alternative to current industrial gas capture methods. Furthermore, we propose future research directions for the design of novel DES tailored to more specific applications.
</summary>
<dc:date>2024-09-01T00:00:00Z</dc:date>
</entry>
<entry>
<title>Molecular dynamics study on the interfacial properties of mixtures of monomers of polyvinylpyrrolidone (PVP)-based battery binders on graphene and graphite surfaces</title>
<link href="https://hdl.handle.net/10259/12052" rel="alternate"/>
<author>
<name>Gutiérrez Vega, Alberto</name>
</author>
<author>
<name>Aparicio Martínez, Santiago</name>
</author>
<author>
<name>Pekarovicova, Alexandra</name>
</author>
<author>
<name>Wu, Qingliu</name>
</author>
<author>
<name>Atilhan, Mert</name>
</author>
<id>https://hdl.handle.net/10259/12052</id>
<updated>2026-09-09T00:05:36Z</updated>
<published>2023-07-01T00:00:00Z</published>
<summary type="text">Molecular dynamics study on the interfacial properties of mixtures of monomers of polyvinylpyrrolidone (PVP)-based battery binders on graphene and graphite surfaces
Gutiérrez Vega, Alberto; Aparicio Martínez, Santiago; Pekarovicova, Alexandra; Wu, Qingliu; Atilhan, Mert
This study investigates the behavior of two different mixtures of monomers of polyvinylpyrrolidone (PVP)-based battery binders, polyvinylpyrrolidone:polyvinylidene difluoride (PVP:PVDF) and polyvinylpyrrolidone:polyacrylic acid (PVP:PAA), at graphene and graphite interfaces using classical molecular dynamics simulations. The aim is to identify the best performing monomer binder blend and carbon-based material for the design of battery-optimized energy devices. The PVP:PAA monomer binder blend and graphite are found to have the best interaction energies, densification upon adsorption, and more ordered structure. The adsorption of both monomer binder blends is strongly guided by the higher affinity of PVP and PAA monomeric molecules for the surfaces compared to PVDF. The structure of adsorbed layers of PVP:PVDF monomer binder blend on graphene and graphite develops more quickly than PVP:PAA, indicating faster kinetics. This study complements a previous density functional theory study recently reported by our group and contributes to a better understanding of the nanoscopic features of relevant interfacial regions involving mixtures of monomers of PVP-based battery binders and different carbon-based materials. The effect of a blend of commonly used monomer binders on carbon-based materials is essential for obtaining tightly bound anode and cathode active materials in lithium-ion batteries, which is crucial for designing battery-optimized energy devices.
</summary>
<dc:date>2023-07-01T00:00:00Z</dc:date>
</entry>
<entry>
<title>Insights on the adsorption mechanism of different polyvinylpyrrolidone (PVP)-based battery binders on 2D-materials for LiPF6-Ec-Emc electrolyte via molecular simulations</title>
<link href="https://hdl.handle.net/10259/12039" rel="alternate"/>
<author>
<name>Wu, Qingliu</name>
</author>
<author>
<name>Pekarovicova, Alexandra</name>
</author>
<author>
<name>Aparicio Martínez, Santiago</name>
</author>
<author>
<name>Gutiérrez Vega, Alberto</name>
</author>
<author>
<name>Atilhan, Mert</name>
</author>
<id>https://hdl.handle.net/10259/12039</id>
<updated>2026-09-09T00:05:32Z</updated>
<published>2024-11-01T00:00:00Z</published>
<summary type="text">Insights on the adsorption mechanism of different polyvinylpyrrolidone (PVP)-based battery binders on 2D-materials for LiPF6-Ec-Emc electrolyte via molecular simulations
Wu, Qingliu; Pekarovicova, Alexandra; Aparicio Martínez, Santiago; Gutiérrez Vega, Alberto; Atilhan, Mert
In this study, the adsorption mechanism of different mixtures of monomers of polyvinylpyrrolidone (PVP)-based battery binders (polyvinylpyrrolidone:polyvinylidene difluoride, PVP:PVDF; polyvinylpyrrolidone:polyacrylic acid, PVP:PAA; and polyvinylpyrrolidone:lithiated polyacrylic acid, PVP:Li-PAA) on a graphene oxide (GO) nanoparticle was investigated using density functional theory (DFT), quantum theory of atoms in molecules (QTAIM) and molecular dynamics (MD) simulations in order to identify the thermodynamic, intermolecular forces and interfacial properties of these systems within the framework of battery applications employing LiPF6-EC-EMC electrolyte. Our work focuses into the short-range interactions and electronic properties of the adsorbed binder mixtures on the GO nanoparticle, and also into their interfacial properties (considering systems with and without the electrolyte, 1.2 M LiPF6 dissolved in EC/EMC 3/7, w/w), shedding light on the fundamental interactions that govern the mechanisms of GO (and also another 2D-nanomaterial such as graphite, for reference) enabling the physical adsorption of binders (and electrolyte compounds) for obtaining strongly adhered anode and cathode active substances in Li-ion battery applications. The results of this study advance the understanding of the adsorption mechanisms of binder mixtures and electrolyte compounds on carbon-based nanomaterials, and hold significant promise for the designing battery-optimized energy devices in lithium-ion batteries.
</summary>
<dc:date>2024-11-01T00:00:00Z</dc:date>
</entry>
<entry>
<title>Insights into Carvone: Fatty Acid Hydrophobic NADES for Alkane Solubilization</title>
<link href="https://hdl.handle.net/10259/12030" rel="alternate"/>
<author>
<name>Aguilar Cuesta, Nuria</name>
</author>
<author>
<name>Benito, Cristina</name>
</author>
<author>
<name>Martel Martín, Sonia</name>
</author>
<author>
<name>Gutiérrez Vega, Alberto</name>
</author>
<author>
<name>Rozas Azcona, Sara</name>
</author>
<author>
<name>Marcos Villa, Pedro A.</name>
</author>
<author>
<name>Bol Arreba, Alfredo</name>
</author>
<author>
<name>Atilhan, Mert</name>
</author>
<author>
<name>Aparicio Martínez, Santiago</name>
</author>
<id>https://hdl.handle.net/10259/12030</id>
<updated>2026-09-09T00:05:29Z</updated>
<published>2024-12-01T00:00:00Z</published>
<summary type="text">Insights into Carvone: Fatty Acid Hydrophobic NADES for Alkane Solubilization
Aguilar Cuesta, Nuria; Benito, Cristina; Martel Martín, Sonia; Gutiérrez Vega, Alberto; Rozas Azcona, Sara; Marcos Villa, Pedro A.; Bol Arreba, Alfredo; Atilhan, Mert; Aparicio Martínez, Santiago
The urge to adopt cleaner technologies drives the search for novel and sustainable materials such as Hydrophobic Natural Deep Eutectic Solvents (HNADESs), a new class of green solvents characterized by their low toxicity, biodegradability, and tunable properties, aiming to be applied in various fields for handling non-polar substances. In this work, the solubilization of hydrocarbons in type V HNADESs (non-ionic organic molecules) formed by mixing carvone, a natural monoterpenoid, with organic acids (hexanoic to decanoic acids) is examined by applying both experimental and theoretical approaches. The synthesis and physicochemical characterization of different HNADESs allowed us to tailor their properties, aiming for optimal interactions with desired hydrocarbons. The solubilization of hydrocarbons in CAR:C10AC (1:1) HNADES is evaluated in terms of HNADES content, temperature, and the structure of the hydrocarbon itself (C6, C10, and C14 being the selected ones). To gain deeper insights into the underlying mechanisms of interactions between the solvents and the alkanes, a comprehensive multiscale computational study was carried out to analyze the nature of the interactions, the changes upon formation of HNADESs and hydrocarbon solubilization in the fluid’s nanostructure, and the possible toxicological effects of the solvents. The findings hold the potential to significantly impact the realm of hydrocarbon exploration and utilization.
</summary>
<dc:date>2024-12-01T00:00:00Z</dc:date>
</entry>
</feed>
