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Vanina G. Franco

Publications and source records attributed to Vanina G. Franco.

2 recordsLinked to original sources

Prebiotic Chemistry Assemblies of L-Cysteine on Defect-Free Pyrite Terraces

Wächtershäuser's theory proposes iron-sulfur minerals as key platforms for molecular synthesis and supramolecular organization in prebiotic environments. However, defects have been traditionally considered at the center of such assemblies, thereby underestimating the contributions of regular and pristine interfaces. Here, we combine scanning tunneling microscopy and spectroscopy (STM/STS) with density functional theory (DFT) to investigate the fundamental prebiotic chemistry system of L-Cysteine (L-Cys) on defectless FeS$_2$(100) terraces. To do so, we first achieved atomically ordered, defect-free terraces that act as support of two distinct supramolecular phases of L-Cys: one compact, highly ordered supramolecular network and another less packed, labile supramolecular network. We unveil trimer-based intermolecular interactions to be at the origin of these pattern formations. These results demonstrate that L-Cys self-assemblies can be hosted on flawless FeS$_2$ terraces due to the cooperative interplay between substrate electronic structure and intermolecular interactions, without the participation of dominant defects. Therefore, the autocatalytic activity of pyrite could have triggered the on-surface polymerization process of these non-static self-assembled structures under primordial conditions, thereby endorsing Wächtershäuser's postulates on the origin of life.

cond-mat.mtrl-sci↗

Magnetically Enhanced Fenton-Like Processes by Nanofibers: Real-Time Observation of Tetracycline Degradation in Pig Manure Wastewater

This study presents a novel approach for the degradation of tetracycline (TC) in pig manure wastewater using magnet-ite-based magnetic nanofibers (MNFs) as heterogeneous Fenton-like catalysts. The MNFs, composed of polyacrylonitrile (PAN) embedded with MnFe_2O_4 nanoparticles, were synthesized via electrospinning and exhibited high stability and catalytic efficiency. The degradation process was driven by hydroxyl radical (OH) formation through hydrogen peroxide (H2O2) activation on the MNF surface. The results showed that TC was first adsorbed onto the MNFs before undergoing oxidation, with treatment efficiency increasing with H2O2 concentration up to an optimum point, due to increased OH scavenging by H_2O_2. A heterogeneous dynamic kinetic model (DKM) was developed to describe the degradation mechanism, incorporating reactive oxygen species (ROS) generation, catalyst surface inactivation, and polymer strip-ping effects. Furthermore, the application of an alternating magnetic field significantly accelerated the reaction rate, likely due to localized heating effects. This study highlights the potential of MNFs as a scalable, reusable and efficient alternative for antibiotic-contaminated wastewater treatment, offering advantages over conventional homogeneous Fenton processes by minimizing iron sludge formation and broadening the operational pH range.

physics.chem-ph↗