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Jairo Rondón

Publications and source records attributed to Jairo Rondón.

4 recordsLinked to original sources

Activation of Polylactic Acid and Polycarbonate Surfaces with Non-Thermal Plasma

Non-thermal plasma (NTP) surface activation has become a powerful and versatile strategy to engineer the interfacial properties of biomedical polymers whose intrinsic hydrophobicity limits their biological performance. In polymers such as polylactic acid (PLA) and polycarbonate (PC), NTP promotes the controlled incorporation of polar functional groups, increases surface energy, modifies dielectric behavior, and generates micro-roughness that collectively enhance protein adsorption and early cell adhesion. This review synthesizes and critically evaluates evidence across four complementary analytical pillars-contact-angle theory, dielectric impedance spectroscopy, FT-IR chemical mapping, and optical microscopy-to construct an integrated framework for interpreting plasma-induced chemical and morphological transformations. The convergence of multimodal results demonstrates that NTP consistently produces chemically active, polar, and moderately textured surfaces that support robust initial cell-material interactions. Furthermore, combining wettability, dielectric, and spectroscopic analysis enables the identification of activation pathways, the assessment of hydrophobic recovery dynamics, and the development of quantitative correlations between dielectric parameters and biological response. However, the literature also reveals key methodological gaps, including the limited use of unified multimodal protocols, insufficient evaluation of temporal stability, and a lack of predictive dielectric-biological models. By articulating these advances and limitations within a unified conceptual scheme, this review provides a roadmap for future research aimed at standardizing characterization workflows and enabling the rational design of next-generation plasma-functionalized biomaterials for tissue-engineering scaffolds, implantable devices, and advanced drug-delivery systems.

physics.plasm-ph

Catalytic Nanoparticles: An Introduction

This study explores the transformative potential of nanocatalysts, emphasizing their pivotal role in catalysis and material science. Key synthesis techniques, including chemical reduction and hybrid methods, are highlighted for their ability to control particle size and enhance stability. Applications in environmental remediation, fuel quality improvement, and renewable energy showcase the broad impact of nanocatalysts. Despite challenges in scalability and stabilization, advancements in bimetallic configurations and electro-steric approaches demonstrate significant progress. This research underscores nanocatalysts' promise for sustainable industrial processes and global challenges.

cond-mat.mtrl-sci

Single Langmuir Probe Diagnostics Device

Seeking to improve and innovate the technology currently used in their research work, the Polytechnic University of Puerto Rico Plasma Laboratory designed and built a portable device able to generate a voltage sweep for an electrostatic probe (namely, a Single Langmuir Probe, or SLP) and to perform the computations necessary to determine the plasma temperature, and density as well as other parameters. The device uses a Raspberry Pi 4 to generate the voltage signal which is amplified through electronic circuitry in the range of -300V to +300V and applied to a SLP. The device is able to capture the current returning from the SLP to extract the relevant information from the IV characteristic and perform the computations necessary to obtain plasma electron density, plasma potential, floating potential, and electron temperature. All data is displayed through a touchscreen by a Graphical user interface developed in PyQT5. This device provides continuous measurement of plasma parameters during the realization of experiments at the laboratory.

physics.plasm-ph

Solid-State Diffusion: An Introduction

This research explores an introduction to solid-state diffusion, focusing on its importance in materials engineering. It examines vacancy and interstitial diffusion mechanisms, the application of Fick's laws, and their impact on processes such as phase precipitation and recrystallization in metals and alloys. Additionally, it addresses its relevance in grain growth, diffusion welding, and sintering, which are critical processes to improve the properties of materials with engineering applications in various areas such as biomedical, electrical, and chemistry.

cond-mat.mtrl-sci