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Bactericidal nanoparticle coatings are very promising for hindering the indirect transmission of pathogens through cross-contaminated surfaces. The challenge, limiting their employment in nosocomial environments, is the ability of tailoring the coating's physicochemical properties, namely, composition, cytotoxicity, bactericidal spectrum, adhesion to the substrate, and consequent nanoparticles release into the environment. We have engineered a new family of nanoparticle-based bactericidal coatings comprising Ag, Cu, and Mg and synthesized by a green gas-phase technique. These coatings present wide-spectrum bactericidal activity on both Gram-positive and Gram-negative reference strains and tunable physicochemical properties of relevance in view of their "on-field" deployment. The link between material and functional properties is rationalized based on a multidisciplinary and multitechnique approach. Our results pave the way for engineering biofunctional, fully tunable nanoparticle coatings, exploiting an arbitrarily wide number of elements in a straightforward, eco-friendly, high-throughput, one-step process.
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http://dx.doi.org/10.1039/c8nr08375d | DOI Listing |
Int J Biol Macromol
September 2025
Faculty of Materials Science and Technology, University of Science, Ho Chi Minh City, Viet Nam; Vietnam National University, Ho Chi Minh City, Viet Nam. Electronic address:
In this work, cerium oxide nanoparticles prepared through the solvothermal route (sCeO NPs) are integrated into chitosan (CH) matrices to serve as an efficient coating for banana preservation. The morphological, structural, mechanical, and water-barrier properties of nanocomposite films integrated with various sCeO concentrations were investigated to determine the optimal sCeO NPs concentration within the film matrix. Furthermore, the sensory evaluation and physicochemical properties of the coated and uncoated bananas, including visual attributes, peel browning, CO production, firmness, weight loss, ripening rate (based on total soluble solids and titratable acidity), and pH, are considered during storage.
View Article and Find Full Text PDFPrep Biochem Biotechnol
September 2025
School of Biosciences, Mahatma Gandhi University, Kottayam, Kerala, India.
The utilization of plant extracts in combination with various nanomaterials for treating polymicrobial wound infections represents a novel approach in overcoming the problem of antimicrobial resistance through its multi-targeted mechanism of action. The present study investigates the potential of plant extract for the green synthesis of AgZnO bimetallic nanoparticles (BMNPs). The nanoparticles obtained were characterized and the UV-Vis studies demonstrated peaks at 361 and 371 nm which were characteristic of silver and zinc oxide nanoparticles while a size range of 5-15 nm was revealed in the HR TEM studies, and the presence of crystalline ZnO and surface decorated Ag nanoparticles was observed in the diffraction patterns.
View Article and Find Full Text PDFCarbohydr Polym
November 2025
Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, International Innovation Center for Forest Chemicals and Materials, College of Chemical Engineering, College of Light Industry and Food Engineering, Nanjing Forestry University, Longpan Road 159, Nanjing 210037
A one-pot strategy was developed to fabricate a strong and ductile elastomer composed of chitin nanocrystals and poly(deep eutectic solvent) (ChNC/PDES), based on a dual-network structure formed through glycidyl methacrylate (GMA)associated modification, polymerization and crosslinking. This approach enables the integrated pretreatment, chemical modification, and nanodispersion of chitin within a lactic acid/choline chloride deep eutectic solvent (DES) system. Whereafter, the ultraviolet initiated polymerization of GMA with ChNC and DES components produced a homogeneous elastomer with a maximum tensile strength of 4.
View Article and Find Full Text PDFCarbohydr Polym
November 2025
College of Chemistry and Molecular Sciences, Key Laboratory of Biomedical Polymers of Ministry of Education, Wuhan University, Wuhan 430072, China. Electronic address:
Hemoperfusion is one of the most effective blood purification techniques to quickly remove bilirubin from the blood of patients with kidney or liver failure. Although numerous adsorbent materials with high adsorption capacity have been developed, their clinical application are still limited due to poor biocompatibility and biosafety issues. Herein, biocompatible core-shell structured adsorbents with cellulose microspheres (CMs) as the supporting core and phase-transformed lysozyme (PTL) as the functional shell are fabricated for the removal of bilirubin in hemoperfusion.
View Article and Find Full Text PDFACS Appl Mater Interfaces
September 2025
Department of Physics and Astronomy, Clemson University, Clemson, South Carolina 29634, United States.
Developing next-generation anodes with high silicon (Si) contents requires thoughtful embedment of Si particles in protective media, mainly carbonaceous materials. However, it has been challenging to simultaneously realize optimal electrical conduction, structural integrity, and low-cost synthesis for advancing Si-carbon materials. In this work, we addressed these challenges by synthesizing a composite, where commercial Si nanoparticles are embedded in a dual carbon framework via a facile solution mixing and annealing process.
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