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Search Results (166)

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Keywords = Ag@Ag2O-graphene

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21 pages, 1350 KB  
Review
From Nano to Smile: Applications, Innovations, and the Future of Nanotechnology in Dentistry—A Scoping Review
by Rajashekhara Bhari Sharanesha, Deepti Virupakshappa, Maram Alagla, Zeyad Alkwaifali and Faisal Alotaibi
Micro 2026, 6(3), 68; https://doi.org/10.3390/micro6030068 - 17 Aug 2026
Viewed by 217
Abstract
Background/Objectives: Nanotechnology has become a transformative area in modern dentistry, providing new opportunities for better diagnosis, targeted drug delivery, improved restorative materials, antimicrobial treatments, and tissue regeneration. This scoping review outlines the scope, key developments, and future directions of nanotechnology use across all [...] Read more.
Background/Objectives: Nanotechnology has become a transformative area in modern dentistry, providing new opportunities for better diagnosis, targeted drug delivery, improved restorative materials, antimicrobial treatments, and tissue regeneration. This scoping review outlines the scope, key developments, and future directions of nanotechnology use across all dental specialties, highlights emerging innovations, and identifies major translational challenges and research priorities. Methods: This review followed the Joanna Briggs Institute (JBI) methodology for scoping reviews and adhered to the PRISMA-ScR guidelines. These guidelines, originally by Arksey and O’Malley (2005) and later updated by Levac et al. (2010) and Peters et al. (2020, 2021), guided the process. The Population, Concept, and Context (PCC) framework guided the eligibility criteria. Included studies were primary research or reviews reporting nanotechnology applications in any dental specialty, published in English, with no date restriction. Excluded were non-peer-reviewed sources, conference abstracts without full text, studies unrelated to dental applications, and non-English publications. A comprehensive literature search was conducted across PubMed/MEDLINE, Scopus, and Web of Science. After screening titles and abstracts and reviewing full texts, 133 studies were included. Results: The included studies covered a wide range of fields such as restorative dentistry, implantology, periodontology, endodontics, drug delivery, tissue regeneration, oral diagnostics, antimicrobial applications, prosthodontics, orthodontics, and emerging technologies like nanorobotics and graphene-based systems. The most commonly reported nanomaterials were silver nanoparticles (AgNPs), calcium phosphate nanoparticles (CaP NPs), and polymeric nanoparticles such as PLGA and chitosan. Additionally, there was a notable increase in publications starting from 2019. Conclusions: Nanotechnology offers transformative possibilities in every area of dentistry. Nonetheless, challenges such as nanotoxicology safety, regulatory alignment, and effective clinical application need resolution. Essential steps include standardized characterization, gathering long-term safety data, and establishing international regulatory standards to ensure safe adoption of nano dentistry. Full article
(This article belongs to the Topic Antimicrobial Agents and Nanomaterials—2nd Edition)
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27 pages, 6335 KB  
Article
High-Sensitivity Graphene/h-BN-Assisted Surface Plasmon Resonance Biosensor for Non-Invasive Glucose Monitoring
by Maryam Azizi, Mohammad Soroosh, Mohammad Javad Maleki and Sandip Swarnakar
Photonics 2026, 13(8), 757; https://doi.org/10.3390/photonics13080757 - 11 Aug 2026
Viewed by 445
Abstract
Accurate and non-invasive monitoring of glucose levels remains a critical challenge in diabetes management, motivating the development of highly sensitive optical biosensors. In this work, a surface plasmon resonance-based biosensor operating in the Kretschmann configuration is proposed and numerically investigated for glucose detection. [...] Read more.
Accurate and non-invasive monitoring of glucose levels remains a critical challenge in diabetes management, motivating the development of highly sensitive optical biosensors. In this work, a surface plasmon resonance-based biosensor operating in the Kretschmann configuration is proposed and numerically investigated for glucose detection. The sensor architecture consists of a BK7 prism/TiO2/Ag/graphene multilayer, and the effect of incorporating a hexagonal boron nitride (h-BN) interlayer with varying thicknesses is systematically analyzed to enhance sensing performance. Electromagnetic simulations were performed using the finite-difference time-domain method in Lumerical FDTD Solutions at a wavelength of 633 nm. Key performance parameters, including angular sensitivity, full width at half maximum, detection accuracy, figure of merit, signal-to-noise ratio, and limit of detection, were evaluated for glucose concentrations corresponding to refractive indices ranging from 1.3282 to 1.3767 RIU. The conventional BK7/TiO2/Ag/TiO2/Graphene/Sensing Medium (SM) configuration achieved a sensitivity of 167.48 deg/RIU. By introducing an h-BN layer, significant performance enhancement was observed. The optimized structure with an 8 nm h-BN layer exhibited a maximum angular sensitivity of 205.35 deg/RIU, representing an improvement of approximately 22.6% over the reference design, while maintaining a low detection limit of 2.43 × 10−4 RIU. The results further reveal that h-BN thickness plays a crucial role in balancing sensitivity and resonance quality, where excessive thickness broadens the resonance curve and degrades detection accuracy. The proposed graphene-h-BN-assisted SPR platform demonstrates high potential for high-performance, non-invasive glucose monitoring and provides practical design guidelines for next-generation plasmonic biosensors. Full article
(This article belongs to the Section Biophotonics and Biomedical Optics)
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15 pages, 49704 KB  
Article
Research on the Preparation and Lubrication Mechanisms of Sinusoidal Closed-Loop Structures
by Kang Yang, Fang Qian, Xue Yin, Jun Tang and Yulong Shi
Lubricants 2026, 14(8), 298; https://doi.org/10.3390/lubricants14080298 - 31 Jul 2026
Viewed by 226
Abstract
To enhance the service life and operational precision of Ti-based aerospace gears, sinusoidal closed-cycle structures containing S (SnCuAg), G (Graphene), A (Al2O3), SG, SA and SGA are fabricated using laser additive manufacturing and high-temperature infiltration. The results reveal that [...] Read more.
To enhance the service life and operational precision of Ti-based aerospace gears, sinusoidal closed-cycle structures containing S (SnCuAg), G (Graphene), A (Al2O3), SG, SA and SGA are fabricated using laser additive manufacturing and high-temperature infiltration. The results reveal that SGA lubricants ensure superior synergistic lubrication. During the wear process, a substantial amount of SGA lubricants continuously exude from the sinusoidal closed structures and migrate to the contact wear interfaces, subsequently accumulating into a well-distributed lubrication film. The lubricants, S, G, A, undergo good plastic deformation, interlayer delamination and rolling friction, respectively. Hence, synergistic lubrication emerges among SG, SA, and SGA. This synergistic effect protects the wear surface and suppresses sliding-induced damage, markedly reducing the sliding resistance of mating pairs, thereby improving the anti-friction and anti-wear abilities of the film. Ultimately, Ti-SGA shows outstanding tribological behavior, achieving a friction coefficient of approximately 0.26 and a wear rate of approximately 2.73 × 10−4 mm3N−1m−1. Full article
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16 pages, 3706 KB  
Article
Controllable Synthesis of Silver–Copper Bimetallic Nanoparticle-Decorated Reduced Graphene Oxide Composites with Enhanced Electrocatalytic Performance
by Youzhi Yao, Ping Cheng, Xiaohan Wang, Qinghua Deng, Tiancheng Yao, Jiaxin Jiang and Wenjie Wu
Catalysts 2026, 16(6), 551; https://doi.org/10.3390/catal16060551 - 15 Jun 2026
Viewed by 494
Abstract
Monometallic nanoparticles tend to aggregate and exhibit limited catalytic performance, rendering them inadequate for high-efficiency electrocatalytic applications. In this study, a green and mild liquid-phase reduction method was employed, using sodium borohydride to simultaneously reduce graphene oxide (GO) and metal precursors. This approach [...] Read more.
Monometallic nanoparticles tend to aggregate and exhibit limited catalytic performance, rendering them inadequate for high-efficiency electrocatalytic applications. In this study, a green and mild liquid-phase reduction method was employed, using sodium borohydride to simultaneously reduce graphene oxide (GO) and metal precursors. This approach enabled the uniform and highly dispersed loading of silver–copper bimetallic alloy nanoparticles (Ag1−xCux NPs) onto the surface of reduced graphene oxide (RGO). By tuning the Ag/Cu molar ratio, the size, composition, and morphology of the nanoparticles were precisely controlled. Characterization by scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS) confirmed that GO was efficiently reduced to RGO, and the bimetallic nanoparticles were uniformly distributed on the RGO surface in an alloy state with small particle size and no obvious agglomeration. A strong interfacial interaction between the metal nanoparticles and the support was also observed. Electrochemical tests demonstrated that the composite exhibits excellent electrocatalytic activity toward the reduction of H2O2. Notably, the reduction peak current at the Ag0.5Cu0.5NPs/RGO modified electrode was 1.8 and 2.3 times higher than those at the monometallic Ag/RGO and Cu/RGO electrodes, respectively. These results provide a reliable theoretical basis and a viable research route for the controllable synthesis of low-cost, high-performance electrocatalytic nanocomposites and their application in electrochemical H2O2 sensing. Full article
(This article belongs to the Section Catalytic Materials)
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18 pages, 4862 KB  
Article
Flexible Fe3O4/Ag/RGO Triple-Layer-Coated Cotton Fabric for Electromagnetic Interference Shielding
by Houqiang Hua, Shulan Xiang and Ronghui Guo
Polymers 2026, 18(9), 1035; https://doi.org/10.3390/polym18091035 - 24 Apr 2026
Cited by 1 | Viewed by 815
Abstract
With the rapid development of electronic devices and wireless communication systems, electromagnetic interference pollution has become a critical concern, driving the urgent demand for high-performance, lightweight, and flexible electromagnetic interference (EMI) shielding materials. To endow fabrics with excellent electromagnetic shielding, a Fe3 [...] Read more.
With the rapid development of electronic devices and wireless communication systems, electromagnetic interference pollution has become a critical concern, driving the urgent demand for high-performance, lightweight, and flexible electromagnetic interference (EMI) shielding materials. To endow fabrics with excellent electromagnetic shielding, a Fe3O4/Ag/RGO ternary nanocomposite-coated cotton fabric for electrical conductivity and EMI shielding application was developed. The cotton fabric pretreated with dopamine was coated with graphene oxide (GO), followed by silver nanoparticles (Ag) via a microwave-assisted chemical reduction method, and Ag/reduced graphene oxide (RGO)-coated cotton. Subsequently, nano-ferroferric oxide was deposited on Ag/RGO-coated cotton fabric using a coprecipitation method. The results show that the surface resistance of Fe3O4/Ag/RGO-coated cotton fabric arrives at 1.68 Ω/sq, demonstrating excellent electrically conductive performance. Fe3O4/Ag/RGO-coated cotton fabric demonstrates outstanding electromagnetic shielding performance, with SE values exceeding 45 dB across the entire 1–18 GHz range. The flexibility and superior electromagnetic shielding performance of Fe3O4/Ag/RGO-coated cotton fabric render it a promising candidate for applications in wearable electronics, aerospace, advanced protective systems, and military protective clothing. Full article
(This article belongs to the Section Polymer Applications)
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23 pages, 6792 KB  
Article
Evaluation of Dielectric Endurance of Nano-Additive Reinforced Polyester Composites via Hankel-RPCA Decomposition
by Mete Pınarbaşı, Fatih Atalar and Aysel Ersoy
Polymers 2026, 18(8), 992; https://doi.org/10.3390/polym18080992 - 19 Apr 2026
Viewed by 618
Abstract
Surface discharge-induced degradation poses a significant threat to the operational reliability of high-voltage insulation systems. This research investigates the dielectric endurance of polyester-based nanocomposites reinforced with seven distinct nano-additives: iron oxide (Fe3O4), copper oxide (CuO), titanium oxide (TiO2 [...] Read more.
Surface discharge-induced degradation poses a significant threat to the operational reliability of high-voltage insulation systems. This research investigates the dielectric endurance of polyester-based nanocomposites reinforced with seven distinct nano-additives: iron oxide (Fe3O4), copper oxide (CuO), titanium oxide (TiO2), aluminum oxide (Al2O3), silicon dioxide (SiO2), zinc borate (ZnB) and graphene oxide (GO). Specimens were fabricated at 0.5% and 0.75% weight concentrations and subjected to constant AC electrical stress of 4.5 kV at 50 Hz until failure using the first-plane tracking method. To accurately monitor the aging process, a sophisticated signal processing framework involving Hankel-matrix-enhanced Robust Principal Component Analysis (RPCA) was developed to extract high-frequency discharge features from captured leakage current signals. The degradation characteristics were quantified using various statistical metrics, including Kurtosis, RMS and Burst Discharge Index (BDI). Experimental findings demonstrate that the incorporation of nanoparticles significantly extends the time-to-failure compared to neat polyester, although the effectiveness is highly dependent on both additive type and concentration. At 0.5 wt.%, ZnB exhibited the superior performance in delaying carbonized track formation. However, at 0.75 wt.%, Al2O3 emerged as the most effective additive, achieving a maximum endurance time of 31.61 min. In contrast, certain additives like TiO2 showed a performance decline at higher loadings, likely due to nanoparticle agglomeration. The Hankel-RPCA methodology successfully isolated discharge-specific signatures from background noise, establishing a strong correlation between signal features and material failure stages. This study confirms that the synergy between advanced nanomaterial modification and robust signal processing provides an effective diagnostic tool for monitoring insulation health, offering a vital pathway for the designing of high-performance dielectrics for real-world power system applications. Full article
(This article belongs to the Special Issue Resin Additives—Spices for Polymers, 2nd Edition)
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20 pages, 2897 KB  
Article
Enhancing the Photocatalytic Activity of TiO2 Nanoparticles with Cyclodextrin-Functionalized Graphene and Noble Metals for Organic Pollutant Degradation
by Ibtisam M. N. Hamdan, Mohannad T. Aljarrah and Nathir A. F. Al-Rawashdeh
Molecules 2026, 31(8), 1296; https://doi.org/10.3390/molecules31081296 - 16 Apr 2026
Cited by 1 | Viewed by 732
Abstract
Contamination of water resources by organic pollutants is a major environmental issue. Utilizing photocatalytic materials for the degradation of these pollutants presents a viable strategy for environmental clean-up. This study introduces the synthesis of an organic/inorganic hybrid photocatalyst of β-cyclodextrin (β-CD)/reduced graphene oxide [...] Read more.
Contamination of water resources by organic pollutants is a major environmental issue. Utilizing photocatalytic materials for the degradation of these pollutants presents a viable strategy for environmental clean-up. This study introduces the synthesis of an organic/inorganic hybrid photocatalyst of β-cyclodextrin (β-CD)/reduced graphene oxide (rGO) and titanium oxide (TiO2) nanoparticles. The nanocomposite was characterized by using FT-IR, XRD, SEM, and EDAX, and the photocatalytic activity was studied by measuring the photodegradation of methylene blue (MB) under simulated solar radiation. The synthesized nanocomposite showed excellent stability and performance, with up to 92% photodegradation of MB. To further enhance the photocatalytic activity, the synthesized nanocomposite underwent modification with Ag and Pt nanoparticles. Within 90 min, photodegradation rates of 100% and 97% for MB were attained with Pt and Ag nanoparticles that were loaded at 5 wt.%, respectively. The photocatalyst’s reusability was evaluated through multiple usage cycles. Additionally, the impact of functionalization on the band gap alteration of TiO2 is reported. Full article
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21 pages, 6908 KB  
Article
Screen-Printed Carbon Electrode Modified with ZrO2/Ag/GO for Simultaneous Detection of Catechol and Hydroquinone
by Sabrine Chelly, Meryam Chelly, Sarah Ben Haj Fraj, Enza Fazio, Carmelo Corsaro, Govar Muayad Abdullah, Sabrina Conoci, Giovanni Neri and Dario Morganti
Molecules 2026, 31(5), 852; https://doi.org/10.3390/molecules31050852 - 4 Mar 2026
Cited by 4 | Viewed by 872
Abstract
This study presents a straightforward process for producing a hybrid ternary composite of silver nanoparticles (Ag NPs), small graphene oxide (s-GO), and zirconia (ZrO2) and its use as an electrode material for electrochemical sensing. The physico-chemical properties of the ternary composite [...] Read more.
This study presents a straightforward process for producing a hybrid ternary composite of silver nanoparticles (Ag NPs), small graphene oxide (s-GO), and zirconia (ZrO2) and its use as an electrode material for electrochemical sensing. The physico-chemical properties of the ternary composite were analyzed by means of field emission scanning electron microscopy (FE-SEM), ultraviolet-visible (UV-vis) and FTIR spectroscopy, X-ray Photoelectron Spectrometry (XPS) and contact angle (CA) measurements. The synthesized hybrid nanomaterial was employed as an electrode modifier in the fabrication of a modified screen-printed carbon electrode (SPCE) and used for the simultaneous electrochemical sensing of key environmental pollutants such as hydroquinone (HQ) and catechol (CAT). The developed sensor exhibited linearity in the range of 0–100 µM for both HQ and CAT, with sensitivity values of 2640 µA·mM−1·cm−2 for HQ and 5120 µA·mM−1·cm−2 for CAT. The limits of detection (LOD) were 1.5 µM for HQ and 0.72 µM for CAT, respectively. The synergistic enhancement of electron transfer kinetics, the increased electroactive surface area, the strong anti-interference capability, and excellent reproducibility and stability establish these modified electrodes as promising candidates for environmental monitoring and real sample analysis. Full article
(This article belongs to the Section Physical Chemistry)
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15 pages, 1135 KB  
Article
Antimicrobial PLA-Based Composite Gels with Improved Functional Properties for Food Packaging
by Ioan Sarosi, Gertrud Alexandra Paltinean, Andrei Moldovan, Stanca Cuc, Rahela Carpa, Codruta Sarosi, Rami Doukeh, Ancuta-Elena Tiuc and Ovidiu Nemes
Gels 2026, 12(3), 194; https://doi.org/10.3390/gels12030194 - 26 Feb 2026
Cited by 1 | Viewed by 1087
Abstract
Biodegradable polymeric materials with antimicrobial functionality are increasingly explored as sustainable alternatives for food packaging. This study developed multifunctional PLA-based composite films containing controlled concentrations of active agents and evaluated their structural, mechanical, thermal, and antimicrobial properties. Five formulations were prepared: a reference [...] Read more.
Biodegradable polymeric materials with antimicrobial functionality are increasingly explored as sustainable alternatives for food packaging. This study developed multifunctional PLA-based composite films containing controlled concentrations of active agents and evaluated their structural, mechanical, thermal, and antimicrobial properties. Five formulations were prepared: a reference PLA/glycerol diacetate blend (85/15 wt. %) and four composites with 0.5 wt. % functional fillers—grape pomace, silver–graphene oxide (GO-Ag), titanium dioxide–graphene oxide (GO-TiO2), or graphene oxide (GO)—with PLA adjusted to 84.5 wt. %. The films were characterized for antimicrobial activity, tensile strength, hardness (Vickers test), morphology (SEM), and thermal behavior (DSC). Mechanical testing revealed statistically significant differences (p < 0.05), with Vickers hardness increasing from neat PLA (13.77) to 0.5% grape pomace (16.30) and nanofiller composites (GO–Ag 18.59, GO 19.56, GO–TiO2 22.7), demonstrating enhanced stiffness and efficient load transfer. Incorporation of Ag and TiO2 shifted endothermic transitions to higher temperatures, particularly in PLA-GT (~140 °C), indicating improved thermal stability, while neat PLA and PLA-GP showed multiple or intermediate transitions (86–92 °C). Antibacterial performance was strongly influenced by composition and surface characteristics, with PLA-GA, PLA-GT, and PLA-GO showing the greatest efficacy. These findings demonstrate that bioactive and nanostructured fillers can effectively enhance the mechanical, thermal, and antimicrobial properties of PLA, highlighting their potential for sustainable, functional food packaging applications. Full article
(This article belongs to the Special Issue State-of-the-Art Food Gels)
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14 pages, 3130 KB  
Article
Noble Metal-Doped Perovskite–GO Hybrids as Efficient Electrocatalysts for Alkaline Water Electrolysis
by Bogdan-Ovidiu Taranu, Paula Svera, Doru Buzatu, Maria Poienar and Paula Sfirloaga
Nanomaterials 2026, 16(2), 107; https://doi.org/10.3390/nano16020107 - 14 Jan 2026
Cited by 1 | Viewed by 926
Abstract
Water electrolysis using electricity generated from renewable sources is a promising approach for producing green hydrogen. However, this process requires the development of electrocatalysts that are not only highly active and durable but also low-cost. Considerable efforts are being directed toward discovering and [...] Read more.
Water electrolysis using electricity generated from renewable sources is a promising approach for producing green hydrogen. However, this process requires the development of electrocatalysts that are not only highly active and durable but also low-cost. Considerable efforts are being directed toward discovering and optimizing such materials, and this study contributes to the ongoing research in this area. In this work, three novel LaMnO3 perovskite–graphene oxide hybrids—namely LaMnO3/GO, Ag-doped LaMnO3/GO, and Pd-doped LaMnO3/GO—were synthesized and investigated for their electrocatalytic activity in water electrolysis under strongly alkaline conditions. To the best of our knowledge, these hybrid materials have not been previously reported in the context of electrocatalytic water splitting. Among the electrodes fabricated and tested for the hydrogen evolution reaction (HER), the one based on a catalyst ink containing Pd-doped LaMnO3/GO mixed with carbon black showed the best performance, achieving a low overpotential of 0.385 V at a current density of −10 mA/cm2. It also demonstrated good stability in the alkaline electrolyte and exhibited a Tafel slope of 0.34 V. These findings highlight the potential of the studied materials as effective and previously unreported electrocatalysts for water splitting. Full article
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16 pages, 3139 KB  
Article
Multifunctional GO-Based Hydrogels with Various Inorganic Additives for Oral Health and Photodynamic Activation
by Codruta Sarosi, Marioara Moldovan, Ioan Petean, Miuta Filip, Gabriel Furtos, Sonia Balint, Rahela Carpa and Andrei Cristian Ionescu
Gels 2026, 12(1), 46; https://doi.org/10.3390/gels12010046 - 1 Jan 2026
Viewed by 852
Abstract
In this study, we present the synthesis and characterization of graphene oxide (GO)-based hydrogels reinforced with hydroxyapatite (HA), titanium dioxide (TiO2), zinc oxide (ZnO), silicon oxide (SiO2), silver (Ag), and graphitic carbon nitride (g-C3N4). The [...] Read more.
In this study, we present the synthesis and characterization of graphene oxide (GO)-based hydrogels reinforced with hydroxyapatite (HA), titanium dioxide (TiO2), zinc oxide (ZnO), silicon oxide (SiO2), silver (Ag), and graphitic carbon nitride (g-C3N4). The aim is to develop multifunctional hydrogels with enhanced structural and biological performance and photocatalytic activity, opening the way for applications in regenerative medicine. The structure and composition of the hydrogels were investigated using FTIR and UV–Vis spectroscopy, which highlighted the chemical interactions between GO and the incorporated nanoparticles. The morphology was analyzed through scanning electron microscopy (SEM) and metallographic optical microscopy (MOM), confirming a uniform distribution of the inorganic phases and an internal architecture optimized for stability and bioactivity. Antibacterial activity was evaluated against Gram-positive and Gram-negative strains, both in the absence and presence of photodynamic therapy. The latter was activated by a Woodpecker laser at a 420 nm wavelength. The results showed significant bacterial inhibition, further enhanced by laser exposure, suggesting a synergistic effect between photocatalytic activation and the hydrogel components. Overall, the obtained hydrogels demonstrate robust mechano-structural properties and promising biological activity, supporting their potential for innovative biomedical applications in the tissue regeneration field and for the emerging biofunctional technologies. Full article
(This article belongs to the Special Issue Gels for Oral, Maxillofacial, Dental Medicine or Cosmetic Use)
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42 pages, 35755 KB  
Article
A Guide for Industrial Needleless Electrospinning of Synthetic and Hybrid Nanofibers
by Baturalp Yalcinkaya and Matej Buzgo
Polymers 2025, 17(22), 3019; https://doi.org/10.3390/polym17223019 - 13 Nov 2025
Cited by 17 | Viewed by 2813
Abstract
This study presents a comprehensive investigation into the large-scale production of synthetic and hybrid (nanoparticle-loaded) nanofibers using needleless electrospinning. A diverse range of polymers, including polyamide 6 (PA6) and its other polymer combinations, recycled PA6, polyamide 11 (PA11), polyamide 12 (PA12), polyvinyl butyral [...] Read more.
This study presents a comprehensive investigation into the large-scale production of synthetic and hybrid (nanoparticle-loaded) nanofibers using needleless electrospinning. A diverse range of polymers, including polyamide 6 (PA6) and its other polymer combinations, recycled PA6, polyamide 11 (PA11), polyamide 12 (PA12), polyvinyl butyral (PVB), polycaprolactone (PCL), polyacrylonitrile (PAN), polyvinylidene fluoride (PVDF), polyurethane (PU), polyvinyl alcohol (PVA), and cellulose acetate (CA), were utilized to fabricate nanofibers with tailored properties such as polymer solution concentrations and various solvent systems. Furthermore, an extensive variety of nano- and micro-particles, including TiO2, ZnO, MgO, CuO, Ag, graphene oxide, CeO2, Er2O3, WO3, MnO2, and hyperbranched polymers, were incorporated into the polymeric systems to engineer multifunctional nanofibers with enhanced structural characteristics. The study examines the impact of polymer–nano/micro-particle interactions, fiber morphology, and the feasibility of large-scale production via needleless electrospinning. The resulting nanofibers exhibited diameters starting from 80 nm, depending on the polymer and processing conditions. The incorporation of TiO2, CeO2, WO3, Ag, and ZnO nanoparticles into 15% PA6 solutions yielded well-dispersed hybrid nanofibers. By providing insights into polymer selection, nano- and micro-particle integration, and large-scale production techniques, this work establishes a versatile platform for scalable hybrid nanofiber fabrication, paving the way for innovative applications in nanotechnology and materials science. Full article
(This article belongs to the Special Issue Fiber Spinning Technologies and Functional Polymer Fiber Development)
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19 pages, 2855 KB  
Article
Structural, Adsorptive, and Antibacterial Properties of a Novel Silver (Diethyldithiocarbamate)-Decorated Reduced Graphene Oxide Nanocomposite for Sustainable Wastewater Treatment
by Adel Sayari, Hichem Chouayekh, Slim Smaoui, Wajdi Ayadi, Faten M. Ali Zainy, Ahmed S. Badr El-din, Abeer H. Aljadaani, Aida Hmida-Sayari and Amr A. Yakout
Nanomaterials 2025, 15(22), 1709; https://doi.org/10.3390/nano15221709 - 12 Nov 2025
Viewed by 995
Abstract
Eco-friendly silver nanoparticle systems are highly effective due to their large surface area and strong adsorption capacity. In this study, a novel silver (diethyldithiocarbamate)-decorated reduced graphene oxide nanocomposite (Ag(DDTC)@rGO) was synthesized via a simple green method, yielding a stable and monodispersed material. SEM [...] Read more.
Eco-friendly silver nanoparticle systems are highly effective due to their large surface area and strong adsorption capacity. In this study, a novel silver (diethyldithiocarbamate)-decorated reduced graphene oxide nanocomposite (Ag(DDTC)@rGO) was synthesized via a simple green method, yielding a stable and monodispersed material. SEM and HRTEM analyses revealed uniform anchoring of the Ag(DDTC) complex on rGO, producing a coherent nanocomposite with strong physicochemical coupling. The Ag(DDTC)@rGO nanocomposite exhibited a high Brunauer–Emmett–Teller (BET) surface area (289 m2 g−1) with an average pore diameter of 45 nm, confirming the mesoporous nature of the composite. FTIR spectra showed characteristic bands of rGO and DDTC ligands, with new peaks at 620–640 cm−1 confirming the successful anchoring of silver–diethyldithiocarbamate species onto rGO via Ag–S and Ag–O bond formation. Raman spectroscopy further confirmed the multilayered rGO structure after Ag(DDTC) incorporation. X-ray diffraction (XRD) identified a broad hybrid amorphous–crystalline pattern, favorable for catalytic and sensing functions. The superior malachite green adsorption capacity of Ag(DDTC)@rGO was attributed to synergistic electrostatic, π–π stacking, hydrogen bonding, and silver-mediated interactions. Furthermore, antibacterial assays demonstrated significant inhibition of P. aeruginosa ATCC 9027 and S. enterica ATCC 14028, further enhanced by mild heat activation (40–50 °C) that significantly improved the surface activation of silver nanoparticles. The multifunctional Ag(DDTC)@rGO nanocomposite exhibits strong adsorption and antibacterial properties, highlighting its potential for sustainable wastewater treatment and environmental remediation applications. Full article
(This article belongs to the Section Nanocomposite Materials)
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32 pages, 5875 KB  
Systematic Review
Thermally Conductive Biopolymers in Regenerative Medicine and Oncology: A Systematic Review
by Ivett Poma-Paredes, Oscar Vivanco-Galván, Darwin Castillo-Malla and Yuliana Jiménez-Gaona
Pharmaceuticals 2025, 18(11), 1708; https://doi.org/10.3390/ph18111708 - 11 Nov 2025
Cited by 1 | Viewed by 1365
Abstract
Background: Minimally invasive hyperthermia and regenerative therapies require materials that deliver precise, localized heat without compromising biocompatibility. Most conventional polymers are thermally insulating and challenging to control in vivo, motivating this review. Objectives: We aimed to (i) examine the use of thermally enhanced [...] Read more.
Background: Minimally invasive hyperthermia and regenerative therapies require materials that deliver precise, localized heat without compromising biocompatibility. Most conventional polymers are thermally insulating and challenging to control in vivo, motivating this review. Objectives: We aimed to (i) examine the use of thermally enhanced biopolymers in hyperthermia-based therapies, (ii) appraise evidence from clinical and preclinical studies, (iii) identify and classify principal applications in regenerative medicine. Methods: A PRISMA-guided systematic review (2020–2025) with predefined inclusion/exclusion criteria was conducted and complemented by a bibliometric analysis using VOSviewer for mapping and visualization. Results: Modifying biopolymers—via functionalization with photothermal or magnetic nanoagents (Au; Fe2O3/Fe3O4/CoFe2O4; CuS; Ag; MXenes, e.g., Nb2C), crosslinking strategies, and hybrid formulations—significantly increased thermal conductivity, enabling localized hyperthermia and controlled drug release. In vitro and in vivo studies showed that europium-doped iron oxide nanoparticles embedded in chitosan generated heat efficiently while sparing healthy tissues, underscoring the need to balance biocompatibility and thermal performance. Hydrogel systems enriched with carbon nanomaterials (graphene, carbon nanotubes) and matrices such as GelMA, PNIPAM, hyaluronic acid, and PLA/PLGA demonstrated tissue compatibility and effective thermal behavior; graphene was compatible with neural tissue without inducing inflammation. Conclusions: Thermally conductive biopolymers show growing potential for oncology and regenerative medicine. The evidence supports further academic and interdisciplinary research to optimize safety, performance, and translational pathways. Full article
(This article belongs to the Section Pharmacology)
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17 pages, 3361 KB  
Article
Synergistic Regulation of Ag Nanoparticles and Reduced Graphene Oxide in Boosting TiO2 Microspheres Photocatalysis for Wastewater Treatment
by Guoshuai Ma, Zhijian An, Yinqi Yang, Wei Wang, Yao Wang, Shuting Tian, Jingwen Gao, Xue-Zhong Gong, Laurence A. Belfoire and Jianguo Tang
Nanomaterials 2025, 15(19), 1510; https://doi.org/10.3390/nano15191510 - 2 Oct 2025
Cited by 9 | Viewed by 1656
Abstract
Dye-contaminated wastewater has become one of the most severe environmental challenges due to the non-biodegradability and toxicity of synthetic dyes. While photocatalytic degradation is considered a green and efficient technology for wastewater purification, conventional TiO2 suffers from limited light utilization and rapid [...] Read more.
Dye-contaminated wastewater has become one of the most severe environmental challenges due to the non-biodegradability and toxicity of synthetic dyes. While photocatalytic degradation is considered a green and efficient technology for wastewater purification, conventional TiO2 suffers from limited light utilization and rapid electron–hole recombination. In this exploration, Ag-TiO2-RGO nanocomposites were successfully fabricated and systematically investigated by XRD, SEM, TEM, XPS, Raman, and PL spectroscopy. The incorporation of Ag nanoparticles and reduced graphene oxide (RGO) synergistically improved charge separation and transfer efficiency. Photocatalytic activity was evaluated using different dyes as pollutants under visible light irradiation. Among the samples, Ag-TiO2-RGO-3% exhibited the highest RhB degradation efficiency of 99.5% within 75 min, with a rate constant (K) of 0.05420 min−1, which was nearly three times higher than that of pure TiO2. The photocatalyst also showed excellent reusability with only minor efficiency loss after five cycles, and its activity remained stable across a wide pH range. Radical trapping experiments revealed that •O2 served as the dominant reactive species, with additional contributions from •OH and photogenerated holes (h+). A possible photocatalytic mechanism was proposed, in which Ag nanoparticles and RGO effectively suppressed electron–hole recombination and accelerated the formation of reactive oxygen species for efficient dye mineralization. These findings demonstrate that Ag-TiO2-RGO-3% is a promising photocatalyst with high activity, stability, and environmental adaptability for wastewater remediation. Full article
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