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35 pages, 4991 KB  
Review
Advanced Multifunctional Optical Coatings for Transparent Glazing: Materials Chemistry, Microstructure, Structure–Property Relationships, and Greenhouse Applications—A Review
by L. Vijayalakshmi, K. Naveen Kumar, Kishor Palle and Jiseok Lim
Int. J. Mol. Sci. 2026, 27(17), 7750; https://doi.org/10.3390/ijms27177750 - 29 Aug 2026
Viewed by 200
Abstract
Transparent glazing systems are increasingly required to provide simultaneous control over light transmission, solar heat gain, thermal losses, surface contamination, and environmental durability, creating new challenges for the development of multifunctional coating technologies. This review critically examines advanced optical and self-cleaning coatings developed [...] Read more.
Transparent glazing systems are increasingly required to provide simultaneous control over light transmission, solar heat gain, thermal losses, surface contamination, and environmental durability, creating new challenges for the development of multifunctional coating technologies. This review critically examines advanced optical and self-cleaning coatings developed for transparent glass and polymeric substrates, with particular emphasis on the relationships between materials chemistry, surface/interface chemistry, microstructure, and functional performance. Dielectric multilayers, metal oxides, ceramic coatings, sol-gel-derived hybrid systems, and emerging chromogenic materials are discussed in terms of their chemical compositions, structural characteristics, and mechanisms governing optical, thermal, and surface properties. Particular attention is given to structure–property relationships associated with photosynthetically active radiation (PAR) transmission, near-infrared (NIR) management, thermal emissivity, solar modulation, wettability, and self-cleaning behavior, together with their implications for energy-efficient transparent glazing and greenhouse environments. The influence of coating architecture, porosity, surface roughness, interfacial interactions, and deposition conditions on functional performance and long-term stability is critically evaluated. The advantages and limitations of representative deposition strategies are further compared, considering scalability, process compatibility, substrate sensitivity, and application to heat-sensitive polymeric films. Environmental degradation mechanisms induced by ultraviolet irradiation, moisture, thermal cycling, and mechanical stresses are analyzed to identify the key factors governing coating durability and sustainability. Finally, current knowledge gaps and emerging research directions are identified, highlighting the need for rational materials design, multifunctional integration, scalable fabrication, and improved structure-property-durability correlations for next-generation transparent glazing and greenhouse applications. Full article
(This article belongs to the Special Issue Latest Advances in Novel Luminescent Materials)
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34 pages, 5426 KB  
Review
A Review on the Preparation Methods and Corrosion Behavior of Graphene-Coated Aluminum
by Peng Yang, Zhe Ni, Jie Yan, En Zhang and Jin Zhang
Metals 2026, 16(9), 949; https://doi.org/10.3390/met16090949 - 28 Aug 2026
Viewed by 82
Abstract
Aluminum and its alloys feature low weight and high strength. They are widely applied in aerospace, automobile manufacturing, and marine engineering. However, they are highly susceptible to localized corrosion. Such defects can severely restrict the service life of the substrate materials. Pristine graphene [...] Read more.
Aluminum and its alloys feature low weight and high strength. They are widely applied in aerospace, automobile manufacturing, and marine engineering. However, they are highly susceptible to localized corrosion. Such defects can severely restrict the service life of the substrate materials. Pristine graphene exhibits atomic-level compact impermeability, stable chemical inertness, and excellent mechanical properties. It is a promising candidate material for the protection of aluminum substrates. Nevertheless, an electrically insulating interlayer is generally required between pristine graphene and aluminum to achieve reliable protection. This measure avoids the risk of galvanic corrosion. This paper systematically reviews the latest research progress of graphene-based coatings on aluminum, focusing on pristine graphene, graphene oxide (GO), reduced graphene oxide (rGO), and graphene-polymer composite coatings. It focuses on the preparation methods and corrosion protection performance of the materials. This study compares various mainstream preparation technologies in detail. The technologies include chemical vapor deposition, electrochemical deposition, mechanical exfoliation, solution coating, laser induction, and thermal spraying. The corrosion protection mechanism is discussed from three dimensions. The dimensions include physical barrier effect, tortuous path mechanism, and electrochemical protection. Key influencing factors, such as coating defects and environmental conditions, are also investigated. This paper summarizes the application potential of graphene-based coated aluminum in high-end manufacturing fields. It points out the major existing challenges of the material. The challenges involve coating uniformity, adhesion strength, long-term stability, and industrial production. Finally, future research directions are proposed in this work. These directions include the development of innovative coating technologies, the construction of composite protection systems, the design of intelligent self-healing functions, and the exploration of environmentally friendly preparation processes. Full article
36 pages, 1187 KB  
Review
Silicon Nitride Coatings on Titanium for Cardiovascular Applications: Interface Engineering, Hemocompatibility, and Translational Challenges
by Oktawian Bialas
Materials 2026, 19(17), 3668; https://doi.org/10.3390/ma19173668 - 28 Aug 2026
Viewed by 112
Abstract
Titanium and its alloys are widely used in cardiovascular devices because of their favorable mechanical properties, corrosion resistance, and biocompatibility. Nevertheless, their surfaces do not fully prevent nonspecific protein adsorption, platelet activation, thrombosis, bacterial colonization, or long-term degradation under physiological conditions. Silicon-nitride-based (SiN [...] Read more.
Titanium and its alloys are widely used in cardiovascular devices because of their favorable mechanical properties, corrosion resistance, and biocompatibility. Nevertheless, their surfaces do not fully prevent nonspecific protein adsorption, platelet activation, thrombosis, bacterial colonization, or long-term degradation under physiological conditions. Silicon-nitride-based (SiNx) coatings represent a promising strategy for addressing these limitations by combining chemical stability, mechanical durability, hemocompatibility, and antibacterial activity. This review critically examines silicon-nitride-based (SiNx) coatings on titanium for cardiovascular applications, focusing on deposition technologies, interfacial phenomena, surface characteristics, and biological performance. Particular attention is given to physical vapor deposition parameters, coating adhesion, residual stresses, interfacial reactions, corrosion resistance, and mechanical stability. Relationships between surface chemistry, wettability, protein adsorption, platelet response, hemolysis, and cellular behavior are discussed, alongside the effects of static and dynamic testing conditions. SiNx is also compared with Au, TiN, TiO2, ZrN, and silicon carbide-based coatings. Despite encouraging in vitro results, clinical translation remains limited by insufficient standardization, scarce long-term and flow-dependent data, and an incomplete understanding of degradation mechanisms. Future studies should integrate interface engineering with microfluidic models, standardized hemocompatibility testing, artificial intelligence-assisted optimization of process–structure–property–biological response relationships, and regulatory considerations to support the safe clinical translation of SiNx-coated cardiovascular devices. Full article
(This article belongs to the Special Issue Protective Coatings for Metallic Materials)
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29 pages, 8840 KB  
Review
A Review of Fatigue Performance Research on Aluminum Alloy Forming, Heat Treatment, Additive Manufacturing and Surface Modification Technologies
by Baicheng Liu, Hongliang Zhang, Shenghan Li, Yurii Luhovskyi and Zhisheng Nong
Crystals 2026, 16(9), 559; https://doi.org/10.3390/cryst16090559 - 27 Aug 2026
Viewed by 232
Abstract
Aluminum alloy is a lightweight, high-strength material based on aluminum matrix with the addition of elements such as copper, magnesium, silicon, zinc, manganese, or lithium. Featuring low density, high specific strength, excellent formability, and outstanding corrosion resistance, it is widely applied in the [...] Read more.
Aluminum alloy is a lightweight, high-strength material based on aluminum matrix with the addition of elements such as copper, magnesium, silicon, zinc, manganese, or lithium. Featuring low density, high specific strength, excellent formability, and outstanding corrosion resistance, it is widely applied in the fields of aerospace, rail transit, automotive lightweighting, and additive manufacturing. In the aerospace sector, fatigue failure constitutes the primary failure mode of load-bearing components. This paper reviews the influence mechanisms of various strengthening technologies, namely shot peening (SP), laser shock processing (LSP), physical vapor deposition (PVD), micro-arc oxidation (MAO), anodic oxidation (ANO), additive manufacturing, casting, extrusion, and heat treatment, on the fatigue properties of aluminum alloys; analyzes the regulatory effects of process principles, coating compositions, and microstructures (grains, phase composition, and interfacial bonding) on crack initiation and propagation; discusses the synergistic effect between plastic deformation strengthening and coating functionality; summarizes the key material and process factors affecting the fatigue life of aluminum alloys; and finally prospects the technical development trends driven by high-reliability service requirements. Full article
(This article belongs to the Section Crystalline Metals and Alloys)
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16 pages, 15391 KB  
Article
3D-Printed Biomimetic Sponge-Based Broadband and Highly Efficient Terahertz Absorber
by Pei-Di Yang
Photonics 2026, 13(9), 809; https://doi.org/10.3390/photonics13090809 - 24 Aug 2026
Viewed by 220
Abstract
With the rapid advancement of terahertz technology, electromagnetic interference has become a critical issue that compromises device performance, creating an urgent demand for high-performance terahertz absorbers. Three-dimensional (3D) printing, characterized by flexible structural design, monolithic fabrication, and mold-free processing, has emerged as a [...] Read more.
With the rapid advancement of terahertz technology, electromagnetic interference has become a critical issue that compromises device performance, creating an urgent demand for high-performance terahertz absorbers. Three-dimensional (3D) printing, characterized by flexible structural design, monolithic fabrication, and mold-free processing, has emerged as a promising technique for producing terahertz absorbers. In this work, inspired by the structural and functional characteristics of deep-sea sponges, we propose a bioinspired absorber design that integrates a porous topology with 3D printing. By optimizing the rotation angle and the hollowed array, the absorber establishes multiple internal reflection paths, which, combined with the structural matrix and the graphene conductive coating, enable highly efficient dissipation of electromagnetic energy. Experimental results show that the fabricated sample achieves an absorptivity exceeding 99% over the 0.5–2.0 THz frequency range, while also exhibiting wide-angle absorption and polarization-insensitive performance. The influence of pore size and graphene concentration on the absorption properties is systematically revealed. This work further enhances the performance of 3D-printed terahertz absorbers and provides a novel technical pathway for the design and fabrication of high-performance terahertz absorbers. Full article
(This article belongs to the Special Issue Novel Developments in Optoelectronic Materials and Devices)
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23 pages, 1473 KB  
Review
Polyvinylidene Fluoride-Based Membranes: Syntheses, Modifications, and Applications in Anaerobic Membrane Bioreactors
by Xiang Li, Jia-Ning Chen, Hong-Ming Wu, Qijie Jin, Xueying Zhang and Yong Hu
Processes 2026, 14(17), 2700; https://doi.org/10.3390/pr14172700 - 24 Aug 2026
Viewed by 285
Abstract
Owing to advantageous properties such as high mechanical strength and wear and hydrolysis resistance, polyvinylidene fluoride (PVDF)-based materials have been widely used to fabricate membranes utilizing in anaerobic membrane bioreactors (AnMBRs) for wastewater treatment. Though AnMBRs can be regarded as high-rate bioreactors, membrane [...] Read more.
Owing to advantageous properties such as high mechanical strength and wear and hydrolysis resistance, polyvinylidene fluoride (PVDF)-based materials have been widely used to fabricate membranes utilizing in anaerobic membrane bioreactors (AnMBRs) for wastewater treatment. Though AnMBRs can be regarded as high-rate bioreactors, membrane fouling caused by organic, inorganic, and biological contaminants remains an inevitable challenge. In order to alleviate this issue, this review systematically summarizes modification methods including crosslinking, surface coating, and assembly for the loading of functional materials and inorganic nanoparticles onto the membrane surface. Additionally, this review indicates that modified PVDF-based membranes with enhanced conductive or antifouling properties can be effectively applied in AnMBRs, and better chemical oxygen demand (COD) removal efficiency can be achieved compared with those utilizing pristine PVDF membranes. Different from previous reviews, this review proposes technology intensification strategies utilizing pristine PVDF membranes including electrochemical AnMBR (electro-AnMBR) and anaerobic fluidized bed membrane bioreactor (AFMBR). Both of them have demonstrated enormous potential for mitigating membrane fouling relative to conventional AnMBR configurations. Spontaneously, this review underscores the critical need to integrate these intensification strategies with modified PVDF-based membranes as relative studies in this combined area. Therefore, this review provides comprehensive guidance on modification methods of PVDF membranes and technology intensification strategies utilizing modified PVDF-based membranes. Full article
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28 pages, 4917 KB  
Review
Nanomaterial-Modified Antibacterial Membranes for Water Treatment: From Dimensional Classification and Modification Strategies to Antimicrobial Mechanisms
by Lu Pei, Bingrong Wang, Yutong Zheng, Yang Liu, Yang Zhou and Xiangdong Zeng
Membranes 2026, 16(9), 282; https://doi.org/10.3390/membranes16090282 - 24 Aug 2026
Viewed by 454
Abstract
Membrane separation technology is extensively used in water treatment. However, during long-term operation, biofouling caused by bacteria and other microorganisms significantly limits the service life of membranes. Introducing antibacterial nanomaterials onto the membrane surface or into the internal structure is an effective way [...] Read more.
Membrane separation technology is extensively used in water treatment. However, during long-term operation, biofouling caused by bacteria and other microorganisms significantly limits the service life of membranes. Introducing antibacterial nanomaterials onto the membrane surface or into the internal structure is an effective way to combat biofouling. This review systematically summarizes recent progress in antibacterial membranes modified with different nanomaterials. First, we classify antibacterial nanomaterials by dimensionality and highlight their physicochemical properties and effects on overall membrane performance. Furthermore, we summarize the advantages, disadvantages, and applicability of three antibacterial nanomaterial modification strategies for membranes, including surface coating, grafting, and blending. Subsequently, we analyze in depth the main antibacterial mechanisms that enhance membrane performance, including metal ion release, reactive oxygen species oxidation, physical contact disruption, and anti-adhesion, as well as their synergistic effects. Finally, we critically evaluate the remaining challenges, such as interfacial compatibility between nanomaterials and polymers, controlled release of metal ions, and environmental safety. This review provides a reference for the rational design of high-performance antibacterial membranes. Full article
(This article belongs to the Special Issue Novel Membrane Materials and Membrane Modification)
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26 pages, 7430 KB  
Review
A Review of Recent Advances in Conversion and Self-Assembled Anti-Corrosion Films for Copper and Its Alloys
by Kangwei Gongsun, Xiang Gao, Changfeng Zhao and Houyi Ma
Molecules 2026, 31(16), 2869; https://doi.org/10.3390/molecules31162869 - 17 Aug 2026
Viewed by 225
Abstract
Copper and its alloys are indispensable for electronics, communications, new energy systems, and aerospace engineering due to their exceptional electrical conductivity and mechanical properties. However, the thin cuprous oxide (Cu2O) layer that naturally forms on copper and its alloys is prone [...] Read more.
Copper and its alloys are indispensable for electronics, communications, new energy systems, and aerospace engineering due to their exceptional electrical conductivity and mechanical properties. However, the thin cuprous oxide (Cu2O) layer that naturally forms on copper and its alloys is prone to failure under elevated temperatures and high humidity, particularly in chloride-rich environments, leading to accelerated localized corrosion. While conventional chromate-based passivation has long been the industrial standard for preventing corrosion, its use has been increasingly restricted by global regulations (such as RoHS and REACH) due to its severe toxicity and health risks. To address the conflict between environmental compliance and protective performance, this review systematically evaluates recent advances in environmentally friendly, chromium-free anti-corrosion coatings in the present review. These alternative coatings are critically analyzed and categorized into four mechanistic groups: (i) inorganic conversion coatings (including molybdate, tungstate, rare earth, and phosphate systems); (ii) organic films formed via chemical or physical adsorption (such as organic inhibitors, thiol-based monolayers, and organosilane self-assembled films); (iii) conversion coatings engineered through covalent bonding, coordination chemistry, and microstructural tailoring; and (iv) multifunctional coatings that integrate self-healing capability with high electrical conductivity. Beyond providing a technical summary, this review explored how the swift progression of electronic information technology, new energy infrastructure, and robotics has imposed more exacting, multifunctional demands on copper components. This review provides a strategic roadmap for future research and prioritizes the creation of protection strategies that operate robustly in multi-physics coupling environments—integrating high conductivity, autonomous self-healing, and long-term chemical stability to ensure the reliability of next-generation infrastructure. Full article
(This article belongs to the Special Issue Advancements in Electrochemistry and Corrosion Protection)
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53 pages, 7585 KB  
Review
Hydrophobic and Superhydrophobic Coatings: Materials, Fabrication Strategies, and Durability Challenges
by Natalia A. Shapagina and Vladimir V. Dushik
Int. J. Mol. Sci. 2026, 27(16), 7323; https://doi.org/10.3390/ijms27167323 - 16 Aug 2026
Viewed by 546
Abstract
Hydrophobic and superhydrophobic coatings have attracted considerable attention due to their ability to provide water repellency, self-cleaning, anti-corrosion, anti-icing, and anti-fouling properties, making them promising for a wide range of industrial applications. This review summarizes recent advances in the development of hydrophobic and [...] Read more.
Hydrophobic and superhydrophobic coatings have attracted considerable attention due to their ability to provide water repellency, self-cleaning, anti-corrosion, anti-icing, and anti-fouling properties, making them promising for a wide range of industrial applications. This review summarizes recent advances in the development of hydrophobic and superhydrophobic coatings, with particular emphasis on wetting mechanisms, material selection, coating formation approaches, durability issues, commercial implementation, and environmental aspects. The analysis examines the principal classes of materials used for coating fabrication, including polymeric materials, inorganic compounds, and composite systems. The mechanisms responsible for the formation of hydrophobic and superhydrophobic surfaces are discussed in terms of surface chemistry modification and hierarchical roughness generation. Attention is devoted to factors limiting long-term performance, such as mechanical wear, chemical degradation, ultraviolet exposure, climatic effects, hydrodynamic erosion, and adhesion-related failures, as well as to current strategies for improving durability. Commercially available technologies and their application areas are reviewed, and the environmental challenges associated with fluorinated compounds are considered. The analysis demonstrates that the combination of controlled surface morphology and reduced surface energy remains an effective approach for achieving durable hydrophobicity, with optimized coating systems reaching contact angles of 160–170° and retaining superhydrophobic properties for more than 500 h under demanding operating conditions. Future developments are expected to focus on environmentally friendly, multifunctional, and long-lasting coating systems. Full article
(This article belongs to the Special Issue Inorganic Chemistry: From Molecules to Materials)
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33 pages, 13349 KB  
Review
A Critical Review of the Tensile Strength and Industrial Properties of Cellulose Nanofiber Films for Structural Components: Land Repair Applications for Sustainable Human Society
by Fumio Ogawa and Toshiyuki Hashida
Sustainability 2026, 18(16), 8315; https://doi.org/10.3390/su18168315 - 13 Aug 2026
Viewed by 307
Abstract
The Earth’s environment is deteriorating, and biodiversity is declining. The use of plant-based cellulose nanofibers (CNFs) as structural materials can reduce environmental impact, and further technological developments are anticipated. This review article introduces types of cellulose derived from wood, weeds, bamboo, and fruits, [...] Read more.
The Earth’s environment is deteriorating, and biodiversity is declining. The use of plant-based cellulose nanofibers (CNFs) as structural materials can reduce environmental impact, and further technological developments are anticipated. This review article introduces types of cellulose derived from wood, weeds, bamboo, and fruits, and examines the potential technological applications of CNFs. It is hypothesized that maintaining an appropriate content of Mn, Ca, and O—including the interactions of Ca within carbon-based structures—could contribute to plant health, while the exclusion of elements such as V, Cd, and Sn (regardless of the effectiveness of partial sequestration) could promote cell activity. Calcium deposition can influence wood growth depending on the elemental composition in the bark, and a hypothesis regarding pH adjustment for shoot formation is proposed (see textbook on inorganic chemistry). Furthermore, manufacturing processes for CNFs and their mechanical properties—including evaluation methods—are summarized. This overview focuses on nanostructures that exhibit heterogeneous functional and mechanical properties and offer potential benefits in reducing environmental impact through processes such as 3D printing and coating. CNFs derived from fruit peels can yield lightweight and durable materials. Furthermore, the roles of proteins and fruit-derived components in neutralizing acidic environments and reducing oxides are discussed. A concept is proposed that links the processing of fruit-peel-based materials with environmental applications such as forest restoration and combating desertification. The hypothesis is put forward that cytoplasmic activity and cell wall strengthening could be enhanced through chlorophyll-related processes and water transport mechanisms. Optimizing pH conditions could promote shoot formation in plants such as conifers. Sustainable greening can be achieved through the use of cellulose-based materials in combination with water-retaining components such as bamboo-derived resources. The interaction between CNFs, plant bark, and water-bound proteins can contribute to forest regeneration and the curbing of slash-and-burn practices. Overall, this approach can contribute to environmental remediation, the reduction of environmental impact, and urban greening in degraded regions. Full article
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19 pages, 23891 KB  
Article
Comparative Study of Laser and GMAW Technologies: Effects on Mechanical Strength and Salt Spray Corrosion Performance of SGH340D + ZMA Galvanized Automotive Steel
by Stefan Dikić, Hongqiang Liu, Dragomir Glišić, Jin Pan, Yongning Zhou, Nenad Radović and Cheng Ma
Metals 2026, 16(8), 899; https://doi.org/10.3390/met16080899 - 12 Aug 2026
Viewed by 267
Abstract
The aim of this work is to investigate the influence of different welding technologies on the mechanical properties and corrosion resistance of welded joints of SGH340D + ZMA steel with a Zn–Mg–Al (ZMA) protective coating. Two different welding technologies were used: the gas [...] Read more.
The aim of this work is to investigate the influence of different welding technologies on the mechanical properties and corrosion resistance of welded joints of SGH340D + ZMA steel with a Zn–Mg–Al (ZMA) protective coating. Two different welding technologies were used: the gas metal arc welding(GMAW) process at a welding speed of 0.8 m/min and laser welding at speeds of 2 and 4 m/min. Mechanical properties were determined using tensile testing and hardness testing. Corrosion resistance was estimated using a salt spray test. Residual stresses were determined experimentally using the drill hole method. The highest residual stresses were measured in GMAW-welded joints, while the lowest were measured in laser-welded joints at a speed of 4 m/min. The sample welded by laser at a speed of 4 m/min exhibited hardness values close to the upper acceptable limit, indicating that further increases in welding speed without preheating may lead to excessive hardness. All samples exhibited good corrosion resistance in a salt chamber. According to the results, increased welding speed reduced residual stresses but increased the risk of brittle fracture. Full article
(This article belongs to the Special Issue Recent Progress in Welding Technology for Metallic Materials)
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16 pages, 2165 KB  
Review
Patent Landscape Review of MXene Composites for Advanced Functional Materials
by Bhuvaneswari Venkateswaran and Balaji Devarajan
J. Compos. Sci. 2026, 10(8), 420; https://doi.org/10.3390/jcs10080420 - 10 Aug 2026
Viewed by 418
Abstract
MXene composites represent an exceptionally promising member of the family of two-dimensional multifunctional materials known for outstanding electrical properties, mechanical strength, chemical tuning abilities, and the potential for wide applications. The paper conducts a profound patent landscape investigation of MXene composites with the [...] Read more.
MXene composites represent an exceptionally promising member of the family of two-dimensional multifunctional materials known for outstanding electrical properties, mechanical strength, chemical tuning abilities, and the potential for wide applications. The paper conducts a profound patent landscape investigation of MXene composites with the help of the WIPO PATENTSCOPE database. In total, 658 patent families were found; duplicate patent entries were eliminated through the application of the Single Family Member method. The results show that China is a patent leader worldwide, followed by PCT applications and the patenting activity of the USA, India, and other countries, which indicates a growing international interest in MXene technologies and materials. The classification of patents also shows that this technology is actively researched in relation to the development of technologies in the field of electrochemical energy storage, polymer engineering, sensing technologies, catalysis, environmental remediation, electronics, and biomedical applications. Additionally, the paper studies the technology development in the field of the creation of MXene antennas, semiconductor devices, and ceramic oxide composites, materials that change shape, anti-corrosion coatings, electrochemical sensors, and many others. Even though substantial advances have been made, obstacles related to efficient manufacturing, oxidation resistance, quality assurance, sustainability, and industry adoption persist. The overall picture of patents shows that MXene-based composite materials have progressed from the testing stage to commercial products with high potential for next-generation technologies. Full article
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16 pages, 6343 KB  
Article
Sea Anemone-Inspired Fluorosilicone Polyurethane Coating with Synergistic Low-Surface-Energy and Cationic Antibacterial Action for Static Antifouling
by Shuiwang Jiang, Yuyi Zhu, Xiangfeng Chen, Hongyi Liu, Xuezhi Jiang, Yahao Zhang, Hui Gong, Ting Huang, Dengfeng Zeng and Quan Liu
Molecules 2026, 31(15), 2717; https://doi.org/10.3390/molecules31152717 - 5 Aug 2026
Viewed by 340
Abstract
Conventional polydimethylsiloxane (PDMS)-based antifouling coatings, despite their inherent fouling-release capability, exhibit critically insufficient antifouling performance under static seawater conditions. Inspired by the synergistic physical–chemical defense strategy of sessile marine organisms, specifically sea anemones, which combine a physical mucus barrier with antimicrobial peptide secretion, [...] Read more.
Conventional polydimethylsiloxane (PDMS)-based antifouling coatings, despite their inherent fouling-release capability, exhibit critically insufficient antifouling performance under static seawater conditions. Inspired by the synergistic physical–chemical defense strategy of sessile marine organisms, specifically sea anemones, which combine a physical mucus barrier with antimicrobial peptide secretion, the present work develops a multi-mechanism hybrid coating—designated as sea anemone-inspired fluorosilicone polyurethane—that integrates low-surface-energy physical antifouling and cationic antibacterial chemical antifouling. This coating system is constructed from silicone polyurethane (PDMS-PU), a cationic antibacterial moiety (PDMS-N+), and fluorinated functional monomers. Through systematic compositional optimization, an optimal formulation (P-4) is identified, which achieves a fracture elongation of 78.19%, a normal adhesion strength of approximately 2.5 MPa, a water contact angle of 120°, and a surface energy of 12.86 mN/m. Notably, its antibacterial rates against both Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus) exceed 95%. The resultant coating uniquely synergizes low surface energy, potent antibacterial activity, excellent mechanical properties, and thermal stability, thereby enabling long-term and stable antifouling performance in static seawater environments. This work provides a crucial technological foundation for the engineering application and industrialization of green, durable marine antifouling coatings. Full article
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19 pages, 14522 KB  
Article
Protective Pectin-Zinc-Thymol Coating to Minimize Salmonella Typhimurium, Enteritidis, and Montevideo in Cherry Tomatoes
by Ismael García-Vera, Carlos Arnulfo Velázquez-Carriles, Jorge L. Mejía-Méndez, Diego E. Navarro-López, Luis Miguel Anaya-Esparza, Martin Zermeño-Ruiz, Omar Graciano-Machuca, Luis Gilberto López-Muñoz and Jorge Manuel Silva-Jara
Polysaccharides 2026, 7(3), 91; https://doi.org/10.3390/polysaccharides7030091 - 4 Aug 2026
Viewed by 695
Abstract
Cherry tomatoes are highly susceptible to Salmonella contamination during pre- and post-harvest handling, leading to foodborne illness outbreaks and significant economic losses. Edible coatings incorporating natural antimicrobials offer a promising alternative to conventional chemical treatments for enhancing food safety while maintaining produce quality. [...] Read more.
Cherry tomatoes are highly susceptible to Salmonella contamination during pre- and post-harvest handling, leading to foodborne illness outbreaks and significant economic losses. Edible coatings incorporating natural antimicrobials offer a promising alternative to conventional chemical treatments for enhancing food safety while maintaining produce quality. This study developed and evaluated a pectin-based edible coating enriched with zinc nanohydroxide-thymol nanohybrids (ZnNH-T) for controlling Salmonella contamination and extending shelf-life of cherry tomatoes. ZnNH-T nanohybrids were synthesized via precipitation, followed by thymol intercalation, and characterized by SEM. Four coating formulations were prepared: pectin alone (P), pectin-thymol (PT), pectin-ZnNH (PNH), and pectin-ZnNH-T (PNHT). Antibacterial activity of the four coatings was first screened in vitro by disc diffusion against six S. enterica serovars; three serovars (Typhimurium, Enteritidis, and Montevideo) showing a statistically significant, coating-dependent inhibition response were selected for the postharvest assay. Cherry tomatoes were coated and dip-inoculated with three Salmonella serotypes (Typhimurium, Enteritidis, and Montevideo) at approximately 105 CFU/mL and stored at 25 °C for 12 days. Antimicrobial efficacy, antioxidant activity (ABTS assay), and physicochemical quality parameters (weight loss, color, pH, and total soluble solids) were evaluated. Zinc nanohydroxides were successfully synthesized, as observed in SEM morphology. ABTS radical scavenging activity of filmogenic solutions was highest for PT (92.4%) and moderate for PNHT (65.9%), while P and PNH showed minimal activity (20.1% and 17.8%, respectively). PNHT coating achieved an approximately 2-log CFU/g reduction in Salmonella populations compared to uncoated controls over 12 days of storage, demonstrating sustained antimicrobial efficacy. Coated tomatoes exhibited significantly reduced weight loss (8% for PNHT vs. 13% for control), better color retention, lycopene content, maintained firmness, and stable pH and TSS values compared to uncoated controls. The pectin-ZnNH-T coating system represents a novel multifunctional approach for enhancing cherry tomato safety and quality. The use of thymol from the layered hydroxide structure, combined with zinc ion antimicrobial effects, provides sustained pathogen reduction while maintaining desirable physicochemical properties. This natural, biodegradable coating technology has potential for commercial application in fresh produce preservation. Full article
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37 pages, 5273 KB  
Review
Effect of Niobium-Containing Metallic Powders on Microstructural Evolution, Mechanical Performance, and Corrosion Resistance: A Critical Review and Research Perspective
by Ricardo Luiz Perez Teixeira
Powders 2026, 5(3), 28; https://doi.org/10.3390/powders5030028 - 1 Aug 2026
Viewed by 276
Abstract
Metallic powder systems containing niobium play a key role in the development of advanced materials for structural, biomedical, energy, and surface-engineering applications. The incorporation of niobium into metallic powders influences particle behavior during processing, phase stability, microstructural evolution, and the resulting mechanical and [...] Read more.
Metallic powder systems containing niobium play a key role in the development of advanced materials for structural, biomedical, energy, and surface-engineering applications. The incorporation of niobium into metallic powders influences particle behavior during processing, phase stability, microstructural evolution, and the resulting mechanical and corrosion properties of consolidated materials. This review examines the scientific and technological advances related to niobium-containing metallic powders, covering powder production routes, particle characterization methods, processing techniques, and performance evaluation. Publications on powder metallurgy, additive manufacturing, thermal processing, surface modification, and corrosion-resistant materials were analyzed to identify relationships among powder characteristics, processing conditions, and material performance. The available evidence indicates that niobium contributes to grain refinement, precipitation control, microstructural stabilization, improved resistance to wear, and localized corrosion. The element also expands the applicability of metallic powders in functional coatings, biomaterials, engineered surfaces, and components manufactured from particulate feedstocks. Current challenges involve powder homogeneity, process reproducibility, economic considerations, and the prediction of long-term service behavior. The analysis highlights niobium’s contribution to the design of high-performance metallic powder systems and identifies research directions for developing materials with enhanced reliability and industrial applicability. Full article
(This article belongs to the Special Issue Recent Progress on Powder Materials for Additive Manufacturing)
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