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23 pages, 6936 KB  
Article
Technofunctional Properties and Proteomic Profiling of Sesame Cake Protein Isolates Obtained by Green Extraction Methods and Treated with Cold Plasma
by Emine Gizem Acar, Ozge Nur Ozturk, Celale Kırkın, Ekin Sonmez, Huseyin Cimen and Derya Kahveci
Molecules 2026, 31(15), 2638; https://doi.org/10.3390/molecules31152638 - 29 Jul 2026
Abstract
The demand for plant-based proteins has been steadily increasing; however, their functionality when applied in food product formulations requires comprehensive evaluation and, when necessary, deliberate modification to ensure that it mimics that of animal-derived proteins. In the present study, protein was extracted from [...] Read more.
The demand for plant-based proteins has been steadily increasing; however, their functionality when applied in food product formulations requires comprehensive evaluation and, when necessary, deliberate modification to ensure that it mimics that of animal-derived proteins. In the present study, protein was extracted from sesame cake, a by-product of sesame oil production, through conventional alkaline extraction, with or without ultrasound or enzymatic pretreatments. Cold plasma treatment was subsequently applied to sesame cake proteins (SCPs) to induce structural modifications. Both the extraction method and cold plasma treatment markedly influenced the compositional and technofunctional properties of the SCPs, including the protein purity, amino acid profile, color, structural integrity, thermal stability, solubility, emulsifying capacity, foaming behavior, and proteomic profile. Importantly, combined ultrasound and cold plasma treatments altered the proteomic landscape, leading to the downregulation of proteins associated with allergenicity and thereby mitigating the adverse effects of SCPs. Notably, this study provides the first demonstration of the interplay between the extraction method and protein responsiveness to cold plasma treatment. Full article
(This article belongs to the Special Issue Re-Valorization of Waste and Food Co-Products)
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22 pages, 39886 KB  
Article
Solvent-Free Cold Plasma Deposition of PVA–Antibiotic Films: Influence of Process Parameters on Coating Structure and Drug Release
by Abdugafarova Kibriyanur, Berillo Dmitriy, Zulyarov Samrat, Mohammad Kamran Saba, Dias Tastanbekov and Dmitry Rychkov
Polymers 2026, 18(15), 1839; https://doi.org/10.3390/polym18151839 - 27 Jul 2026
Viewed by 99
Abstract
Post-operative infections remain a challenge in implant surgery, leading to prolonged treatment, increased costs, and implant failure. Localized antibiotic-delivery coatings are a promising strategy to reduce infection risk while maintaining biocompatibility. Here, we evaluate cold atmospheric pressure plasma (CAP) spraying as a solvent-free [...] Read more.
Post-operative infections remain a challenge in implant surgery, leading to prolonged treatment, increased costs, and implant failure. Localized antibiotic-delivery coatings are a promising strategy to reduce infection risk while maintaining biocompatibility. Here, we evaluate cold atmospheric pressure plasma (CAP) spraying as a solvent-free method to deposit polyvinyl alcohol (PVA) layers containing amikacin on stainless steel and to identify plasma parameters that control release and antibacterial activity. A 3 × 3 factorial design varied nozzle distance (15, 20, 25 mm) and speed (10, 15, 20 cm/s). Surface morphology was assessed by optical microscopy, amikacin release quantified by HPLC-HRMS, and antibacterial activity tested against Staphylococcus aureus and Escherichia coli using Kirby–Bauer disc diffusion. Two-way ANOVA with Tukey post hoc tests and nonparametric validation were applied. Cold plasma spraying speed significantly affected drug release, whereas distance and the interaction term were not significant. Lower spraying speeds produced thicker, more porous coatings with greater cumulative release and larger inhibition zones. Drug release profiles were best described by Weibull and first-order models, showing an initial burst followed by sustained release. These findings indicate that CAP spraying enables solvent-free fabrication of antibiotic-loaded PVA coatings with tunable release, and optimizing spraying speed improves coating mass, drug delivery, and antibacterial performance. Full article
(This article belongs to the Special Issue Polymeric Composites: Manufacturing, Processing and Applications)
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26 pages, 742 KB  
Review
Camel Milk Shelf Life Optimization: Physicochemical Deterioration, Bioactive Preservation, and Non-Thermal Technologies: A Narrative Review
by Nour A. Elsahoryi, Omar A. Alhaj and Haitham Jahrami
Foods 2026, 15(15), 2614; https://doi.org/10.3390/foods15152614 - 26 Jul 2026
Viewed by 181
Abstract
Camel milk (CM), which is produced by both Camelus dromedarius and Camelus bactrianus, is gaining increasing popularity as a value-added functional dairy product, but the science of managing its shelf life has progressed more slowly than its commercial expansion. Unlike bovine milk, [...] Read more.
Camel milk (CM), which is produced by both Camelus dromedarius and Camelus bactrianus, is gaining increasing popularity as a value-added functional dairy product, but the science of managing its shelf life has progressed more slowly than its commercial expansion. Unlike bovine milk, CM lacks β-lactoglobulin (β-LG), has a unique casein (CN) micelle structure with a high β-CN-to-αs1-CN ratio, and low κ-CN protein content, and contains an unusually rich bioactive protein fraction including lactoferrin (LF), immunoglobulin G (IgG), lysozyme (LZ), and peptidoglycan recognition protein (PGRP). These compositional characteristics imbue CM with both significant inherent antimicrobial benefits and place it at risk of processing weaknesses that do not have direct analogs in bovine dairy science. The review discusses three key areas of CM shelf life science that have not been sufficiently addressed in the published literature. The first relates to physicochemical mechanisms of deterioration, including lipid oxidation of polyunsaturated fatty acids (PUFA), destabilization of CN micelles in the structural absence of β-LG, and Maillard browning during thermal treatment and storage of powder. The second addresses the fate of bioactive proteins, with the majority being lactoferrin (LF), immunoglobulin G (Igs), and heavy chain-only antibodies (HCAbs), under both thermal and non-thermal processing conditions. The third looks at new non-thermal preservation methods, such as high-pressure processing (HPP), pulsed electric field (PEF), ultrasonication, ultraviolet irradiation, cold plasma, and electromagnetic (EM) field treatment, and functional packaging innovations, which contribute to longer shelf life. Of the non-thermal options examined, HPP at 200–400 MPa today provides the most mechanistically proven evidence for camel-specific microbial deactivation with satisfactory quality preservation. The latest primary CM research also indicates that processing with EMs in the 850 mT range can potentially be as effective as conventional pasteurization in microbial control and may be more effective than pasteurization in retaining desirable bioactive markers, although this result needs to be independently replicated before more responsible conclusions can be drawn. The review ends with four priority research gaps: standardized kinetic shelf life modeling frameworks, systematic characterization of bioactive protein stability under commercial processing conditions, life cycle assessment of preservation chains across the camel dairy supply continuum, and the urgent validation of camel-specific pasteurization adequacy indicators to replace bovine alkaline phosphatase, which remains active in CM after conventional high-temperature short-time (HTST) pasteurization. Full article
(This article belongs to the Special Issue Storage and Shelf-Life Assessment of Food Products: 2nd Edition)
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16 pages, 5730 KB  
Article
Cold Plasma-Assisted Lavender Essential-Oil Pilot Production: Impact on Oil Yield, Isolation Kinetics and Chemical Parameters
by Dmitry Khudyakov, Andrey Sherstyukov and Ivan Shorstkii
AgriEngineering 2026, 8(8), 300; https://doi.org/10.3390/agriengineering8080300 - 23 Jul 2026
Viewed by 192
Abstract
This study investigated the influence of filamentary cold plasma (FCP) pretreatment on the isolation kinetics, yield and quality of lavender essential oil obtained by hydrodistillation (HD) and steam distillation (SD) at pilot scale. Lavender flowers were processed with or without FCP treatment under [...] Read more.
This study investigated the influence of filamentary cold plasma (FCP) pretreatment on the isolation kinetics, yield and quality of lavender essential oil obtained by hydrodistillation (HD) and steam distillation (SD) at pilot scale. Lavender flowers were processed with or without FCP treatment under identical HD and SD conditions. FCP promoted tissue electroporation and the formation of additional mass transfer pathways in the calyx, shortening isolation time and increasing essential-oil yield from 2.46% to 2.65% for HD and from 2.33% to 2.65% for SD. In the SD process, FCP reduced process time from 240 ± 5.8 min to 95.3 ± 6.1 min to obtain an equal oil yield volume and decreased the specific energy consumption from 0.35 to 0.14 kWh mL−1 of essential oil. GC–MS analysis confirmed that FCP did not deteriorate the volatile profile; linalool and linalyl acetate were the dominant constituents, with the relative contribution of other compounds depending on the distillation method. The combined linalool and linalyl acetate fraction increased from 65.9% to 68.2% after HD and from 63.49% to 68.11% after SD, indicating partial conversion of bound essential oil into a more extractable form. These results demonstrate that conveyor-based FCP pretreatment can intensify lavender oil production while preserving oil quality and provide practical parameters for assessing industrial-scale implementation. Full article
(This article belongs to the Special Issue Applications of Cold Plasma Technology in the Agri-Food)
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31 pages, 1300 KB  
Review
Thermal Spray Metallization of Polymers: A Review of Hybrid Polymeric–Metallic Coatings
by Muhammad Imran Khan, Anisa Riaz, Gul Badin, Luyang Xu, Xingyu Wang and Ying Huang
Coatings 2026, 16(7), 871; https://doi.org/10.3390/coatings16070871 - 21 Jul 2026
Viewed by 310
Abstract
In recent years, the quest for advanced materials has intensified, driving the exploration of innovative coating systems to enhance material properties. Polymeric materials, renowned for their adaptability, have found extensive use across various industries. However, their inherent limitations in mechanical strength, wear resistance, [...] Read more.
In recent years, the quest for advanced materials has intensified, driving the exploration of innovative coating systems to enhance material properties. Polymeric materials, renowned for their adaptability, have found extensive use across various industries. However, their inherent limitations in mechanical strength, wear resistance, and thermal stability have prompted researchers to seek enhancement avenues. Hybrid polymeric–metallic coatings have emerged as a promising solution, employing thermal spray techniques to metalize polymeric substrates. This amalgamation utilizes the versatility of thermal spraying methods, ranging from cold spraying, flame spraying, arc spraying, to plasma spraying, to achieve robust adhesion between metal and polymer layers. These techniques yield durable composite structures, fortifying surfaces against corrosion and wear while enabling dimensional restoration. Cold spraying, in particular, stands out among thermal spray methods due to its effectiveness in metalizing various materials. This comprehensive review delves into recent advancements in hybrid polymeric–metallic coatings via thermal spray processes. Emphasis is placed on analyzing critical factors influencing coating properties, including various thermal spray parameters. Furthermore, the paper scrutinizes the challenges and future potentials inherent in thermal spray techniques, with a focused exploration of cold spray technology. Understanding these methodologies is pivotal for optimizing the design and durability of structural materials made of polymers or composites. Full article
(This article belongs to the Special Issue Thin Films: Materials, Fabrication Techniques, and Applications)
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22 pages, 4987 KB  
Systematic Review
Antimicrobial Effect of Plasma-Treated Liquids on Skin and Oral Biofilms: A Systematic Review of In Vitro Studies
by Giorgia Stornelli, Gennaro Musella, Giuseppe Balice, Daniela Morari, Gioele Gioco, Carlo Lajolo, Monique Stoffels, Gary P. Moran, Rossella Grande, Vito Carlo Alberto Caponio and Vittoria Perrotti
Appl. Sci. 2026, 16(14), 7187; https://doi.org/10.3390/app16147187 - 17 Jul 2026
Viewed by 281
Abstract
This systematic review aimed to evaluate the effectiveness of indirect cold atmospheric plasma (CAP) in disrupting oral and skin microbial biofilms and to investigate whether the reported effects are mainly attributable to acidic pH, plasma-activated liquids, or specific devices and treatment settings. The [...] Read more.
This systematic review aimed to evaluate the effectiveness of indirect cold atmospheric plasma (CAP) in disrupting oral and skin microbial biofilms and to investigate whether the reported effects are mainly attributable to acidic pH, plasma-activated liquids, or specific devices and treatment settings. The review followed PRISMA guidelines and was registered on the Open Science Framework. A comprehensive literature search was conducted across major electronic databases. Studies evaluating indirect CAP on in vitro oral and skin microbial biofilms were included. Comparisons were made with untreated controls, non-activated liquids, and conventional antimicrobials. Outcomes were evaluated based on reductions in biofilm viability or biomass using quantitative assays (e.g., CFU, XTT, and Crystal Violet). Thirteen in vitro studies were included. CFU-based outcomes were reported in 11 of 13 studies (84.61%), and all of these studies showed reductions exceeding 5–6 log under specific conditions. Antimicrobial efficacy varied according to exposure time, microbial species, plasma parameters, and treatment settings, while physicochemical analyses indicated that acidic conditions and plasma-activated liquids play a key role. Indirect CAP appears to be a promising non-invasive antimicrobial strategy for managing oral and skin biofilms. However, variability among devices and settings, together with the absence of clinical data, underscores the need for further standardized studies and clinical investigations. Full article
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29 pages, 1201 KB  
Review
Cold Plasma-Enabled Interface Engineering and In-Situ Functionalization of Printable Feedstocks in Additive Manufacturing: Mechanisms, Materials, and Applications
by Xhoi Xibri, Giuseppe F. Racaniello, Brendan Gilmore, Nunzio Denora and Dimitrios A. Lamprou
Pharmaceutics 2026, 18(7), 870; https://doi.org/10.3390/pharmaceutics18070870 - 16 Jul 2026
Viewed by 624
Abstract
Cold plasma (CP) has emerged as a multifunctional surface engineering technology capable of enabling precise, non-thermal modification of material interfaces, while additive manufacturing (AM) has transformed modern fabrication through a layer-by-layer model of personalized therapies. This review discusses potential interactions between cold plasma [...] Read more.
Cold plasma (CP) has emerged as a multifunctional surface engineering technology capable of enabling precise, non-thermal modification of material interfaces, while additive manufacturing (AM) has transformed modern fabrication through a layer-by-layer model of personalized therapies. This review discusses potential interactions between cold plasma technologies and additive manufacturing processes for pharmaceutical and biomedical applications. CP has been investigated for surface modifications before and after manufacturing processes in several material science applications. Through controlled surface activation and plasma-induced chemistry, CP-assisted processes can enhance interlayer adhesion, surface wettability, antimicrobial activity, and bioactivity of AM-fabricated models, by generating reactive species and introducing functional groups into the surfaces of materials. The review also discusses engineering and regulatory challenges associated with plasma technologies in AM. Overall, CP represents a versatile surface modification technology whose interaction with materials used in AM deserves further investigation. Full article
(This article belongs to the Special Issue Recent Advances in 3D Printing of Pharmaceutical Dosage Forms)
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23 pages, 1652 KB  
Article
High-Temperature Gasification of Chlorinated Hydrocarbons: Thermodynamic Calculation
by Sergey M. Frolov, Nikita V. Apalkov and Fedor S. Frolov
Waste 2026, 4(3), 23; https://doi.org/10.3390/waste4030023 - 16 Jul 2026
Viewed by 215
Abstract
Conventional thermal disposal of chlorinated hydrocarbon (CHC) waste poses high risks of dioxin, furan, chlorine, and phosgene formation, while plasma destruction remains energy-intensive. This work determines the optimal thermodynamic conditions for the allothermal, non-catalytic steam—carbon dioxide gasification of various CHCs utilizing high-temperature detonation [...] Read more.
Conventional thermal disposal of chlorinated hydrocarbon (CHC) waste poses high risks of dioxin, furan, chlorine, and phosgene formation, while plasma destruction remains energy-intensive. This work determines the optimal thermodynamic conditions for the allothermal, non-catalytic steam—carbon dioxide gasification of various CHCs utilizing high-temperature detonation gases (2450–2850 K) expanded to atmospheric pressure to achieve non-toxic, valuable syngas and commercial-grade hydrochloric acid. Thermodynamic modeling ensures complete soot- and hydrocarbon-free conversion with 100% carbon conversion efficiency, dry syngas yield up to 5.7 Nm3/kg, and cold gas efficiency reaching 138%. For highly chlorinated (above 70 wt.% chlorine) or unsaturated feedstocks, a co-feeding method using external hydrocarbons (C4H8O2 as an example) was validated to suppress the formation of major ecotoxicants like Cl2, COCl2, and C2Cl2. As for other chlorine-containing ecotoxicants, including highly toxic dioxins, their concentrations in the equilibrium gasification products remain negligibly small, even in the absence of dilution. Importantly, a solvent mass fraction of no more than 0.33 in the initial blend is sufficient to entirely achieve this toxic species suppression. For all considered CHCs (undiluted or diluted with C4H8O2), chlorine is shown to bind exclusively to hydrogen chloride (HCl), with all hazardous emissions remaining below the conditional 1 ppm safety limit. To achieve this, a chlorine capture algorithm was substantiated based on the dissolution of generated HCl within the residual steam condensate or externally delivered water upon cooling the gasification products to 293 K. The proposed technology offers an efficient and environmentally safe alternative to expensive plasma methods for toxic organic waste disposal. Full article
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16 pages, 311 KB  
Article
Non-Rotating Blackhole Spacetimes with Plasma and Dust: Configurations and Spherically Symmetric Accretion
by Orchidea Maria Lecian
Astronomy 2026, 5(3), 11; https://doi.org/10.3390/astronomy5030011 - 15 Jul 2026
Viewed by 163
Abstract
The passage from generic (non-interacting) plasma to cold plasma with dust around a spherically symmetric black hole is newly analytically studied. The configurations are newly written, and the behaviours of the observer are this way spelt out. The conservation of mass flux and [...] Read more.
The passage from generic (non-interacting) plasma to cold plasma with dust around a spherically symmetric black hole is newly analytically studied. The configurations are newly written, and the behaviours of the observer are this way spelt out. The conservation of mass flux and that of the energy flux are used. The velocities of the observer are newly classified in the case of (non-interacting) hot plasma with dust for the transition to a configuration of (non-interacting) cold plasma with dust. The suitable functional dependence of the radial component of the velocity of the observer is now expressed in order to select the configurations which allow for the transition. The passage to a configuration of (non-interacting) cold plasma with dust is proved to be defined after the suitable integration conditions of the mass flux and of the energy flux, plus the suitable functional dependence of the radial component of the velocity of the observer are found. The spherical accretion is newly written. The emissions of the new accretion mechanism are due to (1) the variation in the gravitational potential as from blue further studies of the Author; (2) the radiation due to the change in the gravitational potential as described in the Landau–Lifshitz–Pitaevskii equations; (3) the standard electrodynamics radiation; and (4) the radiation of the positron (quantum mechanism) from the electron–positron pair of the emitted photon (in the Landau–Lifshitz–Lindhard scheme). Full article
22 pages, 1567 KB  
Review
Postbiotics in Functional Foods: Production, Delivery, Preservation, and Regulation
by Niyaz Ali-Haneef, Amar R. Mohite, Punitha Muruganantham, Adhil Anver Salim, Khanita Suman Chinannai, Anish John and Inamul Hasan Madar
Foods 2026, 15(14), 2434; https://doi.org/10.3390/foods15142434 - 9 Jul 2026
Viewed by 598
Abstract
Postbiotics—defined by the International Scientific Association of Probiotics and Prebiotics (ISAPP) as preparations of inanimate microorganisms and/or their components that confer a health benefit to the host—are attractive from a stability perspective compared to live probiotics. They withstand thermal processing and room-temperature transport [...] Read more.
Postbiotics—defined by the International Scientific Association of Probiotics and Prebiotics (ISAPP) as preparations of inanimate microorganisms and/or their components that confer a health benefit to the host—are attractive from a stability perspective compared to live probiotics. They withstand thermal processing and room-temperature transport and storage and are compatible with low-pH or low-water-activity food products. Despite the promise, the literature is scattered, with no review that integrates evidence from the development pipeline. This review fills that gap. The ISAPP 2021 definition is reviewed, including the practical difficulty resulting from the exclusion of cell-free supernatant (CFS)-based products that represent most of the experimental evidence. Fermentation-based production systems and non-thermal inactivation technologies—high-pressure processing (HPP), pulsed electric fields (PEF), ultrasound, cold plasma, and supercritical CO2—are compared; non-thermal inactivation preserves the activity of thermolabile bacteriocins and phenolic fractions. Delivery systems such as spray-drying, alginate hydrogel microencapsulation, liposomal nanoencapsulation, and carboxymethyl cellulose (CMC) active packaging are assessed for gastrointestinal survival and food system compatibility. Biopreservation potential is reviewed in meat, seafood, dairy, fresh produce, and fermented foods. The regulatory framework for the United States, European Union, Japan, and India is critically reviewed; “postbiotic” is not an explicitly defined term in 2025. Three priority translational bottlenecks are identified: the absence of standardized potency assays, the lack of cross-class quality benchmarks, and the unresolved conflict between heat-inactivated dairy postbiotics and the Codex Alimentarius live-culture standard. Harmonized regulations and characterization standards are critical needs for postbiotic functional food development. Full article
(This article belongs to the Section Food Systems)
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19 pages, 3812 KB  
Article
Optimizing Tomato Seed Performance Through Cold Atmospheric Plasma: Effects on Germination Rates and Early Biomass Development
by Adriana-Florica Bogoșel, Mihail Lungu, Oana-Alexandra Găinaru and Nicoleta Ianovici
Plants 2026, 15(13), 2093; https://doi.org/10.3390/plants15132093 - 6 Jul 2026
Viewed by 451
Abstract
Modern agriculture faces increasing pressure from rising food demand, resource degradation, and biotic stress factors, highlighting the need for sustainable, non-chemical technologies. Cold atmospheric plasma (CAP) has emerged as a promising non-chemical seed-priming technology with potential applications in sustainable agriculture. The present study [...] Read more.
Modern agriculture faces increasing pressure from rising food demand, resource degradation, and biotic stress factors, highlighting the need for sustainable, non-chemical technologies. Cold atmospheric plasma (CAP) has emerged as a promising non-chemical seed-priming technology with potential applications in sustainable agriculture. The present study investigated the effects of dielectric barrier discharge (DBD)-generated CAP on seed germination and early seedling development in two Solanum lycopersicum genotypes (a common variety and an IdB hybrid) under controlled laboratory conditions. Seeds were exposed to CAP for 1, 2, 3, or 4 min, while untreated seeds served as controls. Early plant performance was evaluated after 47 days by determining germination rate, fresh biomass, dry biomass, and mineral biomass (ash content). CAP exposure duration significantly affected all gravimetric parameters in both genotypes. Among the tested treatments, 1 min exposure consistently produced the highest fresh, dry, and mineral biomass values, whereas longer exposure times (3–4 min) generally reduced seedling growth, indicating the transition from beneficial physiological stimulation to stress-induced inhibition. Despite the more pronounced response observed in the IdB hybrid, the statistical analysis demonstrated that treatment duration, rather than genotype, was the principal factor influencing biomass accumulation. The present results indicate that short-duration CAP treatment represents an effective seed-priming strategy for improving early tomato seedling development. Full article
(This article belongs to the Section Plant Physiology and Metabolism)
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19 pages, 1800 KB  
Article
Beyond Nano-Delivery: Synerjet-Assisted Transdermal Delivery of Nano-Formulated Nicotinamide Mononucleotide (Nano-NMN) for Comprehensive Skin Rejuvenation
by Wonkyu Hong, Jaewoo Kim, Seongmin Noh, Joonho Shim, Seok-Kwang Park and Mihwa Kim
Cosmetics 2026, 13(4), 172; https://doi.org/10.3390/cosmetics13040172 - 3 Jul 2026
Viewed by 546
Abstract
This study aimed to evaluate whether the Synerjet system can maximize the transdermal delivery and skin rejuvenation of nano-NMN. In a 4-week split-face trial (n = 21), this combination demonstrated marked clinical superiority over topical nano-NMN alone (p < 0.001), yielding enhanced [...] Read more.
This study aimed to evaluate whether the Synerjet system can maximize the transdermal delivery and skin rejuvenation of nano-NMN. In a 4-week split-face trial (n = 21), this combination demonstrated marked clinical superiority over topical nano-NMN alone (p < 0.001), yielding enhanced improvements in wrinkles (with 170.56% relative improvement in periorbital and 154.45% in nasolabial region compared to the control group), pore volume (176.62%), and deep hydration (188.02%). Regarding dermal integrity, the test group showed a 111.56% superior increment in skin elasticity and a 149.75% more effective optimization of melanin intensity relative to the control. Notably, deep-tissue hydration at a 2.5 mm depth demonstrated a 188.02% higher gain, suggesting that the modality significantly fortifies the skin’s physiological moisture reservoir. The test group exhibited a marked improvement over the control across all cutaneous parameters (p < 0.001). Our findings demonstrate that a new combinatorial approach using EP-assisted microjet of a Synerjet system after cold plasma pretreatment and a nano-NMN 10% ampoule resulted in significantly greater improvements in wrinkles, pores, elasticity, pigmentation, and deep skin hydration compared to topical application alone. Consequently, these results demonstrated that the Synerjet system effectively overcame the inherent limitations of nano-delivery technologies, offering a promising modality for advanced cutaneous rejuvenation and a robust framework for future professional dermatological treatments. Full article
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34 pages, 4589 KB  
Review
Progress in Coating-Based High-Temperature Corrosion Protection for Utility Boilers: A Review
by Lianmeng Wang, Ying Xu, Jianke Luo, Jiaowei Du, Xiao Li, Dan Wang, Haiyang Xue, Jing Liu and Lanyun Li
Coatings 2026, 16(7), 790; https://doi.org/10.3390/coatings16070790 - 2 Jul 2026
Viewed by 491
Abstract
High-temperature corrosion severely impairs the service life of boiler heating tubes and threatens the safe and economical operation of thermal power units. With diversified fuels (coal, biomass and refuse-derived fuels) and continuously elevated operating parameters (steam temperature exceeding 620 °C for ultra-supercritical units), [...] Read more.
High-temperature corrosion severely impairs the service life of boiler heating tubes and threatens the safe and economical operation of thermal power units. With diversified fuels (coal, biomass and refuse-derived fuels) and continuously elevated operating parameters (steam temperature exceeding 620 °C for ultra-supercritical units), boiler heating surfaces are exposed to increasingly complex corrosive environments. High-temperature oxidation, sulfidation, chlorination, molten salt hot corrosion and deposit-induced multi-factor coupled corrosion coexist and exacerbate each other. This paper adopts a four-dimensional analytical framework of “mechanisms–technologies–materials–evaluation” to systematically summarize relevant research progress. From the perspective of corrosion mechanisms, the evolution of understandings from single high-temperature oxidation to multi-factor coupled corrosion is reviewed. In terms of surface coating technologies, seven mainstream processes including HVOF/HVAF spraying, plasma spraying, cold spraying, laser cladding and weld overlay are compared in terms of preparation characteristics and engineering applicability. For coating materials, twelve material systems such as NiCr alloys, MCrAlY, cermets, Fe-based amorphous/nanocrystalline alloys and high-entropy alloys are evaluated for their corrosion resistance under diverse service conditions. As for monitoring and evaluation, this work introduces full-range corrosion management technologies covering electrochemical monitoring, non-destructive testing, numerical simulation and life assessment. Finally, the paper discusses the application prospects of gradient coating design, AI-assisted material screening and digital twin technology, and points out key research gaps including long-term service reliability verification of coatings and quantitative prediction models for multi-factor coupled corrosion. Full article
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29 pages, 7607 KB  
Article
Effect of Atmospheric Room Temperature Plasma on the Volatile Profile of Laurel: Optimization by HS-SPME/GC-MS Analysis with Application in a Ready-to-Use Broth Model
by Martha Mantiniotou, Vassilis Athanasiadis, Dimitrios Kalompatsios, Eleni Bozinou, George Ntourtoglou, Vassilis G. Dourtoglou and Stavros I. Lalas
Foods 2026, 15(13), 2346; https://doi.org/10.3390/foods15132346 - 2 Jul 2026
Viewed by 371
Abstract
Laurel (Laurus nobilis L.) is a characteristic species of the Mediterranean flora, valued for its medicinal, aromatic, and culinary uses. Many of these properties are attributed to its volatile constituents. In this study, the effect of Atmospheric Room Temperature Plasma (ARTP) pretreatment [...] Read more.
Laurel (Laurus nobilis L.) is a characteristic species of the Mediterranean flora, valued for its medicinal, aromatic, and culinary uses. Many of these properties are attributed to its volatile constituents. In this study, the effect of Atmospheric Room Temperature Plasma (ARTP) pretreatment on laurel powder was evaluated, with emphasis on volatile recovery and food application. Volatile extraction was optimized using headspace solid-phase microextraction (HS-SPME) coupled with gas chromatography–mass spectrometry (GC-MS), investigating key parameters such as salt concentration, extraction temperature, equilibration time, extraction time, and fiber type. Subsequently, critical ARTP variables (nitrogen flow, treatment duration, treatment distance, substrate thickness, and plasma power) were optimized. Response Surface Methodology was applied in both optimization processes. The results demonstrated that fiber type was the most influential factor for volatile recovery, with extraction temperature also exerting a significant effect. A more nuanced pattern emerged during ARTP pretreatment, where moderate plasma intensities enhanced the recovery of several key volatiles. This trend was not uniform across compounds, indicating that plasma-induced microstructural changes interact with the physicochemical properties of individual analytes. To demonstrate food relevance, a ready-to-use broth model prepared with laurel powder confirmed improved headspace transfer of characteristic volatiles following ARTP treatment. Taken together, these findings suggest that ARTP can serve as a practical, non-thermal pretreatment for improving volatile release, supporting its potential use in the food, pharmaceutical, and cosmetic industries. Full article
(This article belongs to the Section Food Analytical Methods)
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30 pages, 920 KB  
Review
Cocoa By-Products as Functional Ingredients in Food: Composition, Emerging Extraction Technologies, Food Applications and Challenges of the Circular Economy
by Marianela Díaz-Llocclla, Rebeca Salvador-Reyes, Emerson Asto-Rodriguez, Anahi Rodriguez Dominguez, Maickol Andy Cano Otañe and Gian Pierre Silvera-Otañe
Resources 2026, 15(7), 87; https://doi.org/10.3390/resources15070087 - 2 Jul 2026
Viewed by 619
Abstract
Cocoa processing generates large amounts of agro-industrial by-products, mainly cocoa bean shells (CBS), cocoa pod husks (CPH), and cocoa mucilage, which remain underutilized despite their nutritional and bioactive potential. This narrative review critically analyzes the composition of cocoa by-products and emerging technologies for [...] Read more.
Cocoa processing generates large amounts of agro-industrial by-products, mainly cocoa bean shells (CBS), cocoa pod husks (CPH), and cocoa mucilage, which remain underutilized despite their nutritional and bioactive potential. This narrative review critically analyzes the composition of cocoa by-products and emerging technologies for bioactive compound recovery. Results show that CBS and CPH are rich sources of dietary fiber (13.8–65.6%), phenolic compounds (up to 100 mg GAE/g), and methylxanthines (theobromine up to 11.6 mg/g in CBS). Emerging extraction technologies, ultrasound-assisted extraction, pressurized liquid extraction, microwave-assisted extraction, pulsed electric fields, and cold atmospheric plasma, improve extraction yield (20–150%), reduce processing time (from hours to minutes), and decrease solvent consumption compared to conventional methods. Regarding food applications, moderate CBS inclusion levels (10–20% in cookies, 2–8% in bread, 0.75–1.0% in sausages) improve dietary fiber and antioxidant capacity without compromising sensory acceptability, whereas higher levels (>20–30%) increase hardness, bitterness, and astringency. It is concluded that cocoa by-products are promising resources for sustainable functional food ingredients. However, industrial implementation remains limited by raw material variability, lack of standardized extraction protocols, sensory constraints, and insufficient biological validation of recovered compounds. Future research should focus on standardizing extraction protocols, validating bioaccessibility and bioactivity through in vivo studies, optimizing food formulations for sensory balance, assessing contaminants (heavy metals, mycotoxins), and evaluating techno-economic feasibility and life-cycle sustainability at industrial scale. Full article
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