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16 pages, 2728 KB  
Article
Sodium Acetate-Modulated Fe(III)/O3 Homogeneous Catalytic Ozonation for Sulfamethoxazole Removal: Performance, Oxidation Pathways, and Toxicity Assessment
by Jingsi Liu, Fan Yang and He Guo
Catalysts 2026, 16(9), 769; https://doi.org/10.3390/catal16090769 - 26 Aug 2026
Abstract
Sulfamethoxazole (SMX), a persistent sulfonamide antibiotic widespread in aquatic environments, resists conventional water treatment degradation. This work developed a NaOAc/Fe3+/O3 homogeneous ozonation system for SMX abatement. Four comparative reaction groups confirmed significant synergism between trace Fe3+ and sodium acetate. [...] Read more.
Sulfamethoxazole (SMX), a persistent sulfonamide antibiotic widespread in aquatic environments, resists conventional water treatment degradation. This work developed a NaOAc/Fe3+/O3 homogeneous ozonation system for SMX abatement. Four comparative reaction groups confirmed significant synergism between trace Fe3+ and sodium acetate. Under optimized near-neutral conditions, 96.19% SMX was removed within 30 min with kobs = 0.107 min−1, outperforming sole O3, O3/NaOAc and O3/Fe3+ by 11.0%, 31.0% and 21.9% respectively. Single-factor tests revealed excess Fe3+ or acetate suppressed catalytic activity, while alkaline conditions accelerated degradation yet aggravated iron precipitation. Radical quenching and p-CBA probing indicated that acetate coordination did not increase bulk ·OH exposure, while the stronger TEMP-derived TEMPO response after acetate addition was consistent with enhanced 1O2-associated oxidation, suggesting that acetate altered the relative contributions of ozone-derived oxidation pathways. Post acetate background deduction, the ternary system achieved higher TOC/COD elimination. Twelve SMX intermediates were identified via LC-MS, with three ring-opening degradation pathways proposed. QSAR toxicity evaluation indicated that most intermediates possessed lower bioconcentration and developmental risks than raw SMX. Overall, the results indicate that weak acetate ligands can alter iron-mediated ozone oxidation pathways, providing a low-dose and economical strategy for antibiotic wastewater treatment. Full article
(This article belongs to the Section Environmental Catalysis)
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15 pages, 6341 KB  
Article
Corrosion Behavior of a Monolithic Zr-Cu-Al-Ag Bulk Metallic Glass and a Zr-Cu-Al-Ag Bulk Metallic Glass Matrix Composite in Sodium Chloride Medium
by Meng-Du Lyu, Huei-Sen Wang, Chih-Chun Hsieh, Mei-Hui Wu and Jason Shian-Ching Jang
Materials 2026, 19(17), 3595; https://doi.org/10.3390/ma19173595 - 24 Aug 2026
Viewed by 160
Abstract
The corrosion mechanism and corrosion behavior of a monolithic Zr-based (Zr48Cu36Al8Ag8)Si0.75 bulk metallic glass (BMG) and a Zr-based (Zr44Cu36Al8Ag8Ta4)Si0.75 BMG matrix composite (BMGMC) [...] Read more.
The corrosion mechanism and corrosion behavior of a monolithic Zr-based (Zr48Cu36Al8Ag8)Si0.75 bulk metallic glass (BMG) and a Zr-based (Zr44Cu36Al8Ag8Ta4)Si0.75 BMG matrix composite (BMGMC) in 3.5 wt.% NaCl solution were investigated. Potentiodynamic polarization tests were conducted to evaluate the corrosion and passive behavior of BMGs. Both monolithic BMG and BMGMC exhibited distinct pitting corrosion in sodium chloride solution. The monolithic BMG exhibited a higher value of pitting overpotential, ηpit, and a wider passive region, when compared to that of BMGMC, indicating that the monolithic BMG has a better pitting resistance than the BMGMC. The worse corrosion resistance of BMGMC can be attributed to the weak passive film of the interface area between the precipitates and the glassy matrix, where it can be more easily broken through by halide ions, Cl, preferentially. Furthermore, galvanic corrosion can occur due to the potential difference between Ta precipitates and the matrix of BMGMC, leading to an even more severe corrosion of the BMGMC. Full article
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17 pages, 7332 KB  
Article
Electrothermal Synthesis of Cell-Imprinted Polymer Coatings on Metallic Microwires for Bacterial Capture
by Alireza Zabihihesari, Arezoo Khalili and Pouya Rezai
Sensors 2026, 26(17), 5324; https://doi.org/10.3390/s26175324 - 22 Aug 2026
Viewed by 298
Abstract
This study presents an electrothermal coating approach for synthesizing cell-imprinted polymers (CIPs) on metallic microwires through localized resistive heating-induced polymerization. Imprinted polymers (IPs) are robust, cost-effective synthetic affinity materials widely used in sensing applications. However, conventional fabrication methods, including bulk and suspension polymerization, [...] Read more.
This study presents an electrothermal coating approach for synthesizing cell-imprinted polymers (CIPs) on metallic microwires through localized resistive heating-induced polymerization. Imprinted polymers (IPs) are robust, cost-effective synthetic affinity materials widely used in sensing applications. However, conventional fabrication methods, including bulk and suspension polymerization, often lack spatial control, producing non-specific polymerization, heterogeneous coatings, and reduced sensor reproducibility. Electrochemical polymerization provides improved spatial control but requires specialized instrumentation and restricts monomer selection. Here, applying direct current (DC) to metallic microwires immersed in a prepolymer solution generated localized Joule heating, enabling controlled in situ polymerization and uniform coatings while minimizing undesired bulk polymerization. By optimizing the applied current and polymerization time, CIP coatings with tunable thicknesses were fabricated on gold-coated microwires. Under optimized conditions, ~6 µm thick coatings were imprinted using Salmonella templates. Scanning electron microscopy revealed bacteria-shaped cavities consistent with template removal and the formation of imprinted cavities. Rebinding experiments demonstrated enhanced bacterial capture, with CIP-coated microwires achieving ~70% capture efficiency, compared to 22% for bare microwires and 33% for non-imprinted polymer (NIP) controls. These results support the effectiveness of the proposed method for localized polymerization and demonstrate the enhanced capture of the template species by CIP-coated microwires relative to bare microwires and NIP-coated controls. Full article
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25 pages, 8370 KB  
Article
Regulatory Effect of Polyacrylate Emulsion on the NaCl Attack Behavior of Cement-Based Grouting Materials
by Yuxuan Wang, Shengjie Han, Fan Wang, Lei Hu, Jiao Liao, Shijie Zhu, Yangyang Li and Jiehao Wu
Polymers 2026, 18(17), 2039; https://doi.org/10.3390/polym18172039 - 22 Aug 2026
Viewed by 164
Abstract
Cement-based grouting materials with a high water-to-cement ratio are susceptible to connected pore development, chloride ingress, and mechanical degradation in chloride-bearing groundwater and marine environments. To improve resistance to NaCl attack, this study compared an unmodified cement-based grouting material (NC) with a polyacrylate-emulsion-modified [...] Read more.
Cement-based grouting materials with a high water-to-cement ratio are susceptible to connected pore development, chloride ingress, and mechanical degradation in chloride-bearing groundwater and marine environments. To improve resistance to NaCl attack, this study compared an unmodified cement-based grouting material (NC) with a polyacrylate-emulsion-modified material (PA). Mechanical properties, surface wettability, pore structure, phase assemblage, thermal behavior, functional groups, and microstructure were investigated under different NaCl concentrations (0%, 5%, 10%, and 15%) and immersion durations (28 and 90 d). This study systematically evaluates the coupled evolution of mechanical strength retention, surface wettability, pore structure, chloride-bearing phases, and microstructure in a bulk PA-emulsion-modified high-water-to-cement-ratio grouting material under graded NaCl exposure. The results showed pronounced concentration- and time-dependent effects. Low NaCl concentrations were associated with continued hydration and reaction-product filling, whereas higher concentrations and prolonged exposure led to pore coarsening and strength loss. PA modification improved the mechanical stability of the material in NaCl environments. After 90 d of immersion in 15% NaCl, the compressive and flexural strengths of the PA group were 23.60% and 22.53% higher than those of the NC group, respectively, while the corresponding strength-retention ratios were higher by 9.06 and 10.40 percentage points. Contact-angle and MIP results showed that PA reduced surface wettability and mercury-accessible porosity. After 15% NaCl exposure, the contact angle of the PA group remained 72.5°, compared with 40.1° for the NC group, while the porosity decreased from 38.11% in the NC group to 30.98% in the PA group. XRD, TG-DTG, and FTIR analyses indicated the formation and evolution of Friedel’s salt or other chloride-bearing AFm phases after NaCl exposure. Combined with SEM observations, the results indicate that PA mitigates NaCl-induced deterioration through reduced surface wettability, refined pore structure, regulated chloride-bearing product distribution, and improved matrix integrity. Overall, the findings establish a coupled surface–pore–phase–microstructure framework for understanding the enhanced NaCl resistance of PA-modified cement-based grouting materials. Full article
(This article belongs to the Special Issue Application of Polymers in Cementitious Materials, 2nd Edition)
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16 pages, 2369 KB  
Article
Effect of Graphene Oxide on the Structural and Optical Properties of FTO Layers Obtained by Spray Pyrolysis
by Pavel Parchinsky, Abdumanap A. Nasirov, Shavkat U. Yuldashev, Azamat Arslanov, Rafael A. Nusretov, Natalia A. Kulagina, Sultan Kh. Suleymanov, Peng Li, Sergei A. Khakhomov, Alina V. Semchenko, Vitali V. Sidski, Vladimir E. Gaishun and Konstantin D. Danilchenko
Photonics 2026, 13(9), 800; https://doi.org/10.3390/photonics13090800 - 22 Aug 2026
Viewed by 306
Abstract
This study examines the effect of graphene oxide nanoparticle (NGO) doping (0.12–0.24 mol%) on the properties of FTO layers obtained by spray pyrolysis. The results show that nanographene promotes phase separation within the FTO bulk. The resulting inhomogeneities are fluorine-depleted relative to the [...] Read more.
This study examines the effect of graphene oxide nanoparticle (NGO) doping (0.12–0.24 mol%) on the properties of FTO layers obtained by spray pyrolysis. The results show that nanographene promotes phase separation within the FTO bulk. The resulting inhomogeneities are fluorine-depleted relative to the surrounding film. NGO doping also modifies the position and intensity of peaks in the absorption spectra, indicating a change in the nature of the absorbing centers. The optical bandgap of the FTO layers decreases with the increase in NGO from 4.4 eV (undoped samples) to 3.95 eV (samples with the highest NGO concentration). Furthermore, NGO doping reduces the sheet resistance of the FTO layers. This reduction is attributed to increased charge carrier mobility resulting from passivation of nanocrystallite interfaces by graphene oxide nanoparticles. However, the sheet resistance depends non-monotonically on NGO content, with the lowest value observed at 0.16 mol% NGO. The increase in resistance at higher NGO concentrations is due to enhanced carrier scattering caused by the growing size and number of the phase inhomogeneities within the FTO layer. Full article
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37 pages, 9216 KB  
Review
Phase Formation, Microstructural Evolution, and Surface Performance of High-Entropy Alloys for Electrocatalysis and Corrosion Resistance: A Review
by Johnbosco M. Umeh and Egwu E. Kalu
Alloys 2026, 5(3), 20; https://doi.org/10.3390/alloys5030020 - 20 Aug 2026
Viewed by 179
Abstract
High-entropy alloys (HEAs) are a unique metallic alloy that was initially recognized for the possibility of stabilizing simple solid-solution phases through high configurational entropy. Research over the past two decades, however, has shown that their behavior is far more complex. Phase formation, microstructural [...] Read more.
High-entropy alloys (HEAs) are a unique metallic alloy that was initially recognized for the possibility of stabilizing simple solid-solution phases through high configurational entropy. Research over the past two decades, however, has shown that their behavior is far more complex. Phase formation, microstructural evolution, and surface performance arise from the combined influence of composition, atomic interactions, processing history, and the surrounding environment. This paper reviews the connections between these aspects moving from the bulk alloy to the surface. The thermodynamic and empirical criteria utilized for prediction of phase formation and reasons behind ignoring the factors such as ordering, segregation, metastability, and processing defects are described. Further, the influence of casting, rapid solidification, coating deposition, and thin-film processing on the microstructure that will interact with catalytic or corrosive environment is reviewed. Electrocatalysis and corrosion resistance are considered as two strongly coupled surface phenomena rather than separate fields of application. Quantitative comparison of exemplary high-entropy alloy systems shows the influence of the alloying approach and surface development on the catalytic properties, surface reconstruction, selective dissolution, passive film formation, and localized corrosion. The potential of CALPHAD modeling, density functional theory, machine learning, and multi-objective optimization for a better alloy selection in the field of high-entropy alloys is reviewed as well. We identified that the success of HEA design is not only in choosing the right composition but rather in controlling the phases, defects, interfaces, and surface of the HEA. Full article
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21 pages, 38445 KB  
Article
Comparative Evaluation of WCLV (1.2344), Uddeholm Unimax, and Uddeholm QRO 90 Supreme Tool Steels for Die Forging
by Maciej Wąsowicz, Adam Patalas, Artur Meller, Stanisław Legutko, Piotr Siwak and Vit Černohlávek
Materials 2026, 19(16), 3526; https://doi.org/10.3390/ma19163526 - 20 Aug 2026
Viewed by 230
Abstract
This study presents a comparative evaluation of the wear performance of three hot-work tool steels—WCLV (1.2344), Uddeholm Unimax, and Uddeholm QRO 90 Supreme—for die forging applications. The materials were characterized in terms of hardness and bulk chemical composition using Vickers hardness testing and [...] Read more.
This study presents a comparative evaluation of the wear performance of three hot-work tool steels—WCLV (1.2344), Uddeholm Unimax, and Uddeholm QRO 90 Supreme—for die forging applications. The materials were characterized in terms of hardness and bulk chemical composition using Vickers hardness testing and X-ray fluorescence spectroscopy. Tribological behavior was investigated using ball-on-disc tests, while industrial performance was assessed by analyzing forging punches after the production of 16,250 components. Surface degradation was quantified using optical profilometry and three-dimensional roughness parameters. Measured hardness values were 591 HV for WCLV, 622 HV for QRO 90 Supreme, and 639 HV for Uddeholm Unimax. The average friction coefficients were 0.88, 0.92, and 0.77, respectively. Unimax also exhibited the lowest volumetric wear, reaching 0.04683 mm3 (R19 mm) and 0.03384 mm3 (R22 mm), compared with 0.08646–0.13095 mm3 for WCLV and 0.09598–0.13635 mm3 for QRO 90 Supreme. This corresponds to approximately 45–70% lower wear relative to the other steels. Industrial trials confirmed improved surface stability of Unimax punches after service. The observed trends are consistent with differences in alloying content and the expected microstructural response associated with chromium and molybdenum additions. Overall, Uddeholm Unimax demonstrated the most favorable balance of hardness, friction behavior, and wear resistance. Full article
(This article belongs to the Section Metals and Alloys)
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15 pages, 11310 KB  
Article
Effects of Cyclic Confining Pressure and Temperature on Static and Dynamic Bulk Compressibility of Reservoir Sandstones
by Yuxiang Wang, Yang Wang, Junxing Ren, Xuguang Dong and Xiaoyang Wang
Geosciences 2026, 16(8), 340; https://doi.org/10.3390/geosciences16080340 - 19 Aug 2026
Viewed by 233
Abstract
Bulk compressibility of reservoir rocks can be characterized dynamically or statically, and both vary with burial depth due to increasing temperature and pressure. To quantify these effects, cyclic hydrostatic compression tests are conducted on two reservoir sandstones under confining pressure up to 50 [...] Read more.
Bulk compressibility of reservoir rocks can be characterized dynamically or statically, and both vary with burial depth due to increasing temperature and pressure. To quantify these effects, cyclic hydrostatic compression tests are conducted on two reservoir sandstones under confining pressure up to 50 MPa at three temperatures (30 °C, 70 °C, and 110 °C). Experimental results show that static bulk compressibility is consistently larger than dynamic values across all tested conditions. As confining pressure increases, static compressibility decreases more sharply than dynamic compressibility, leading to a gradual reduction in their discrepancy. In contrast, temperature exerts a weaker yet more complex influence. Elevated temperature increases dynamic bulk compressibility, but has opposite effects on static compressibility upon loading versus unloading: it reduces static compressibility upon hydrostatic loading but enhances it upon unloading. This complex temperature dependence is attributed to thermally induced stress, which resists hydrostatic compression during loading but assists decompression during unloading. The influence of thermal stress is more pronounced at low confining pressures. These findings highlight that temperature not only alters the magnitude of static compressibility but also introduces path-dependent asymmetry between loading and unloading, which has important implications for reservoir geomechanics, subsidence prediction, and production-induced compaction in high-temperature environments. Full article
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22 pages, 4707 KB  
Article
Wear Response of Carbide-Reinforced 1.75 mol% Y2O3-Stabilized ZrO2 Composites Under Dry Sliding Conditions
by Dávid Medveď, Jana Andrejovská, Viktor Puchý, Róbert Džunda and Ondrej Petruš
Lubricants 2026, 14(8), 316; https://doi.org/10.3390/lubricants14080316 - 18 Aug 2026
Viewed by 163
Abstract
This study investigates the mechanical and tribological behavior of three composites with a ZrO2 matrix stabilized with 1.75 mol% Y2O3 and containing 1 wt.% Al2O3, reinforced with TiC (A), TiC + ZrC (B), and TiC [...] Read more.
This study investigates the mechanical and tribological behavior of three composites with a ZrO2 matrix stabilized with 1.75 mol% Y2O3 and containing 1 wt.% Al2O3, reinforced with TiC (A), TiC + ZrC (B), and TiC + WC + Mo2C (C). The matrix powder was synthesized by chemical coprecipitation, and the composites were consolidated by spark plasma sintering at 1350 °C. Dry reciprocating sliding tests against 100Cr6 steel were performed at 10 and 25 N. Composite A exhibited the highest HV10 hardness (1268), while the indentation fracture toughness values were similar (6.41–6.57 MPa·m1/2). Wear resistance did not follow the hardness ranking. At 25 N, composite A exhibited surface fragmentation and a specific wear rate of 2.52 × 10−6 mm3·N−1·m−1, while composite B showed extensive and heterogeneous transfer of steel-derived material. Composite C exhibited the lowest coefficient of friction and specific wear rate, reaching 0.392 and 7.04 × 10−8 mm3·N−1·m−1, respectively, at 25 N. EDS mapping revealed an area-integrated Fe content of 0.7 at.% for C, compared with 7.2 at.% for A and B. The superior wear resistance of C was associated with substantially lower steel-derived material transfer and a relatively smooth wear-track surface rather than with the highest bulk hardness. Full article
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21 pages, 2554 KB  
Article
Dendritic Cell Dysfunction Underlies Immune Escape After Adoptive Cellular Therapy in Glioblastoma
by Dan Jin, Bayli DiVita, Alexandra Reid, Caitland Love, John W. Figg, Connor Francis, Laura Falceto Font, Kaytora Long-James, David Hilferty, Sofia Stansbury, Norman Morikawa, Mathew Sebastian, Steeve Boulant, Duane A. Mitchell and Catherine Flores
Cancers 2026, 18(16), 2669; https://doi.org/10.3390/cancers18162669 - 18 Aug 2026
Viewed by 274
Abstract
Background/Objectives: Glioblastoma (GBM) remains a lethal primary CNS malignancy with limited response to immunotherapy. Adoptive cellular therapy (ACT) improves survival in preclinical models, yet tumors ultimately recur. While T cell exhaustion is a common mechanism of resistance, the contribution of dendritic cell [...] Read more.
Background/Objectives: Glioblastoma (GBM) remains a lethal primary CNS malignancy with limited response to immunotherapy. Adoptive cellular therapy (ACT) improves survival in preclinical models, yet tumors ultimately recur. While T cell exhaustion is a common mechanism of resistance, the contribution of dendritic cell (DC) dysfunction remains unclear. We aimed to define mechanisms of immune escape following ACT, focusing on DC function and the role of hypoxia. Methods: Using a murine glioma model (KR158B-luc), mice were treated with ACT consisting of tumor RNA-pulsed DC vaccines and adoptively transferred T cells. Tumor-infiltrating immune populations were analyzed by flow cytometry. DC function was assessed using T cell activation assays. Bulk RNA sequencing and gene set enrichment analysis were performed on sorted DCs. Hypoxia was modeled in vitro, and HIF1α was perturbed using CRISPR-mediated knock-out. Results: ACT significantly increased survival but did not prevent tumor recurrence. Escaped tumors contained abundant cytotoxic, non-exhausted T cells, indicating that T cell dysfunction was not the primary driver of recurrence under ACT. Instead, tumor-associated DCs exhibited impaired T cell activation despite preserved antigen uptake. Transcriptomic analyses revealed reduced antigen presentation and co-stimulatory signaling, alongside increased expression of tolerogenic factors. ACT-treated tumors demonstrated heightened hypoxia pathway activation, with elevated HIF1α expression in DCs. Hypoxia induced DC tolerogenic programs and reduced their ability to activate T cells, an effect partially reversed by HIF1α disruption. Increased immune infiltration and inflammation following ACT further amplified hypoxia signaling and enhanced DC tolerance. Conclusions: DC dysfunction is one of the key mechanisms of immune escape following ACT in glioma. Hypoxia-driven tolerization of DCs impairs sustained anti-tumor immunity, highlighting the hypoxia–DC axis as a promising therapeutic target to enhance immunotherapy efficacy. Full article
(This article belongs to the Special Issue Immune Microenvironment and Immunotherapy in Malignant Brain Tumors)
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13 pages, 12241 KB  
Article
Impedance Spectroscopy Analysis of Field-Assisted Sintered Sr- and Mg-Doped Lanthanum Gallate
by Shirley L. Reis, Cyrile F. N. Gonin, Thiago N. Machado, Marcos A. C. Berton, Reginaldo Muccillo and Eliana N. S. Muccillo
Materials 2026, 19(16), 3481; https://doi.org/10.3390/ma19163481 - 18 Aug 2026
Viewed by 137
Abstract
In this study, the relationship between the microstructure and electrical conductivity of doped lanthanum gallate was investigated to identify the origin of the relatively high resistivity of the grain boundaries in this ceramic solid electrolyte. LaGaO3 containing acceptor dopants, Sr and Mg, [...] Read more.
In this study, the relationship between the microstructure and electrical conductivity of doped lanthanum gallate was investigated to identify the origin of the relatively high resistivity of the grain boundaries in this ceramic solid electrolyte. LaGaO3 containing acceptor dopants, Sr and Mg, was chemically synthesized and consolidated by field-assisted sintering technology. The relative density achieved 98% upon sintering at 1200 °C, and no intragrain porosity was found. The microstructure consisted of submicron-sized grains and exhibited a predominantly transgranular fracture mode. Structural characterization evidenced that all sintered samples display the characteristic orthorhombic crystal structure. Rietveld analysis revealed a secondary phase content of only ~0.71% in samples sintered at 1200 °C. In addition, Raman spectra revealed only the allowed characteristic vibrational modes expected for doped lanthanum gallate. The electrical conductivity was determined by impedance spectroscopy analysis. The bulk conductivity of sintered samples was found to be independent of the sintering temperature. Analysis of the grain boundary resistivity revealed a dependence on the mean grain size, which constricts the pathway of the charge carriers, leading to the formation of space charge layers. The total activation energy determined for conduction is 0.94 eV. Full article
(This article belongs to the Special Issue Obtaining and Characterizing of New Materials (6th Edition))
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22 pages, 17327 KB  
Article
Research on the Absorption Performance of Glass Fiber Fabric Composites Coated with Nickel by Magnetron Sputtering
by Zhuohui Zhou, Yanli Wang, Mengyu Zhou, Zhiyong Wang and Yan Zhao
Polymers 2026, 18(16), 1979; https://doi.org/10.3390/polym18161979 - 14 Aug 2026
Viewed by 268
Abstract
This study focuses on the deposition of nickel thin-films onto glass fiber fabric via DC magnetron sputtering and explores their potential for broadband microwave absorption applications. A total of twelve laminate samples were prepared by integrating the coated fabrics with epoxy resin, with [...] Read more.
This study focuses on the deposition of nickel thin-films onto glass fiber fabric via DC magnetron sputtering and explores their potential for broadband microwave absorption applications. A total of twelve laminate samples were prepared by integrating the coated fabrics with epoxy resin, with sputtering powers ranging from 0.5 to 2 kW and deposition times ranging from 10 to 90 min. The microstructure, surface resistance, electromagnetic parameters, and microwave absorption performance were systematically characterized using SEM, XRD, four-point probe measurements, and vector network analysis, supplemented by the Lorentz model fitting and simulation validation. The results indicate that the nickel coatings exhibit a non-uniform arc-like morphology, with preferential growth along the (111) crystallographic plane, while the (200) and (220) planes form under specific conditions. The surface resistance reaches up to 108 Ω·m, suggesting the absence of a continuous conductive network. Electromagnetic parameter analysis reveals that the laminates display dielectric-loss-dominated microwave absorption, and the Lorentz fitting identifies double resonance peaks under prolonged or high-power sputtering. The addition of a dielectric matching layer further enhances the absorption performance. All samples achieve wideband absorption within the Ku-band. Notably, the samples prepared at 1 kW for 30 min and at 1 kW for 90 min both exhibit a reflectivity of ≤−10 dB across the entire 8–18 GHz frequency range. The experimental results are in good agreement with simulations. The bulk density of the laminates is approximately 1.8 g/cm3. These findings confirm that magnetron-sputtered nickel-coated continuous glass fiber fabrics hold considerable promise for wideband microwave absorption applications. Full article
(This article belongs to the Section Polymer Composites and Nanocomposites)
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26 pages, 11075 KB  
Article
Decitabine Reprograms Temozolomide-Resistant Glioblastoma Through Epigenetic Reactivation and Mesenchymal Attenuation: A Multi-Omics Study
by Itika Arora, Shamsa Hilal Saleh, Arshiya Akbar, Fareeha Arshad, Volodymyr Mavrych, Olena Bolgova, Faisal Abdulhameed Farrash, Ahmed Abu-Zaid, Andleeb Khan, Sheikh Muskan, Mohammed Imran Khan and Ahmed Yaqinuddin
Cancers 2026, 18(16), 2616; https://doi.org/10.3390/cancers18162616 - 14 Aug 2026
Viewed by 277
Abstract
Background/Objectives: Glioblastoma (GBM) is the most lethal primary brain malignancy in adults, with a median overall survival of approximately 15 months. Temozolomide (TMZ) resistance develops in virtually all patients, and no second-line regimen has improved outcomes over the past two decades. The [...] Read more.
Background/Objectives: Glioblastoma (GBM) is the most lethal primary brain malignancy in adults, with a median overall survival of approximately 15 months. Temozolomide (TMZ) resistance develops in virtually all patients, and no second-line regimen has improved outcomes over the past two decades. The DNA methyltransferase inhibitor decitabine (DAC) has attracted interest as a chemosensitizer, but whether it directly reverses the TMZ-resistance transcriptome or operates through distinct, complementary mechanisms has not been tested at multi-omics resolution. Methods: We performed an integrative six-layer multi-omics analysis across five public GEO datasets (bulk RNA-seq, EPIC 850K methylation, and 21,676 single cells) re-purposed from studies conducted for unrelated aims, formally tested DAC-mediated reversal of the TMZ-resistance transcriptome across 11,707 genes, mapped pharmacogenomic targets with DGIdb v5, and built an exploratory, hypothesis-generating 11-gene prognostic model internally validated in TCGA-GBM (n = 166) and externally tested in the independent CPTAC-GBM cohort (n = 96). Results: DAC reprogrammed transcription across 1114–1882 differentially expressed genes per cohort and reactivated 146 direct epigenetic targets, identifying INPP5D/SHIP1 as the top-ranked direct epigenetic-reactivation target. Genome-wide reversal analysis across 11,707 co-detected genes showed a negligible effect (Spearman ρ = 0.073), but single-cell analysis revealed significant per-cell attenuation of MES-like and stem-like programs (Δ = −0.071 and −0.135, respectively; both p < 0.001). The 11-gene risk model achieved a Harrell’s C-index of 0.706 (apparent); after correcting for the two-stage gene selection with a full-pipeline bootstrap, the optimism-corrected C-index was 0.63, and external validation in an independent cohort (CPTAC-GBM, n = 96) showed only near-chance discrimination (C-index 0.55), indicating that the signature does not generalize and is exploratory. Pharmacogenomic mapping yielded 734 unique therapeutic agents (230 FDA-approved) across 69 druggable targets after excluding AR. Most of these agents are not GBM-directed, so this catalog-level mapping is hypothesis-generating rather than a set of therapeutic recommendations. Conclusions: DAC does not broadly reverse the TMZ-resistant transcriptome but acts through three complementary mechanisms: epigenetic reactivation of INPP5D/SHIP1, cancer-testis-antigen and type I interferon induction, and per-cell attenuation of mesenchymal–stem-like transcriptional intensity, supporting hypotheses for rationally designed DAC-based combination therapy in TMZ-resistant GBM. Full article
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22 pages, 11840 KB  
Article
Effect of High-Energy Excimer Treatment of Ti-Based Alloys on Cytocompatibility and Antibacterial Properties
by Petr Slepička, Silvie Rimpelová, Šárka Havlíčková, Tomáš Kovářík, Jiří Martan, Michal Procházka, Petr Sajdl and Nikola Slepičková Kasálková
Int. J. Mol. Sci. 2026, 27(16), 7250; https://doi.org/10.3390/ijms27167250 - 14 Aug 2026
Viewed by 183
Abstract
The study investigates the effects of high-energy laser treatment on titanium-based alloys, TiAlV, TiNbZr, and TiNbSnTa, materials of high interest for medical applications such as implants and dental devices due to their exceptional strength-to-weight ratio, corrosion resistance, and biocompatibility. In this research, a [...] Read more.
The study investigates the effects of high-energy laser treatment on titanium-based alloys, TiAlV, TiNbZr, and TiNbSnTa, materials of high interest for medical applications such as implants and dental devices due to their exceptional strength-to-weight ratio, corrosion resistance, and biocompatibility. In this research, a unique high-energy laser was used for Ti-based surface activation. The laser exposure induced significant changes in both surface morphology and chemistry while preserving the bulk properties of the substrate. The modified surfaces were evaluated for their impact on cytocompatibility and antibacterial activity. It was found that viability of U-2 OS cells incubated with laser-treated Ti-based substrates was not negatively affected and was comparable to or slightly higher than that of control samples, indicating very good cytocompatibility of the prepared materials. Further, antibacterial evaluation against E. coli and S. epidermidis demonstrated that laser-treated samples had improved activity, especially against S. epidermidis, relative to untreated controls. Thus, these results demonstrate that high-energy laser treatment can simultaneously enhance the biocompatibility and antibacterial properties of titanium alloys, highlighting its potential as a versatile surface modification strategy for advanced biomedical devices. Full article
(This article belongs to the Special Issue Antimicrobial Materials: Molecular Developments and Applications)
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23 pages, 5703 KB  
Article
Pressed Cement-Free and Low-Cement Materials Based on Recycled Concrete Powder
by Oleh Bordiuzhenko, Leonid Dvorkin and Vadim Zhitkovsky
Materials 2026, 19(16), 3441; https://doi.org/10.3390/ma19163441 - 13 Aug 2026
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Abstract
The fine powder fraction generated during concrete recycling is often regarded as a low-value by-product or used as a filler in cement-based materials. This study investigates recycled concrete powder (RCP) as the main component of pressed cement-free and low-cement mineral composites. The <0.14 [...] Read more.
The fine powder fraction generated during concrete recycling is often regarded as a low-value by-product or used as a filler in cement-based materials. This study investigates recycled concrete powder (RCP) as the main component of pressed cement-free and low-cement mineral composites. The <0.14 mm fraction was obtained by crushing and sieving concrete waste. Cylindrical specimens were produced by semi-dry pressing at 20 MPa with a forming moisture content of 12–13% and cured under humid-air conditions. Four systems were studied: untreated RCP, thermally activated RCP, RCP with 2.5 wt.% Portland cement, and RCP with 5 wt.% Portland cement. Thermal activation was performed at 600 °C for 2 h. Compressive strength, bulk density, and water resistance coefficient were determined at 3, 7, and 28 days. At 28 days, compressive strength increased from 6.9 MPa for untreated RCP to 11.4 MPa for thermally activated RCP and 12.8 MPa for RCP with 5 wt.% cement, while the water resistance coefficient increased from 0.61 to 0.86. DTA/TGA analysis revealed thermal effects and mass-loss patterns consistent with the presence and evolution of hydrated and carbonate-containing phases. The results demonstrate that RCP can serve as a structure-forming component in pressed cement-free and low-cement materials. Full article
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