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Keywords = copper oxides

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30 pages, 14338 KB  
Review
The Spatial Redox–Metalloptosis Axis in Liver Disease: A Hypothesis on Regional Susceptibility to Ferroptosis and Cuproptosis
by Zhaomin Dong, Maoshen Gong, Guangji Wang and Hong Wang
Antioxidants 2026, 15(9), 1053; https://doi.org/10.3390/antiox15091053 - 23 Aug 2026
Abstract
The pathogenesis and progression of liver diseases are characterized by marked zonal heterogeneity, yet conventional research paradigms have long overlooked this intrinsic spatial logic. Ferroptosis and cuproptosis have been widely implicated in liver disease; however, their precise intralobular distribution and zonal susceptibility patterns [...] Read more.
The pathogenesis and progression of liver diseases are characterized by marked zonal heterogeneity, yet conventional research paradigms have long overlooked this intrinsic spatial logic. Ferroptosis and cuproptosis have been widely implicated in liver disease; however, their precise intralobular distribution and zonal susceptibility patterns remain poorly defined. We present a narrative synthesis of the literature on the spatial zonation of hepatic metabolism, redox homeostasis, and metal handling, and assess their potential roles as determinants of region-specific cell death vulnerability. We propose the novel “spatial redox–metalloptosis axis” hypothesis. The pericentral zone (Zone 3), characterized by hypoxia, high cytochrome P450 activity, and a redox environment that may favor lipid peroxidation under specific pathological conditions, is hypothesized to form a ferroptosis-susceptible niche under metabolic stress. Conversely, the periportal zone (Zone 1), characterized by active copper handling and oxidative phosphorylation-dependent metabolism, is hypothesized to be preferentially vulnerable to cuproptosis (proposed hypothesis; direct zone-resolved evidence of cuproptosis execution in Zone 1 is currently absent). Ceruloplasmin is proposed as a candidate molecular link between copper and iron metabolism. We further identify shared molecular hubs and a hypothesized spatial redox–metalloptosis axis linking these two regulated cell death modalities, while direct biological crosstalk remains to be demonstrated. We also highlight critical technological, mechanistic, and translational gaps. This review aims to shift liver disease research from viewing the liver as a homogeneous organ to a functionally compartmentalized zoned ecosystem, providing a testable theoretical framework for deciphering region-specific liver injury and developing spatially informed therapeutic strategies. Full article
(This article belongs to the Section Aberrant Oxidation of Biomolecules)
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16 pages, 3257 KB  
Article
Effect of Cu/Cu2O/CuO Nanopowder Additives on the Antiwear Performance of Industrial Mineral Oil
by Shunqi Mei, Andrey Nomoev, Erzhena Khartaeva, Undrakh Mishigdorzhiyn, Sergei Nomoev, Sayan Badmaev and Bair Garmaev
Lubricants 2026, 14(9), 329; https://doi.org/10.3390/lubricants14090329 - 22 Aug 2026
Abstract
This study evaluates the effect of copper-containing composite nanopowders on the antiwear properties of additive-free I-20A mineral oil. The powders were produced by the same electron-beam evaporation route in argon under different current–time regimes and differed in phase composition and particle characteristics. N1 [...] Read more.
This study evaluates the effect of copper-containing composite nanopowders on the antiwear properties of additive-free I-20A mineral oil. The powders were produced by the same electron-beam evaporation route in argon under different current–time regimes and differed in phase composition and particle characteristics. N1 was synthesized at 1.4 MeV and 20 mA for 15 min and contained 91 wt.% Cu, 2 wt.% Cu2O, and 7 wt.% CuO (mean particle size 140 nm), whereas N2 was synthesized at 1.4 MeV and 15 mA for 25 min and contained 38 wt.% Cu, 48 wt.% Cu2O, and 14 wt.% CuO (187 nm). Six separate oil suspensions containing 0.01, 0.1, or 1 wt.% N1 or N2 were evaluated in block-on-ring tests; three independent tests were performed for each lubricant condition (21 individual measurements in total). The lowest mean mass loss was obtained with 1 wt.% N2 (0.00290 ± 0.00015 g), representing a 43.1% decrease relative to pure I-20A oil (0.00510 ± 0.00026 g; Holm-adjusted p = 0.0045). The 0.01 and 0.1 wt.% N2 formulations did not differ significantly from pure oil, whereas 0.01 and 1 wt.% N1 significantly increased mass loss. In selected SEM/EDS regions, the wear scar produced with 1 wt.% N1 showed deeper longitudinal grooves and no detectable Cu, whereas the scar produced with 1 wt.% N2 showed a smoother local morphology and 0.58 wt.% Cu. These local observations are consistent with different particle–surface interactions and greater local retention of Cu-containing material for N2, but they do not identify the copper oxidation state or prove formation of a continuous tribofilm. Overall, the powders exhibited formulation- and concentration-dependent antiwear behavior: 1 wt.% N2 was beneficial, whereas 1 wt.% N1 was strongly detrimental. Because the synthesis regime, phase composition, particle size, and morphology varied together, the observed difference cannot be attributed exclusively to the Cu/Cu2O/CuO ratio. Full article
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16 pages, 15593 KB  
Article
Atmospheric Corrosion of High-Lead Bronze: From Cerussite Patina to Bronze Disease
by Zengwei Ji, Lang Guo, Liqin Wang, Yanni Ma, Ren Li, Zeduan Pan and Xing Zhao
Metals 2026, 16(8), 938; https://doi.org/10.3390/met16080938 - 21 Aug 2026
Viewed by 134
Abstract
This study investigates the atmospheric corrosion behavior of high-lead bronze alloys within a simulated aggressive environment characterized by high humidity, acidity, chlorides, oxygen, and CO2. The evolution of surface morphology and corrosion products was systematically monitored using colorimetric analysis and micro-Raman [...] Read more.
This study investigates the atmospheric corrosion behavior of high-lead bronze alloys within a simulated aggressive environment characterized by high humidity, acidity, chlorides, oxygen, and CO2. The evolution of surface morphology and corrosion products was systematically monitored using colorimetric analysis and micro-Raman spectroscopy. Results indicate that the initial patina primarily comprised cuprite (Cu2O) and cassiterite (SnO2), which are predominantly benign phases. During the early corrosion stage, lead oxidation and carbonation prevailed, generating abundant bright-white cerussite. Subsequently, as copper-driven corrosion became dominant, these white deposits diminished and were progressively replaced by characteristic green “bronze disease”, identified as atacamite (Cu2(OH)3Cl). The findings reveal that preferential lead corrosion is likely to induce localized pitting, thereby accelerating degradation of the copper substrate. Consequently, higher lead content may reduce the overall corrosion resistance of bronze artifacts under these specific conditions. These results offer experimental insights into atmospheric corrosion mechanisms and inform the development of evidence-based conservation strategies for bronze cultural heritage. Full article
(This article belongs to the Section Corrosion and Protection)
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21 pages, 2298 KB  
Article
Growth-Linked, Tissue-Specific Antioxidant Reprogramming During Natural Zn/Cu Bioaccumulation in the Pacific Oyster Magallana gigas
by Bo-Wen Huang, Chen-Feng Liu, Mao-Le Wei, Xiang Zhang, Hui-Gang Kang, Kai-Jie Wang and Chang-Ming Bai
Antioxidants 2026, 15(8), 1039; https://doi.org/10.3390/antiox15081039 - 21 Aug 2026
Viewed by 171
Abstract
Whether zinc (Zn) and copper (Cu) bioaccumulation in the Pacific oyster (Magallana gigas) reflects toxicological stress or is an incidental consequence of growth remains unclear. We cultured three commercial triploid M. gigas stocks for approximately one year, sampling gill and hepatopancreas [...] Read more.
Whether zinc (Zn) and copper (Cu) bioaccumulation in the Pacific oyster (Magallana gigas) reflects toxicological stress or is an incidental consequence of growth remains unclear. We cultured three commercial triploid M. gigas stocks for approximately one year, sampling gill and hepatopancreas at the start and end of this period, when Zn/Cu burden was naturally low and high, respectively. Pooled samples from both time points were profiled by whole-transcriptome sequencing, enzyme activity and oxidative damage assays, qPCR validation, and protein–protein interaction network analysis. Transcriptome-wide changes in both tissues tracked the culture period, but growth and Zn/Cu burden were too highly collinear (r = 0.92–0.98) to separate statistically. Critically, of the four metals measured (Zn, Cu, iron [Fe], and manganese [Mn]), only Zn and Cu increased with growth, whereas Fe and Mn did not, indicating metal-specific rather than generalized accumulation. Superoxide dismutase (SOD) activity and the transcript abundance of its copper/zinc isoform (Cu/Zn-SOD) increased with growth in both tissues, whereas catalase (CAT) activity was unchanged and glutathione peroxidase (GPX) activity rose only in gill. Malondialdehyde (MDA), a marker of oxidative damage, increased in both tissues. Gill mounted a broader response than hepatopancreas, including upregulation of KEAP1 alongside downregulation of detoxification, proteostasis, and ribosome-related genes. Stock-level qPCR further revealed stock-dependent regulation of antioxidant genes in hepatopancreas. Together, these results indicate that Zn/Cu bioaccumulation in M. gigas co-varies with growth in a metal-specific manner, consistent with cofactor demand for Cu/Zn-SOD. The accompanying oxidative and proteostatic changes therefore more plausibly reflect growth physiology than an independent pollutant signal. Full article
(This article belongs to the Section Antioxidant Enzyme Systems)
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17 pages, 6478 KB  
Article
Under-Exploited Wild Vigna Species Genetic Resources: An Insight from the Lipid and Mineral Profile Towards Improvement or Neo-Domestication
by Difo Voukang Harouna, Mala Tankam Carine Marcelle, Elmugheira M. I. Mohammed, Vandi Yonas, Haoua-Ou, Aboubakar Lawane Lawane, Patrick A. Ndakidemi, Pavithravani B. Venkataramana and Athanasia O. Matemu
Legumes 2026, 1(1), 4; https://doi.org/10.3390/legumes1010004 - 20 Aug 2026
Viewed by 229
Abstract
Global efforts to end hunger are about more than producing enough food; they are also about producing food that is nutritious enough. Micronutrient deficiencies—the “hidden hunger” affecting billions—persist in part because the domestication bottleneck quietly eroded mineral and lipid diversity from the very [...] Read more.
Global efforts to end hunger are about more than producing enough food; they are also about producing food that is nutritious enough. Micronutrient deficiencies—the “hidden hunger” affecting billions—persist in part because the domestication bottleneck quietly eroded mineral and lipid diversity from the very crops the world relies on most. Wild relatives of domesticated legumes still carry much of that diversity, and genetic biofortification offers a sustainable route to put it back to work. Wild Vigna germplasm remains poorly characterized for traits that could support nutritional biofortification and neo-domestication. With that in mind, we characterized the seed mineral and fatty acid composition of 86 accessions from four wild Vigna species (V. vexillata, V. ambacensis, V. reticulata and V. racemosa), benchmarked against three domesticated (cultivars) and semi-domesticated checks (V. unguiculata, V. umbellata and V. vexillata landrace). Copper, manganese, zinc and iron were quantified by flame atomic absorption spectrophotometry after dry-ash digestion, and fatty acids were profiled as methyl esters by GC-MS. The species differed systematically in their mineral profiles. V. reticulata stood out as the most promising donor for copper-focused breeding, V. vexillata carried the highest median Zn, Mn and Fe values and is attractive for multi-micronutrient improvement, V. ambacensis showed a more stable but less extreme profile, and V. racemosa combined a relatively high Fe concentration with the most nutritionally favorable lipid profile of all—dominated by the essential polyunsaturated linoleic (C18:2n 6) and α-linolenic (C18:3n 3) acids. The other three wild species, by contrast, were dominated by saturated palmitic (C16:0) and stearic (C18:0) acids, which gives their oils greater oxidative stability and different food-industry applications. Principal component analysis supported these patterns for both datasets—minerals (PC1 = 60.39%, PC2 = 20.21%; cumulative 80.61%) and fatty acids (PC1 = 81.6%, PC2 = 14.0%; cumulative 95.6%)—and cleanly separated V. racemosa and the checks from the remaining wild species on lipid composition. Together, these results identify concrete targets for marker-assisted biofortification and de novo domestication of four African Vigna taxa. Full article
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19 pages, 4435 KB  
Article
Development of Silicone Elastomer-Based Composite Films Containing Ibuprofen and Functional Additives
by Mari Atabekyan, Zoya Farmazyan, Nelly Avagyan, Vigen Topuzyan, Stepan Grigoryan, Gohar Khachatryan and Karen Khachatryan
Int. J. Mol. Sci. 2026, 27(16), 7446; https://doi.org/10.3390/ijms27167446 - 20 Aug 2026
Viewed by 621
Abstract
Silicone elastomers are attractive matrices for transdermal drug delivery systems, but the controlled release of poorly water-soluble drugs from hydrophobic silicone networks remains challenging. Medical-grade silicone elastomers are generally regarded as chemically stable, biologically inert, and highly biocompatible polymer matrices, which supports their [...] Read more.
Silicone elastomers are attractive matrices for transdermal drug delivery systems, but the controlled release of poorly water-soluble drugs from hydrophobic silicone networks remains challenging. Medical-grade silicone elastomers are generally regarded as chemically stable, biologically inert, and highly biocompatible polymer matrices, which supports their use in biomedical and pharmaceutical materials. Here, ibuprofen-loaded silicone/polyol composite films were prepared from hydroxyl-terminated polydimethylsiloxane (PDMS-OH) using glycerol- and 1,2-propylene glycol-derived alkoxysilane cross-linkers and amino-terminated PDMS as a metal-free room-temperature-vulcanising catalyst. The effects of cross-linker composition, glycerol, PEG 200 and selected functional additives on film formation, morphology, apparent ibuprofen release and preliminary Strat-M® permeation were evaluated. FTIR analysis indicated no covalent reaction between ibuprofen and the silicone network, but suggested hydrogen-bonding interactions with polyol-rich domains, particularly in glycerol-containing systems. Raman mapping supported ibuprofen incorporation within the films, while SEM showed phase-separated microdomains whose morphology depended on the formulation. Apparent release into 0.9% NaCl at 37 °C was formulation-dependent over 72 h. The optimised F-9 film showed approximately 83% cumulative apparent release, whereas the F-10 film containing copper oxide nanoparticles and sea buckthorn oil showed the highest numerical cumulative apparent release, approximately 94%. Kinetic analysis of the apparent release data supported a mainly diffusion-controlled contribution, modulated by hydrophilic microdomains. These results provide preliminary materials-development evidence that silicone/polyol films can be used to tune apparent ibuprofen release and merit further optimisation for local topical or transdermal applications; however, efficient skin permeation and biological performance require dedicated validation. Full article
(This article belongs to the Special Issue Nanostructured Strategies for Bioactive Compounds)
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25 pages, 18533 KB  
Article
Cognitive and Neurochemical Effects of Brivaracetam Co-Administered with Ethanol: A Preclinical Study
by Ewa Zwierzyńska, Joanna Stragierowicz, Marzenna Nasiadek, Michał Klimczak and Bogusława Pietrzak
Int. J. Mol. Sci. 2026, 27(16), 7435; https://doi.org/10.3390/ijms27167435 - 20 Aug 2026
Viewed by 125
Abstract
Ethanol affects the central nervous system, with frequent use leading to memory impairment. This study aims to determine the effects of brivaracetam on ethanol-induced memory impairment and alterations in selected neurotransmitter levels, trace elements in the brain and serum oxidative stress parameters in [...] Read more.
Ethanol affects the central nervous system, with frequent use leading to memory impairment. This study aims to determine the effects of brivaracetam on ethanol-induced memory impairment and alterations in selected neurotransmitter levels, trace elements in the brain and serum oxidative stress parameters in rats. Brivaracetam was administered for three weeks (6 mg/kg b.w.) before behavioral tests. Ethanol was given as a forced model (5 g/kg b.w.). Spatial memory was evaluated with the Morris water maze test and recognition memory with the novel object recognition test. GABA and glutamate concentrations were evaluated in the cerebellum, hippocampus, and cerebral cortex, while superoxide dismutase (SOD) and catalase (CAT) activities and malondialdehyde (MDA) levels were measured in blood serum. The levels of copper, manganese, zinc, iron, and magnesium in the brain were also determined. Brivaracetam was found to negatively affect spatial and retrieval memory when administered with ethanol and during withdrawal; however, the drug improved ethanol-induced short-term recognition memory impairment. Furthermore, brivaracetam increased CAT activity, while MDA was decreased and SOD increased in all drug-treated animals. Brivaracetam may counteract ethanol-induced manganese brain concentration, but increases iron, magnesium, and copper concentrations. Hence, brivaracetam use induces various effects on the central nervous system. Full article
(This article belongs to the Section Molecular Neurobiology)
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12 pages, 1646 KB  
Article
Rapid Amperometric Assessment of Substrate Oxidation and Acute Toxicant Responses in Acidithiobacillus Strain Thio1
by Alyona Yachkula, Tatiana Kuvichkina, Anton Zvonarev, Tatiana Abashina, Anatoly Reshetilov and Mikhail Vainshtein
Microbiol. Res. 2026, 17(8), 162; https://doi.org/10.3390/microbiolres17080162 - 19 Aug 2026
Viewed by 107
Abstract
Obligate acidophilic bacteria of the genus Acidithiobacillus are widely used and well known in the biomining industry. Over the past decade, it has been shown that bacterial activity can be determined in short-term experiments via amperometric measurements of microbial oxygen consumption, as changes [...] Read more.
Obligate acidophilic bacteria of the genus Acidithiobacillus are widely used and well known in the biomining industry. Over the past decade, it has been shown that bacterial activity can be determined in short-term experiments via amperometric measurements of microbial oxygen consumption, as changes in the Clark electrode current are proportional to changes in the concentration of dissolved oxygen. This article presents a study of Acidithiobacillus sp. strain Thio1, which was isolated from pyrite–chalcopyrite copper ore and is closely related to A. ferrooxidans. Oxygen consumption by strain Thio1 was measured during the bacterial oxidation of substrates as changes in the electrode current. To evaluate the acute respiratory response of the bacteria to Cu, Zn, and As, respiration suppression was measured at increasing concentrations of the toxicants. The proposed amperometric method is not a substitute for the long-term biogeotechnological evaluation of strain activity using specific ore or pulp samples. At the same time, it can be used as a complementary microbiological method. The proposed approach offers distinct advantages: testing takes mere minutes (rapid analysis), and comparisons of substrates or toxicants can be performed using a single biomass sample (standardization). The amperometric method also demonstrated that oxygen was consumed during the corrosion of solid specimens (steel and chalcopyrite) by Acidithiobacillus sp. strain Thio1. However, applying this method to biocorrosion requires further study because the proportion of oxygen consumption directly related to microbial corrosion remains unknown. Full article
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57 pages, 43335 KB  
Review
Recent Progress in the Manufacture and Performance of Silver-Based Conductive Coatings for Electrical Contacts: A Review
by Magdalena Valentina Lungu, Alina Ruxandra Caramitu, Ioana Ion, Eduard Marius Lungulescu, Ciprian Alexandru Manea, Laura Elena Geambazu, Valentin Mihailov and Sergiu Ivaşcu
Surfaces 2026, 9(3), 76; https://doi.org/10.3390/surfaces9030076 - 18 Aug 2026
Viewed by 118
Abstract
Silver (Ag)-based conductive coatings are widely used in electrical contacts due to their excellent electrical conductivity, low contact resistance, good thermal stability and oxidation resistance, although their susceptibility to sulfidation and environmental corrosion is a concern under certain service conditions. In recent years, [...] Read more.
Silver (Ag)-based conductive coatings are widely used in electrical contacts due to their excellent electrical conductivity, low contact resistance, good thermal stability and oxidation resistance, although their susceptibility to sulfidation and environmental corrosion is a concern under certain service conditions. In recent years, significant progress has been achieved in both the manufacture and performance optimization of Ag-based coatings to satisfy the demanding requirements of modern electrical and electronic systems. This review summarizes recent advances in fabrication techniques and processing parameters for Ag-based coatings, including electroplating, electroless deposition, magnetron sputtering, electrospark deposition, thermal spraying, and electrical explosion spraying on metallic substrates, particularly on copper and steel substrates. More attention is given to microstructural design strategies, such as the incorporation and homogeneous dispersion of reinforcement or solid lubricant phases within the Ag matrix, to enhance contact reliability and operational endurance. The performance of Ag-based coatings is analyzed in terms of their physical, chemical and mechanical properties, electrical contact resistance, friction and wear behavior, arc erosion resistance, and environmental durability under different service conditions. Key challenges, including coating degradation under high electrical loads, mechanical wear, and corrosive environments, are highlighted. Future research directions are outlined, focusing on multifunctional coating structures that enhance surface performance and ensure the long-term durability of electrical contacts. Full article
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36 pages, 17215 KB  
Review
Copper/Copper Oxide Nanoparticles: Biological Synthesis, Characterization and Potential Biomedical Applications: Advances and Perspectives
by Md. Amdadul Huq, Md. Ashikur Rahman, Md. Rasel Rana and Jong-Whi Park
Pharmaceuticals 2026, 19(8), 1306; https://doi.org/10.3390/ph19081306 - 18 Aug 2026
Viewed by 434
Abstract
The biosynthesis of copper and copper oxide nanoparticles (Cu/CuO-NPs) has attracted considerable interest due to its non-toxic, eco-friendly nature and wide-ranging applications, especially in nanomedicine and biomedical fields. Traditional nanoparticle production methods often involve toxic chemicals and generate harmful byproducts. In contrast, biological [...] Read more.
The biosynthesis of copper and copper oxide nanoparticles (Cu/CuO-NPs) has attracted considerable interest due to its non-toxic, eco-friendly nature and wide-ranging applications, especially in nanomedicine and biomedical fields. Traditional nanoparticle production methods often involve toxic chemicals and generate harmful byproducts. In contrast, biological synthesis provides a cleaner, safer, more cost-effective, and sustainable alternative. Various biological sources, including plants, bacteria, fungi, and yeast, have been employed for the efficient and non-toxic production of Cu/CuO-NPs. These organisms contain diverse biomolecules such as enzymes, proteins, amino acids, vitamins, flavonoids, and alkaloids that function as reducing, capping, and stabilizing agents during nanoparticle formation. The biologically synthesized Cu/CuO-NPs are characterized using UV-VIS spectroscopy, Raman spectroscopy, TEM, SEM, EDX, XRD, TGA, XPS, FTIR, DLS, zeta potential analyzer, etc. Cu/CuO-NPs hold promise for applications in nanomedicine, primarily because of their strong antimicrobial and anticancer activities and potential use as disinfectants against infectious diseases. Various reports have suggested that the biologically synthesized Cu/CuO-NPs have exhibited significant antimicrobial and anticancer efficacies against pathogenic bacteria, fungi and viruses and various cancer cells. Due to their nanoscale dimensions and extensive surface area, Cu/CuO nanoparticles can readily infiltrate cell walls, disrupt membrane integrity, generate reactive oxygen species, and hinder both DNA replication and protein production, leading to cell death. The present review comprehensively describes the biological synthesis of Cu/CuO-NPs, their characterization techniques, and potential antibacterial, antifungal, antiviral, and anticancer applications. The modes of action for antibacterial, antifungal, antiviral, and anticancer properties have also been explored critically. Full article
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32 pages, 3716 KB  
Article
Low-Temperature Synthesized Mixed-Phase Copper Oxides Deposited for Photocatalytic Antibiotic Degradation
by Maria-Anthoniette Oghenetejiro Onoriode-Afunezie, Arminas Gloveckas, Brigita Abakevičienė and Agnė Šulčiūtė
Coatings 2026, 16(8), 982; https://doi.org/10.3390/coatings16080982 - 17 Aug 2026
Viewed by 312
Abstract
The persistence of antibiotics like ciprofloxacin (CIP) in aquatic environments necessitates the development of efficient, low-cost wastewater treatment technologies. This study investigates a low-temperature fabrication strategy for mixed-phase copper oxide (CuO/Cu2O) coatings synthesized via co-precipitation and immobilized using electrophoretic deposition (EPD). [...] Read more.
The persistence of antibiotics like ciprofloxacin (CIP) in aquatic environments necessitates the development of efficient, low-cost wastewater treatment technologies. This study investigates a low-temperature fabrication strategy for mixed-phase copper oxide (CuO/Cu2O) coatings synthesized via co-precipitation and immobilized using electrophoretic deposition (EPD). A critical finding was that a 25 min precursor aging time (T25) preserved a metastable mixture of CuO and Cu2O phases, which is highly advantageous for creating heterojunction interfaces that enhance charge separation. In contrast, extended aging (T35) promoted phase consolidation toward bulk CuO, reducing catalytic surface area. During the EPD process, applied voltage acted as an influence to the relative phase composition and deposition behavior of the deposited coatings; 1.0 V was identified as the optimal condition, balancing high phase fidelity with enhanced crystallinity (average crystallite size of 30.6 nm) and mechanical stability. Photocatalytic experiments demonstrated significant CIP degradation, with the 0.9 V and 1.0 V films outperforming the 1.2 V film, possibly due to more favorable surface chemistry and phase diversity. While the 0.9 V film achieved the highest mineralization efficiency (18% TOC removal), the 1.0 V film offered the best balance between photocatalytic activity, structural stability, and phase selectivity for practical applications. High-Performance Liquid Chromatography-Mass Spectrometry HPLC-MS analysis suggested that degradation proceeds through oxidative pathways involving piperazine ring cleavage and defluorination. Full article
(This article belongs to the Special Issue Advanced Coatings for Catalytic Application)
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15 pages, 5599 KB  
Article
The Electron-Providing Effect of a Schiff Base Copper(II) Complex Mediator and Lignin for Laccase
by Reon Aihara, Daisuke Nakane, Abul Monsur Showkot Hossain, Kholnazarov Bakhodir Azamovich, Sayantan Pradhan and Takashiro Akitsu
J. Compos. Sci. 2026, 10(8), 434; https://doi.org/10.3390/jcs10080434 - 17 Aug 2026
Viewed by 222
Abstract
In biofuel cells using laccase, the electron supply to the type 1 (T1) site is inefficient, constituting a major bottleneck for the overall reaction. To solve this problem, the use of mediator molecules that mediate electron transfer is being studied. Furthermore, lignin is [...] Read more.
In biofuel cells using laccase, the electron supply to the type 1 (T1) site is inefficient, constituting a major bottleneck for the overall reaction. To solve this problem, the use of mediator molecules that mediate electron transfer is being studied. Furthermore, lignin is known to be oxidized by laccase and can donate electrons, which indicates the potential application of this reaction in biofuel cells. Therefore, in this study, docking calculations were performed to clarify the interactions between a copper(II) complex mediator and laccase. At the same time, a copper complex mediator was selected, and cyclic voltammetry (CV) measurements were performed to evaluate its electrochemical properties. In the CV measurements, the differences in current responses with and without the mediator and lignin (an oxidized substrate of laccase) were compared. As a result, based on the docking calculations, it was proposed that the synthesized copper complex mediator binds relatively strongly to laccase. Moreover, CV measurements confirmed that the current tended to increase upon the addition of the mediator and/or lignin. This current enhancement explicitly demonstrates the efficient electron-providing effect of the mediator and lignin to the laccase-based system. Full article
(This article belongs to the Section Biocomposites)
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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 147
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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29 pages, 2260 KB  
Review
Bioleaching of Copper Sulfide Ores: From Microbial Mechanisms to Industrial Applications
by Zulaikha Abid and Yuandong Liu
Separations 2026, 13(8), 234; https://doi.org/10.3390/separations13080234 - 16 Aug 2026
Viewed by 176
Abstract
The global energy transition and rapid electrification are driving increased demand for copper. However, conventional pyrometallurgical and hydrometallurgical extraction routes are increasingly challenged by declining ore grades and stricter environmental regulations. Bioleaching involves the microbial catalysis of sulfide mineral dissolution and provides a [...] Read more.
The global energy transition and rapid electrification are driving increased demand for copper. However, conventional pyrometallurgical and hydrometallurgical extraction routes are increasingly challenged by declining ore grades and stricter environmental regulations. Bioleaching involves the microbial catalysis of sulfide mineral dissolution and provides a sustainable method for copper recovery from low-grade ores, tailings and secondary resources. This review provides a critical and integrated analysis of copper sulfide bioleaching, covering microbial diversity, molecular mechanisms, mineralogical controls, operational parameters, and industrial applications. This review also examines the functional roles of prominent acidophiles, including the functional roles of prominent acidophiles, including Acidithiobacillus spp., Leptospirillum spp. and thermophilic archaea, in the oxidation of iron and sulfur, mitigation of passivation, and metal solubilization. The molecular underpinnings of these processes are explored by investigating iron and sulfur oxidation gene networks (the rus operon and sox cluster), copper resistance systems (CopA, CusCBA) and biofilm formation pathways. The mineralogical controls on the behavior of chalcopyrite (refractory/passivating), chalcocite (highly reactive) and bornite (intermediate) are critically assessed. The synergistic effects of key operational parameters (temperature, pH, redox potential, aeration and particle size) on leaching kinetics and microbial community dynamics are investigated. The scalability, efficiency and environmental footprint of industrial applications such as heap, dump, stirred-tank and in situ bioleaching are discussed. Despite more than four decades of commercial development, several challenges remain, such as slow chalcopyrite dissolution, passivation, metal toxicity, and scale-up limitations. Emerging solutions such as synthetic microbial consortia, multi-omics technologies, artificial intelligence-assisted optimization, and digital twins are identified as transformative approaches for next-generation biomining. In this review, microbiology, mineralogy, electrochemistry, and process engineering are integrated to demonstrate that biotechnological leaching is among the most promising technologies for the sustainable production of copper and to identify future directions for its industrial application. Full article
(This article belongs to the Special Issue Separation Techniques in Recovery of Valuable Metal Resources)
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18 pages, 1978 KB  
Article
Effects of Three Antifouling Biocides on Marine Biofilm-Forming Bacteria: Highlighting the Need to Monitor Resistance Development When Reducing Active Compound Concentrations
by Jessica Gomez-Banderas, Zoé P. Morreeuw, Lylia Fellah, Dorsaf Malouch, Mathieu Berchel, Paul-Alain Jaffrès, Frithjof C. Küpper, Marcel Jaspars and Claire Hellio
Appl. Sci. 2026, 16(16), 8138; https://doi.org/10.3390/app16168138 - 15 Aug 2026
Viewed by 212
Abstract
Environmental concerns regarding the ecotoxicological effects of antifouling biocides have led to the development of products targeting biofilm-forming bacteria. However, the potential for sublethal biocide exposure to promote bacterial adaptation and increase the risk of resistance development poses a potential threat to marine [...] Read more.
Environmental concerns regarding the ecotoxicological effects of antifouling biocides have led to the development of products targeting biofilm-forming bacteria. However, the potential for sublethal biocide exposure to promote bacterial adaptation and increase the risk of resistance development poses a potential threat to marine ecosystems and human health, yet it remains insufficiently understood. Although this study focuses on conventional antifouling biocides, the findings are intended to inform the future development and evaluation of both conventional and environmentally friendly antifouling technologies by highlighting the importance of assessing resistance induction at sublethal concentrations. In this study, the effects of three representative antifouling biocides on marine bacterial growth and bacterial adhesion were investigated. Sea-Nine 211 (DCOIT), copper sulphate (CuSO4), and tributyltin oxide (TBTO; included as a historical reference compound due to its environmental persistence) were tested at four concentrations (0.01, 0.1, 1.0, and 10 µg/mL) against six marine biofilm-forming bacteria: Vibrio proteolyticus, V. aestuarianus, V. harveyi, V. natriegens, Shewanella putrefaciens and Pseudoalteromonas elyakovii. The results showed that Sea-Nine 211 exhibited a strong antibacterial effect at 10 µg/mL against all tested species except V. harveyi, whereas at the lowest concentration it promoted bacterial adhesion in V. proteolyticus. In contrast, TBTO and CuSO4 showed limited antibacterial activity and increased microbial adhesion at the three lowest concentrations tested. These findings demonstrate that antifouling biocides can induce distinct responses depending on the concentration, ranging from growth inhibition to enhanced bacterial adhesion. Given that reducing biocide release has been proposed as a strategy to mitigate environmental impacts, our results highlight two potential challenges: (i) reduced antifouling efficacy at sublethal concentrations and (ii) an increased risk of bacterial adaptation associated with enhanced adhesion. To support future monitoring and resistance risk assessment, we propose a conceptual Resistance Risk Index (RRI) framework that could contribute to the sustainable management of antifouling agents while accounting for local environmental conditions. Full article
(This article belongs to the Special Issue Marine-Derived Bioactive Compounds and Marine Biotechnology)
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