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Keywords = silver dopant

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18 pages, 4345 KB  
Article
A Flexible Organic Thermoelectric Generator with Optimized Interconnects Based on Doped Single-Walled Carbon Nanotube Clays
by Yunxi Cheng, Zhijie Liu, Lihui Cai, Xinchang Kang, Jingda Liu, Jianglin Wang, Zhichun Liu and Limei Shen
Energies 2026, 19(15), 3626; https://doi.org/10.3390/en19153626 - 2 Aug 2026
Viewed by 194
Abstract
Organic thermoelectric generators (OTEGs) are promising for wearable low-grade heat harvesting, but their device-level output is often limited by interconnect-induced losses. This study investigates flexible OTEGs based on doped single-walled carbon nanotube (SWCNT) thermoelectric clays and optimizes their interconnect structure. P-type and n-type [...] Read more.
Organic thermoelectric generators (OTEGs) are promising for wearable low-grade heat harvesting, but their device-level output is often limited by interconnect-induced losses. This study investigates flexible OTEGs based on doped single-walled carbon nanotube (SWCNT) thermoelectric clays and optimizes their interconnect structure. P-type and n-type SWCNT clays were prepared by solution processing using TCNQ and TPP as dopants, respectively, and assembled into a five-pair flexible OTEG. The optimized p-type and n-type clays exhibited Seebeck coefficients of 40.81 and −22.42 μV K−1, respectively. The initial OTEG, in which p-type thermoelectric clay was used as the interconnect, delivered a maximum output power of 16.47 nW at ΔT = 21 K. Replacing this thermoelectric-clay interconnect with a compliant Cu-foil/silver-paste interconnect reduced the internal resistance from approximately 372 Ω to 2 Ω, whereas the open-circuit voltage at ΔT = 21 K increased only modestly from 4.95 to 5.08 mV. Under identical controlled temperature-gradient and load-scanning conditions, the optimized OTEG delivered 3.08 μW at ΔT = 21 K, corresponding to a power density of 356.36 nW cm−2. Mechanical and wrist-worn tests further indicated the flexibility and practical voltage response of the optimized device. These results demonstrate that interconnect optimization is critical for improving SWCNT-clay-based flexible OTEGs. Full article
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21 pages, 5630 KB  
Article
Application of Nanostructured Semiconductor Oxides TiO2-Based as Additives in the Germination Process of Alfalfa
by Alexis Martínez-Barras, Susana Rodríguez-Jurado, Humberto Aguirre-Becerra, Claudia E. Pérez-García, Karen Esquivel Escalante and Ana A. Feregrino-Pérez
Agronomy 2025, 15(11), 2580; https://doi.org/10.3390/agronomy15112580 - 10 Nov 2025
Viewed by 967
Abstract
Nanotechnology has emerged as a promising approach to enhance agricultural productivity; in this context, the effects of nanoparticles (NPs) on plants depend strongly on their size, composition, and concentration. We evaluated the influence of titanium dioxide (TiO2) and silver-doped titanium dioxide [...] Read more.
Nanotechnology has emerged as a promising approach to enhance agricultural productivity; in this context, the effects of nanoparticles (NPs) on plants depend strongly on their size, composition, and concentration. We evaluated the influence of titanium dioxide (TiO2) and silver-doped titanium dioxide (Ag-TiO2) nanoparticles on seed germination, early growth, metabolite production, and antioxidant responses in alfalfa (Medicago sativa L.). Nanoparticles were synthetized via sol–gel; titanium isopropoxide was used as precursor and isopropanol as organic solvent, silver nitrate was used as dopant. Seeds were treated with nanoparticle suspensions at 0, 1, 5, 10, and 15 ppm. Morphological parameters (germination rate, radicle length, fresh weight, leaf morphology, and chlorophyll index), total phenols, flavonoids, and antioxidant capacity (DPPH and ABTS assays) were evaluated. Results showed a concentration-dependent response in morphological characteristics. TiO2 promoted radicle elongation at 10 ppm (16%) and increased chlorophyll index along all concentrations (from 7% to 17%) but inhibited leaf growth at both 1 and 15 ppm (from 49% to 59%). In contrast, Ag-TiO2 enhanced germination percentage by up to 95% and phenolic accumulation at 5 and 15 ppm (p < 0.05), although leaf length was consistently reduced across all concentrations (from 11% to 17%). Flavonoid levels increased by up to 116% at concentration of 15 ppm (p < 0.05). Antioxidant activity exhibited a contrasting pattern: TiO2 reduced radical scavenging capacity when applied at 10 and 15 ppm, against the control group, from 48.62% to 17.72% and 13.96%, respectively, while Ag-TiO2 maintained the antioxidant capacity when applied at 1 ppm. These findings suggest that nanoparticles in fact influence the germination process and have a noticeable effect on the morphological characteristics of alfalfa’ sprouts. Full article
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14 pages, 7255 KB  
Article
Cu-Assisted Corrosion Conquers Irregularities in Mesoporous Si
by Hanna V. Bandarenka, Anastasiya Shapel, Diana Laputsko, Alma Dauletbekova, Abdirash Akilbekov, Zhuldyz Nurlan, Diana Junisbekova, Uladzislau Shapel, Alise Podelinska, Elina Neilande, Anatoli I. Popov and Dmitry Bocharov
Technologies 2025, 13(11), 512; https://doi.org/10.3390/technologies13110512 - 9 Nov 2025
Viewed by 885
Abstract
Metal-coated mesoporous PSi (mesoPSi) opens up disruptive perspectives for biosensing, which is primarily enabled by surface-enhanced Raman scattering (SERS). Although the unique performance of SERS-active substrates based on metal-coated mesoPSi has already been praised, influence of defects in silicon wafer on its morphology [...] Read more.
Metal-coated mesoporous PSi (mesoPSi) opens up disruptive perspectives for biosensing, which is primarily enabled by surface-enhanced Raman scattering (SERS). Although the unique performance of SERS-active substrates based on metal-coated mesoPSi has already been praised, influence of defects in silicon wafer on its morphology has not been revealed. Defects lead to formation of spiral regions in mesoPSi with varying porosity, which affects SERS activity of the overlying metallic nanostructures. It limits the reliability of SERS analysis. Here, we investigate repeatability of morphology and SERS activity of silver particles on mesoPSi as a function of defects in parent silicon, which are induced by irregular dopant levels. We propose an original corrosion approach that has not yet been applied to control the morphology of silicon nanostructures in general and mesoPSi in particular. By replacing silicon nanocrystallites with sacrificial copper nanoparticles, we were able to eliminate the surface irreproducibility of mesoPSi. The copper-corrosion-modified porous silicon surface was shown to be a suitable substrate for reliable SERS-active substrates. In more detail, SERS-active substrate based on mesoPSi without a defective surface layer allowed for a more than 40% increase in the SERS-active surface area with a signal deviation of only 10 % compared to that with a defective layer. Full article
(This article belongs to the Section Innovations in Materials Science and Materials Processing)
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19 pages, 9109 KB  
Article
High Current Induction for the Effective Bending in Ionic Polymer Metal Composite
by Hirohisa Tamagawa, Rintaro Fujiwara and Iori Kojima
Membranes 2025, 15(11), 333; https://doi.org/10.3390/membranes15110333 - 3 Nov 2025
Viewed by 971
Abstract
Ionic Polymer–Metal Composites (IPMCs) are promising electroactive polymers for artificial muscles, as their bending motion depends on the induced current—greater current leads to greater bending. While conventional IPMCs use cation exchange membranes, this study explores IPMCs containing both immobile positive and negative charges, [...] Read more.
Ionic Polymer–Metal Composites (IPMCs) are promising electroactive polymers for artificial muscles, as their bending motion depends on the induced current—greater current leads to greater bending. While conventional IPMCs use cation exchange membranes, this study explores IPMCs containing both immobile positive and negative charges, resembling real muscle tissue. Considering that an IPMC consists of an ion-exchange membrane sandwiched between two thin metal coatings serving as electrodes, we found that (i) improving the contact between the metal coating (electrode) and the ion exchange membrane is an effective way to enhance current induction. Achieving tight electrode membrane contact can drastically increase the induced current by up to four orders of magnitude, and even samples that previously showed no current induction can exhibit measurable current after improvement. (ii) Doping with mobile ions is another well-known method of enhancing IPMC current. However, we found that simply introducing dopants into the IPMC body is not effective; the choice of dopant is crucial. In this work, we identified silver ions as effective dopants for enhancing current induction. Considering that real muscles consume oxygen for activation, we also attempted to supply oxygen to the IPMC surface. We confirmed that (iii) supplying oxygen to the IPMC surface is another effective means of enhancing current induction, which in turn resulted in a significant improvement in IPMC bending performance. Full article
(This article belongs to the Section Membrane Applications for Other Areas)
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31 pages, 3851 KB  
Review
The Role of Ion-Doped Hydroxyapatite in Drug Delivery, Tissue Engineering, Wound Healing, Implants, and Imaging
by Sorur Jadbabaee, Farnaz Mohebi Far, Javad Esmaeili and Majid Kolahdoozan
Chemistry 2025, 7(5), 137; https://doi.org/10.3390/chemistry7050137 - 26 Aug 2025
Cited by 8 | Viewed by 4522
Abstract
The ion doping of hydroxyapatite (HA) has gained appeal as a chemical method of improving and adding new characteristics to materials used in biomedical engineering. Dimension, morphology, porosity, surface charge, topology, composition, and other material characteristics make doped HA more suitable for specific [...] Read more.
The ion doping of hydroxyapatite (HA) has gained appeal as a chemical method of improving and adding new characteristics to materials used in biomedical engineering. Dimension, morphology, porosity, surface charge, topology, composition, and other material characteristics make doped HA more suitable for specific biomedical applications. The main aim of this review study was to highlight the role of iHA (iHA) in developing drug delivery systems, tissue engineering, implant coating, wound healing, and multimodal imaging. To the best of our knowledge, depending on the dopant, iHA can have inherent distinct mechanical, physicochemical, and biological properties that make it eligible for biomedical application. More importantly, some ions make iHA a potent antibacterial agent and drug carrier for wound healing (e.g., silver, copper, zinc), have tissue engineering capabilities, improved proangiogenic and osteoconductive properties (e.g., strontium, cobalt, nickel), drug loading capacity (e.g., magnesium, ferric, strontium), metallic implant coating properties (e.g., manganese, silver, copper), and multimodal imaging potential (e.g., terbium, ytterbium, cerium). The concentration of ions and the number of dopants played a vital role in developing new approaches based on iHA. In conclusion, iHA, compared to HA, could show better improvements in biomedical applications. Full article
(This article belongs to the Topic Advanced Biomaterials: Processing and Applications)
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9 pages, 1252 KB  
Communication
Dual Effects of Ag Doping and S Vacancies on H2 Detection Using SnS2-Based Photo-Induced Gas Sensor at Room Temperature
by Shaoling Wang, Xianju Shi, Na Fang, Haoran Ma and Jichao Wang
Materials 2025, 18(12), 2687; https://doi.org/10.3390/ma18122687 - 6 Jun 2025
Cited by 4 | Viewed by 1344
Abstract
Hydrogen (H2) monitoring demonstrates significant practical importance for safety assurance in industrial production and daily life, driving the demand for gas-sensing devices with enhanced performance and reduced power consumption. This study developed a room-temperature (RT) hydrogen-sensing platform utilizing two-dimensional (2D) Ag-doped [...] Read more.
Hydrogen (H2) monitoring demonstrates significant practical importance for safety assurance in industrial production and daily life, driving the demand for gas-sensing devices with enhanced performance and reduced power consumption. This study developed a room-temperature (RT) hydrogen-sensing platform utilizing two-dimensional (2D) Ag-doped SnS2 nanomaterials activated by light illumination. The Ag-SnS2 nanosheets, synthesized through hydrothermal methods, exhibited exceptional H2 detection capabilities under blue LED light activation. The synergistic interaction between silver dopants and photo-activation enabled remarkable gas sensitivity across a broad concentration range (5.0–2500 ppm), achieving rapid response/recovery times (4 s/18 s) at 2500 ppm under RT. Material characterization revealed that Ag doping induced S vacancies, enhancing oxygen adsorption, while simultaneously facilitating photo-induced hole transfer for surface hydrogen activation. The optimized sensor maintained good response stability after five-week ambient storage, demonstrating excellent operational durability. Experimental results further demonstrated that Ag dopants enhanced hydrogen adsorption–activation, while S vacancies improved the surface oxygen affinity. This work provides fundamental insights into defect engineering strategies for the development of optically modulated gas sensors, proposing a viable pathway for the construction of energy-efficient environmental monitoring systems. Full article
(This article belongs to the Section Catalytic Materials)
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24 pages, 3631 KB  
Review
A Review on Production of Ethylene Oxide from Epoxidation of Ethylene: Catalysis, Mechanism and Kinetics
by Mahammad Ali Saritala, Mohammed Muzammil, Mohammad R. Quddus, Shaikh Abdur Razzak and Mohammad M. Hossain
Catalysts 2025, 15(6), 560; https://doi.org/10.3390/catal15060560 - 4 Jun 2025
Cited by 5 | Viewed by 11412
Abstract
This review describes the different developments in the production of ethylene oxide (EO) by epoxidation of ethylene. EO is an important chemical intermediate for the manufacture of a variety of industrial and consumer products, such as ethylene glycol, plastics, and pharmaceuticals. The conventional [...] Read more.
This review describes the different developments in the production of ethylene oxide (EO) by epoxidation of ethylene. EO is an important chemical intermediate for the manufacture of a variety of industrial and consumer products, such as ethylene glycol, plastics, and pharmaceuticals. The conventional gas-phase epoxidation process using silver-based catalysts suffers from major drawbacks, including low selectivity and high carbon dioxide emissions. This review underlines emerging solutions for efficiency and sustainability improvement in EO production. Major developments in catalyst design, including novel silver-based hybrid nanostructures, Mn-N4GP catalysts, and chemical looping epoxidation processes, are presented. It also discusses developments in reaction kinetics, including catalyst surface optimization and the use of dopants. The article also outlines catalyst deactivation challenges, cost, and scalability and describes future research directions on renewable feedstocks, reducing energy consumption and most importantly environmental impact. These innovations are oriented toward a more sustainable and economical route for large-scale manufacturing of ethylene oxide. Full article
(This article belongs to the Section Catalytic Reaction Engineering)
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21 pages, 2681 KB  
Review
Exploring Metal- and Porphyrin-Modified TiO2-Based Photocatalysts for Efficient and Sustainable Hydrogen Production
by Dimitrios Rafail Bitsos, Apostolos Salepis, Emmanouil Orfanos, Athanassios G. Coutsolelos, Ramonna I. Kosheleva, Athanassios C. Mitropoulos and Kalliopi Ladomenou
Inorganics 2025, 13(4), 121; https://doi.org/10.3390/inorganics13040121 - 11 Apr 2025
Cited by 14 | Viewed by 6023
Abstract
Photocatalytic H2 production is one of the most promising approaches for sustainable energy. The literature presents a plethora of carefully designed systems aimed at harnessing solar energy and converting it into chemical energy. However, the main drawback of the reported photocatalysts is [...] Read more.
Photocatalytic H2 production is one of the most promising approaches for sustainable energy. The literature presents a plethora of carefully designed systems aimed at harnessing solar energy and converting it into chemical energy. However, the main drawback of the reported photocatalysts is their stability. Thus, the development of a cost-effective and stable photocatalyst, suitable for real-world applications remains a challenge. An ideal photocatalyst for H2 production must possess appropriate band-edge energy positions, an effective sacrificial agent, and a suitable cocatalyst. Among the various photocatalysts studied, TiO2 stands out due to its stability, abundance, and non-toxicity. However, its efficiency in the visible spectrum is limited by its wide bandgap. Metal doping is an effective strategy to enhance electron–hole separation and improve light absorption efficiency, thereby boosting H2 synthesis. Common metal cocatalysts used as TiO2 dopants include platinum (Pt), gold (Au), copper (Cu), nickel (Ni), cobalt (Co), ruthenium (Ru), iron (Fe), and silver (Ag), as well as bimetallic combinations such as Ni-Fe, Ni-Cu, Nb-Ta, and Ni-Pt. In all cases, doped TiO2 exhibits higher H2 production performance compared to undoped TiO2, as metals provide additional reaction sites and enhance charge separation. The use of bimetallic dopants further optimizes the hydrogen evolution reaction. Additionally, porphyrins, with their strong visible light absorption and efficient electron transfer properties, have demonstrated potential in TiO2 photocatalysis. Their incorporation expands the photocatalyst’s light absorption range into the visible spectrum, enhancing H2 production efficiency. This review paper explores the principles and advancements in metal- and porphyrin-doped TiO2 photocatalysts, highlighting their potential for sustainable hydrogen production. Full article
(This article belongs to the Special Issue Featured Papers in Inorganic Materials 2025)
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18 pages, 17970 KB  
Article
Lignin-Mediated Dual Conductive Hydrogels with High Conductivity, Antibacterial Activity and Biocompatibility for Chronic Wound Repair
by Jianhong Lin, Mengyao Chen, Wei Zhao, Shengyu Zhang, Jialin Liu, Yang Zhou, Lei Jiang and Jiantao Zhang
Gels 2025, 11(4), 283; https://doi.org/10.3390/gels11040283 - 11 Apr 2025
Cited by 10 | Viewed by 3128
Abstract
In recent years, conductive polymer hydrogels based on polypyrrole (PPy) combined with electrical stimulation (ES) have emerged as a promising approach for chronic wound repair. However, in practical applications, PPy often exhibits limitations such as poor water dispersion, weak inherent conductivity and a [...] Read more.
In recent years, conductive polymer hydrogels based on polypyrrole (PPy) combined with electrical stimulation (ES) have emerged as a promising approach for chronic wound repair. However, in practical applications, PPy often exhibits limitations such as poor water dispersion, weak inherent conductivity and a lack of biological functionality. To address these challenges, this study proposes an innovative design of a conductive hydrogel that employs a natural biopolymer, lignin sulfonate (Lgs), as both a dispersant and dopant for PPy, while incorporating silver nanoparticles (Ag NPs) to confer the hydrogel antibacterial properties. The results showed that the water dispersion of PPy was significantly improved, and the conductivity of the hydrogel was as high as 2.82 ± 0.04 mS/cm through the double conduction mechanism of PPy and Ag NPs. The hydrogel exhibited antibacterial activity against Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus), and the antibacterial rate could exceed 90%. In vitro tests demonstrated that the hydrogel exhibited good biocompatibility, adhesion ability (7.97 ± 0.56 kPa) and hemostatic ability. Furthermore, in vivo animal experiments showed that the hydrogel combined with ES achieved 93.71 ± 2.46% wound closure within 14 days, which can significantly accelerate wound healing, promote collagen deposition and epithelial tissue regeneration. These findings demonstrate that the developed hydrogel can serve as an effective platform for ES-assisted chronic wound repair. Full article
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15 pages, 3310 KB  
Article
High-Performance Ag-NWs Doped Graphene/ITO Hybrid Transparent Conductive Electrode
by Hana Bourahla, Susana Fernández, Yu Kyoung Ryu, Andres Velasco, Chahinez Malkia, Alberto Boscá, M. Belén Gómez-Mancebo, Fernando Calle and Javier Martinez
Micromachines 2025, 16(2), 204; https://doi.org/10.3390/mi16020204 - 11 Feb 2025
Cited by 10 | Viewed by 3906
Abstract
Indium tin oxide (ITO) is a commonly used material for transparent conductive electrodes (TCE) in optoelectronic applications. On the other hand, graphene has superior electrical conductivity and exceptional mechanical flexibility, which makes it a promising candidate as a TCE material. This work proposes [...] Read more.
Indium tin oxide (ITO) is a commonly used material for transparent conductive electrodes (TCE) in optoelectronic applications. On the other hand, graphene has superior electrical conductivity and exceptional mechanical flexibility, which makes it a promising candidate as a TCE material. This work proposes a CVD graphene/ITO hybrid electrode enhanced by doping with silver nanowires (Ag-NWs). The study aims to improve the performance of the electrode by optimizing two key parameters during the fabrication process: the thermal annealing time after the transfer of graphene on ITO and the Ag-NWs doping conditions. The annealing treatment is fundamental to reducing the residues on the surface of graphene and increasing the interface contact between graphene and ITO. The correct coverage and distribution of the dopant on graphene is obtained by controlling the concentration of the Ag-NWs and the spin coating speeds. The results indicate a substantial improvement in the optical and electrical performance of the Ag-NWs/graphene/ITO hybrid electrode. A remarkably low sheet resistance of 42.4 Ω/sq (±2 Ω/sq) has been achieved while maintaining a high optical transmittance of 87.3% (±0.5%). Full article
(This article belongs to the Special Issue 2D-Materials Based Fabrication and Devices)
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32 pages, 4567 KB  
Review
Modified Zeolites for the Removal of Emerging Bio-Resistive Pollutants in Water Resources
by Fatin Samara, Amer A. Al Abdel Hamid, Venkatesh Gopal, Lara Dronjak, Fares Feghaly and Sofian Kanan
Catalysts 2025, 15(2), 138; https://doi.org/10.3390/catal15020138 - 2 Feb 2025
Cited by 14 | Viewed by 4793
Abstract
The increasing presence of pollutants, including pharmaceuticals and pesticides, in water resources necessitates the development of effective remediation technologies. Zeolites are promising agents for pollutant removal due to their high surface area, ion-exchange capacity, natural abundance, and diverse tailorable porous structures. This review [...] Read more.
The increasing presence of pollutants, including pharmaceuticals and pesticides, in water resources necessitates the development of effective remediation technologies. Zeolites are promising agents for pollutant removal due to their high surface area, ion-exchange capacity, natural abundance, and diverse tailorable porous structures. This review focuses on the efficient application of modified zeolites and mesoporous materials as photocatalysts and adsorbents for removing contaminants from water bodies. The adsorption and photodegradation of pesticides and selected non-steroidal anti-inflammatory drugs and antibiotics on various zeolites reveal optimal adsorption and degradation conditions for each pollutant. In most reported studies, higher SiO2/Al2O3 ratio zeolites exhibited improved adsorption, and thus photodegradation activities, due to increased hydrophobicity and lower negative charge. For example, SBA-15 demonstrated high efficiency in removing diclofenac, ibuprofen, and ketoprofen from water in acidic conditions. Metal doped into the zeolite framework was found to be a very active catalyst for the photodegradation of organic pollutants, including pesticides, pharmaceuticals, and industrial wastes. It is shown that the photocatalytic activity depends on the zeolite-type, metal dopant, metal content, zeolite pore structure, and the energy of the irradiation source. Faujasite-type Y zeolites combined with ozone achieved up to 95% micropollutant degradation. Bentonite modified with cellulosic biopolymers effectively removed pesticides such as atrazine and chlorpyrifos, while titanium and/or silver-doped zeolites showed strong catalytic activity in degrading carbamates, highlighting their environmental application potential. Full article
(This article belongs to the Special Issue Recent Advances in Photocatalytic Treatment of Pollutants in Water)
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19 pages, 668 KB  
Review
Ionic Doping of Hydroxyapatite for Bone Regeneration: Advances in Structure and Properties over Two Decades—A Narrative Review
by Zuzanna Kubiak-Mihkelsoo, Agnieszka Kostrzębska, Artur Błaszczyszyn, Artur Pitułaj, Marzena Dominiak, Tomasz Gedrange, Izabela Nawrot-Hadzik, Jacek Matys and Jakub Hadzik
Appl. Sci. 2025, 15(3), 1108; https://doi.org/10.3390/app15031108 - 23 Jan 2025
Cited by 64 | Viewed by 9585
Abstract
Autogenous grafts remain the “gold standard” in bone tissue grafting procedures; however, limitations such as donor site morbidity, invasiveness, and limited availability have spurred research into alternative materials. Hydroxyapatite (HA), a widely used bioceramic, is known for its bioactivity and biocompatibility. Nonetheless, its [...] Read more.
Autogenous grafts remain the “gold standard” in bone tissue grafting procedures; however, limitations such as donor site morbidity, invasiveness, and limited availability have spurred research into alternative materials. Hydroxyapatite (HA), a widely used bioceramic, is known for its bioactivity and biocompatibility. Nonetheless, its inherent brittleness and porosity necessitate modifications to enhance its mechanical and functional properties. Ionic doping has emerged as a transformative strategy to improve the properties of HA by integrating ions such as strontium (Sr2+), magnesium (Mg2+), and zinc (Zn2+). These dopants influence HA’s crystal structure, morphology, and solubility, resulting in enhanced bioactivity, accelerated bone mineralization, and improved mechanical properties, such as increased fracture resistance and wear durability. Additionally, antimicrobial properties can be achieved through the inclusion of silver ions (Ag+), reducing the risk of peri-implant infections. This review focuses on the effects of ionic doping on the structure and functionality of hydroxyapatite, emphasizing advancements in tailoring its properties to clinical needs. By consolidating two decades of research, this study highlights how ionic doping bridges the gap between synthetic biomaterials and native bone, unlocking new potential in regenerative medicine and orthopedic applications. Full article
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15 pages, 4105 KB  
Article
Synthesis of Ag-Doped Tetrahedral Amorphous Carbon Coatings and Their Antibiofilm Efficacy for Medical Implant Application
by Davoodbasha MubarakAli, Sung-Min Kim, Yu-Been Ko, Jung-Wan Kim, Young-Jun Jang and Sang-Yul Lee
Nanomaterials 2024, 14(12), 1017; https://doi.org/10.3390/nano14121017 - 12 Jun 2024
Cited by 10 | Viewed by 2758
Abstract
Tetrahedral amorphous carbon (taC) is a hydrogen-free carbon with extensive properties such as hardness, optical transparency, and chemical inertness. taC coatings have attracted much attention in recent times, as have coatings doped with a noble metal. A known antimicrobial metal agent, silver (Ag), [...] Read more.
Tetrahedral amorphous carbon (taC) is a hydrogen-free carbon with extensive properties such as hardness, optical transparency, and chemical inertness. taC coatings have attracted much attention in recent times, as have coatings doped with a noble metal. A known antimicrobial metal agent, silver (Ag), has been used as a dopant in taC, with different Ag concentrations on the Ti64 coupons using a hybrid filtered cathodic vacuum arc (FCVA) and magnetron sputtering system. The physiochemical properties of the coated surface were investigated using spectroscopic and electron microscopy techniques. A doping effect of Ag-taC on biofilm formation was investigated and found to have a significant effect on the bacterial-biofilm-forming bacteria Staphylococcus aureus and Pseudomonas aeruginosa depending on the concentration of Ag. Further, the effect of coated and uncoated Ag-taC films on a pathogenic bacterium was examined using SEM. The result revealed that the Ag-taC coatings inhibited the biofilm formation of S. aureus. Therefore, this study demonstrated the possible use of Ag-taC coatings against biofilm-related complications on medical devices and infections from pathogenic bacteria. Full article
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10 pages, 1696 KB  
Communication
Coordination Ion Spray for Analysis of the Growth Hormones Releasing Peptides in Urine—An Application Study
by Azamat Temerdashev, Elina Gashimova, Alice Azaryan, Yu-Qi Feng and Sanka N. Atapattu
Separations 2024, 11(5), 155; https://doi.org/10.3390/separations11050155 - 16 May 2024
Cited by 2 | Viewed by 3344
Abstract
In this article, a comparison of ionization techniques is provided and discussed. Conventional liquid chromatography with an electrospray ionization source shows higher robustness and repeatability in comparison with liquid chromatography coupled with a coordination ion spray (CIS-MS) source using silver nitrate as the [...] Read more.
In this article, a comparison of ionization techniques is provided and discussed. Conventional liquid chromatography with an electrospray ionization source shows higher robustness and repeatability in comparison with liquid chromatography coupled with a coordination ion spray (CIS-MS) source using silver nitrate as the dopant. However, the higher sensitivity and possibility to collect more data in untargeted applications mean CIS-MS is emerging as an instrument used in specific applications. During this research, the limit of detection (LOD) for GHRP-2 and GHRP-6 was established at 0.2 ng/mL, and the lower limit of quantification (LLOQ) was 0.5 ng/mL for CIS-MS. For conventional ESI-MS combined with solid-phase extraction on weak cation exchange columns, the limit of detection was found to be 1 ng/mL, and the lower limit of quantification was 2 ng/mL. Full article
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17 pages, 4951 KB  
Article
An Unprecedented Metal Distribution in Silica Nanoparticles Determined by Single-Particle Inductively Coupled Plasma Mass Spectrometry
by Juan Han, Xu Wu, Julia Xiaojun Zhao and David T. Pierce
Nanomaterials 2024, 14(7), 637; https://doi.org/10.3390/nano14070637 - 6 Apr 2024
Cited by 1 | Viewed by 2282
Abstract
Metal-containing nanoparticles are now common in applications ranging from catalysts to biomarkers. However, little research has focused on per-particle metal content in multicomponent nanoparticles. In this work, we used single-particle inductively coupled plasma mass spectrometry (ICP-MS) to determine the per-particle metal content of [...] Read more.
Metal-containing nanoparticles are now common in applications ranging from catalysts to biomarkers. However, little research has focused on per-particle metal content in multicomponent nanoparticles. In this work, we used single-particle inductively coupled plasma mass spectrometry (ICP-MS) to determine the per-particle metal content of silica nanoparticles doped with tris(2,2′-bipyridyl)ruthenium(II). Monodispersed silica nanoparticles with varied Ru doping levels were prepared using a water-in-oil microemulsion method. These nanoparticles were characterized using common bulk-sample methods such as absorbance spectroscopy and conventional ICP-MS, and also with single-particle ICP-MS. The results showed that averaged concentrations of metal dopant measured per-particle by single-particle ICP-MS were consistent with the bulk-sample methods over a wide range of dopant levels. However, the per-particle amount of metal varied greatly and did not adhere to the usual Gaussian distribution encountered with one-component nanoparticles, such as gold or silver. Instead, the amount of metal dopant per silica particle showed an unexpected geometric distribution regardless of the prepared doping levels. The results indicate that an unusual metal dispersal mechanism is taking place during the microemulsion synthesis, and they challenge a common assumption that doped silica nanoparticles have the same metal content as the average measured by bulk-sample methods. Full article
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