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Search Results (528)

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46 pages, 1449 KB  
Review
MXenes in Solid-State Batteries: Multifunctional Roles from Electrodes to Electrolytes and Interfacial Engineering
by Francisco Márquez
Batteries 2025, 11(10), 364; https://doi.org/10.3390/batteries11100364 - 2 Oct 2025
Abstract
MXenes, a rapidly emerging family of two-dimensional transition metal carbides and nitrides, have attracted considerable attention in recent years for their potential in next-generation energy storage technologies. In solid-state batteries (SSBs), they combine metallic-level conductivity (>103 S cm−1), adjustable surface [...] Read more.
MXenes, a rapidly emerging family of two-dimensional transition metal carbides and nitrides, have attracted considerable attention in recent years for their potential in next-generation energy storage technologies. In solid-state batteries (SSBs), they combine metallic-level conductivity (>103 S cm−1), adjustable surface terminations, and mechanical resilience, which makes them suitable for diverse functions within the cell architecture. Current studies have shown that MXene-based anodes can deliver reversible lithium storage with Coulombic efficiencies approaching ~98% over 500 cycles, while their use as conductive additives in cathodes significantly improves electron transport and rate capability. As interfacial layers or structural scaffolds, MXenes effectively buffer volume fluctuations and suppress lithium dendrite growth, contributing to extended cycle life. In solid polymer and composite electrolytes, MXene fillers have been reported to increase Li+ conductivity to the 10−3–10−2 S cm−1 range and enhance Li+ transference numbers (up to ~0.76), thereby improving both ionic transport and mechanical stability. Beyond established Ti-based systems, double transition metal MXenes (e.g., Mo2TiC2, Mo2Ti2C3) and hybrid heterostructures offer expanded opportunities for tailoring interfacial chemistry and optimizing energy density. Despite these advances, large-scale deployment remains constrained by high synthesis costs (often exceeding USD 200–400 kg−1 for Ti3C2Tx at lab scale), restacking effects, and stability concerns, highlighting the need for greener etching processes, robust quality control, and integration with existing gigafactory production lines. Addressing these challenges will be crucial for enabling MXene-based SSBs to transition from laboratory prototypes to commercially viable, safe, and high-performance energy storage systems. Beyond summarizing performance, this review elucidates the mechanistic roles of MXenes in SSBs—linking lithiophilicity, field homogenization, and interphase formation to dendrite suppression at Li|SSE interfaces, and termination-assisted salt dissociation, segmental-motion facilitation, and MWS polarization to enhanced electrolyte conductivity—thereby providing a clear design rationale for practical implementation. Full article
(This article belongs to the Collection Feature Papers in Batteries)
25 pages, 12591 KB  
Article
Electrochemical Synthesis of Mesoporous Alumina as an Adsorbent of Corrosion Inhibitors for Active Corrosion Protection in Organic Coatings
by Abenchara M. Betancor-Abreu, Javier Izquierdo, Raquel Rodríguez-Raposo, Ricardo A. Liria-Romero, Juan J. Santana and Ricardo M. Souto
Materials 2025, 18(18), 4375; https://doi.org/10.3390/ma18184375 - 19 Sep 2025
Viewed by 250
Abstract
This work describes a simple and economical electrochemical route for the generation of mesoporous alumina (MA) particles that can serve as containers for corrosion inhibitors for the active corrosion protection elements of metals when dispersed in organic coatings. The synthesis of precursor slurries [...] Read more.
This work describes a simple and economical electrochemical route for the generation of mesoporous alumina (MA) particles that can serve as containers for corrosion inhibitors for the active corrosion protection elements of metals when dispersed in organic coatings. The synthesis of precursor slurries was carried out in an electrochemical reactor with aluminum electrodes operating alternately as anodes and cathodes to facilitate metal dissolution and prevent passivation of the electrode surface. The obtained slurries were thermally treated to produce mesoporous alumina particles with adsorbent characteristics suitable for loading corrosion inhibitors. Benzotriazole (BTA) and 8-hydroxyquinoline (8HQ) were chosen as corrosion inhibitors. Dispersed in a commercial polymer matrix and applied to the coating of mild steel samples, the loaded MA improved the corrosion resistance of the coated metal exposed to a simulated marine environment. When physical damage is intentionally caused to expose the underlying metal, the polymer matrix containing BTA-loaded alumina particles retards the corrosion process due to the swelling of the inhibitor from the particles to the exposed bare metal in the scratch. Electrochemical impedance spectroscopy (EIS) measurements showed a marked increase in low-frequency impedance in coatings containing alumina particles, with the BTA-loaded system providing the most durable protection over extended immersion times (with a 50% improvement in corrosion resistance of steel exposed within the scratch). This demonstrates the potential of this approach for long-term corrosion protection applications. Full article
(This article belongs to the Special Issue Advanced Coating Research for Metal Surface Protection)
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16 pages, 4620 KB  
Article
Ethanol Molecule Engineering Toward Stabilized 1T-MoS2 with Extraordinary Sodium Storage Performance
by Xue’er Bi, Xuelian Wang, Xiaobo Shen, Haijun Yu, Xian Zhang and Jin Bai
Molecules 2025, 30(18), 3801; https://doi.org/10.3390/molecules30183801 - 18 Sep 2025
Viewed by 201
Abstract
Phase molybdenum disulfide (1T-MoS2) holds significant promise as an anode material for sodium-ion batteries (SIBs) due to its metallic conductivity and expanded interlayer distance. However, the practical application of 1T-MoS2 is hindered by its inherent thermodynamic metastability, which poses substantial [...] Read more.
Phase molybdenum disulfide (1T-MoS2) holds significant promise as an anode material for sodium-ion batteries (SIBs) due to its metallic conductivity and expanded interlayer distance. However, the practical application of 1T-MoS2 is hindered by its inherent thermodynamic metastability, which poses substantial challenges for the synthesis of high-purity, long-term stable 1T phase MoS2. Herein, a synergetic ethanol molecule intercalation and electron injection engineering is adopted to induce the formation and stabilization of 1T-MoS2 (E-1T MoS2). The obtained E-1T MoS2 consists of regularly arranged sphere-like ultrasmall few-layered 1T-MoS2 nanosheets with expanded interlayer spacing. The high intrinsic conductivity and enlarged interlayer spacing are greatly favorable for rapid Na+ or e transport. The elaborated nanosheets structure can effectively relieve volume variation during Na+ intercalating/deintercalating processes, shorten transport path of Na+, and enhance diffusion kinetics. Furthermore, a novel sodium reaction mechanism involving the formation of MoS2 nanoclusters during cycling is revealed to produce the higher surface pseudocapacitive contribution to Na+ storage capacity, accelerating Na+ reaction kinetics, as confirmed by the kinetics analysis and ex-situ structural characterizations. Consequently, the E-1T MoS2 electrode exhibits an excellent sodium storage performance. This work provides an important reference for synthesis and reaction mechanism analysis of metastable metal sulfides for advanced SIBs. Full article
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13 pages, 3747 KB  
Article
High-Entropy Perovskite La(Co0.2Mn0.2Fe0.2Ni0.2Cu0.2)O3 as a Material for Lithium-Ion Batteries
by Marianna Hodorová, Dávid Csík, Alena Fedoročková, Katarína Gáborová, Róbert Džunda, Gabriel Sučik, František Kromka and Karel Saksl
Appl. Sci. 2025, 15(18), 10171; https://doi.org/10.3390/app151810171 - 18 Sep 2025
Viewed by 175
Abstract
This study addresses the development of advanced anode materials for lithium-ion batteries by investigating the high-entropy perovskite La(Co0.2Mn0.2Fe0.2Ni0.2Cu0.2)O3. The material was synthesized via spray drying of aqueous metal nitrate solutions, followed [...] Read more.
This study addresses the development of advanced anode materials for lithium-ion batteries by investigating the high-entropy perovskite La(Co0.2Mn0.2Fe0.2Ni0.2Cu0.2)O3. The material was synthesized via spray drying of aqueous metal nitrate solutions, followed by calcination at various temperatures (800 °C/1 h, 1000 °C/1 h, 1000 °C/2 h, 1100 °C/1 h) to optimize structural properties. Structural analysis using X-ray diffraction confirmed the formation of a single-phase perovskite in the sample calcined at 1100 °C for 1 h, while SEM/EDS revealed homogeneous elemental distribution. Electrochemical testing of the powders as anode materials in coin-type lithium-ion cells revealed a trend of slightly increasing capacity over 150 cycles, with capacity ultimately reaching 617 mAh g−1, indicating progressive electrochemical activation. Although the samples share the same composition, variations in calcination conditions resulted in differences in capacity and cycling behavior. These results demonstrate that synthesis parameters critically influence the electrochemical performance of high-entropy perovskites. The findings suggest that such materials have potential as stable anodes for next-generation lithium-ion batteries, contributing to improved durability and efficiency in energy-storage technologies. Full article
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14 pages, 3779 KB  
Review
Characterization of All Allotropes of Phosphorus
by John T. Walters, Meijuan Cao, Yuki Lam, Gregory R. Schwenk and Hai-Feng Ji
Sci 2025, 7(3), 128; https://doi.org/10.3390/sci7030128 - 9 Sep 2025
Viewed by 549
Abstract
Recent advancements in carbon nanotubes and graphene have driven significant research into other low-dimensional materials, with phosphorus-based materials emerging as a notable area of interest. Phosphorus nanowires and thin sheets show promise for applications in devices such as batteries, photodetectors, and field-effect transistors. [...] Read more.
Recent advancements in carbon nanotubes and graphene have driven significant research into other low-dimensional materials, with phosphorus-based materials emerging as a notable area of interest. Phosphorus nanowires and thin sheets show promise for applications in devices such as batteries, photodetectors, and field-effect transistors. However, the presence of multiple allotropes of phosphorus complicates their characterization. Accurate identification of these allotropes is essential for understanding their physical, optical, and electronic properties, which influence their potential applications. Researchers frequently encounter difficulties in consolidating literature for the confirmation of the structure of their materials, a process that can be time-consuming. This minireview addresses this issue by providing a comprehensive, side-by-side comparison of Raman and X-ray diffraction characteristic peaks, as well as electron microscopic images and lattice spacings, for the various phosphorus allotropes. To our knowledge, this is the first compilation to integrate all major structural fingerprints into unified summary tables, enabling rapid cross-referencing. This resource aims to support researchers in accurately identifying phosphorus phases during synthesis and device fabrication workflows. For example, distinguishing between red phosphorus polymorphs is crucial for optimizing anode materials in sodium-ion batteries, where electrochemical performance is phase-dependent. Full article
(This article belongs to the Section Chemistry Science)
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16 pages, 6160 KB  
Article
Synthesis of RuO2-Co3O4 Composite for Efficient Electrocatalytic Oxygen Evolution Reaction
by Jingchao Zhang, Yingping Bu, Jia Hao, Wenjun Zhang, Yao Xiao, Naihui Zhao, Renchun Zhang and Daojun Zhang
Nanomaterials 2025, 15(17), 1356; https://doi.org/10.3390/nano15171356 - 3 Sep 2025
Viewed by 654
Abstract
Among various H2 production methods, splitting water using renewable electricity for H2 production is regarded as a promising approach due to its high efficiency and zero carbon emissions. The oxygen evolution reaction (OER) is an important part of splitting water, but [...] Read more.
Among various H2 production methods, splitting water using renewable electricity for H2 production is regarded as a promising approach due to its high efficiency and zero carbon emissions. The oxygen evolution reaction (OER) is an important part of splitting water, but also the main bottleneck. The anodic oxygen evolution reaction (OER) for water electrolysis technology involves multi-electron/proton transfer and has sluggish reaction kinetics, which is the key obstacle to the overall efficiency of electrolyzing water. Therefore, it is necessary to develop highly efficient and cheap OER electrocatalysts to drive overall water splitting. Herein, a series of efficient RuO2-Co3O4 composites were synthesized via a straightforward three-step process comprising solvothermal synthesis, ion exchange, and calcination. The results indicate that using 10 mg of RuCl3·xH2O and 15 mg of Co-MOF precursor in the second ion exchange step is the most effective way to acquire the Co3O4-RuO2-10 (RCO-10) composite with the largest specific area and the best electrocatalytic performance after the calcination process. The optimal Co3O4-RuO2-10 composite powder catalyst displays low overpotential (η10 = 272 mV), a small Tafel slope (64.64 mV dec−1), and good electrochemical stability in alkaline electrolyte; the overall performance of Co3O4-RuO2-10 surpasses that of many related cobalt-based oxide catalysts. Furthermore, through integration with a carbon cloth substrate, Co3O4-RuO2-10/CC can be directly used as a self-supporting electrode with high stability. This work presents a straightforward method to design Co3O4-RuO2 composite array catalysts for high-performance electrocatalytic OER performance. Full article
(This article belongs to the Special Issue Nanomaterials for Sustainable Green Energy)
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17 pages, 4869 KB  
Article
Cathode Catalyst PdAgCo/C for Optimal Performance of the Alkaline Anion Exchange Membrane Direct Ammonia Fuel Cells
by Prithiv Vengatasalapathy, Fa-Cheng Su, Zi-Jie Su, Kean Long Lim and Hsiharng Yang
Catalysts 2025, 15(9), 825; https://doi.org/10.3390/catal15090825 - 31 Aug 2025
Viewed by 762
Abstract
This investigation addresses the enhancement of ammonia fuel cell performance using Pd (palladium)- and Co (cobalt)-doped cathode catalysts. Initially, the performance of the Ag/C cathode catalyst in ammonia fuel cells yielded a baseline power density of only 38 mW/cm2. To improve [...] Read more.
This investigation addresses the enhancement of ammonia fuel cell performance using Pd (palladium)- and Co (cobalt)-doped cathode catalysts. Initially, the performance of the Ag/C cathode catalyst in ammonia fuel cells yielded a baseline power density of only 38 mW/cm2. To improve efficiency, Pd and Co were introduced, resulting in the synthesis of a new 15 wt% PdAgCo/C (15 wt% PdAgCo and 85 wt% C) cathode catalyst, which increased the power density to 74 mW/cm2. Further performance enhancement was achieved by using a highly efficient 40 wt% PtIr/C anode catalyst, as reported in the literature, and applying a cathode catalyst loading of 0.5 mg/cm2, raising the power density to 172 mW/cm2. This investigation addresses the successful synthesis of a 15 wt% PdAgCo/C cathode catalyst, which has proven to be a better choice over conventional catalysts, along with the significance of doping Pd and Co with Ag/C in the augmentation of catalytic activity and fuel cell performance. Thus, a series of physicochemical and electrochemical characterizations, the approach for optimization of the working parameters, and the impact analysis of catalyst loading have all resulted in the achievement of an impeccable power density of 332 mW/cm2. Full article
(This article belongs to the Section Electrocatalysis)
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34 pages, 6812 KB  
Review
Mechanochemical Synthesis of Advanced Materials for All-Solid-State Battery (ASSB) Applications: A Review
by Zhiming Qiang, Junjun Hu and Beibei Jiang
Polymers 2025, 17(17), 2340; https://doi.org/10.3390/polym17172340 - 28 Aug 2025
Viewed by 1022
Abstract
Mechanochemical methods have received much attention in the synthesis and design of all-solid-state battery materials in recent years due to their advantages of being green, efficient, easy to operate, and solvent-free. In this review, common mechanochemical methods, including high-energy ball milling, twin-screw extrusion [...] Read more.
Mechanochemical methods have received much attention in the synthesis and design of all-solid-state battery materials in recent years due to their advantages of being green, efficient, easy to operate, and solvent-free. In this review, common mechanochemical methods, including high-energy ball milling, twin-screw extrusion (TSE), and resonant acoustic mixing (RAM), are introduced with the aim of providing a fundamental understanding of the subsequent material design. Subsequently, the discussion focuses on the application of mechanochemical methods in the construction of solid-state electrolytes, anode materials, and cathode materials, especially the research progress of mechanical energy-induced polymerization strategies in building flexible composite electrolytes and enhancing interfacial stability. Through the analysis of representative work, it is demonstrated that mechanochemical methods are gradually evolving from traditional physical processing tools to functional synthesis platforms with chemical reaction capabilities. This review systematically organizes its development and research trends in the field of all-solid-state battery materials and explores potential future breakthrough directions. Full article
(This article belongs to the Special Issue Development of Polymer Materials as Functional Coatings)
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26 pages, 5432 KB  
Article
Boron-Modified Anodization of Preferentially Oriented TiO2 Nanotubes for Photoelectrochemical Applications
by Fedor Zykov, Or Rahumi, Igor Selyanin, Andrey Vasin, Ivan Popov, Vadim Kartashov, Konstantin Borodianskiy and Yuliy Yuferov
Appl. Sci. 2025, 15(17), 9405; https://doi.org/10.3390/app15179405 - 27 Aug 2025
Viewed by 617
Abstract
This study investigates the synthesis and characterization of boron-modified nanotubular titania (NTO) arrays fabricated via a single-step anodizing process with varying concentrations of boric acid (BA). Following anodization, a reductive heat treatment was applied to facilitate the crystallization of the anatase phase in [...] Read more.
This study investigates the synthesis and characterization of boron-modified nanotubular titania (NTO) arrays fabricated via a single-step anodizing process with varying concentrations of boric acid (BA). Following anodization, a reductive heat treatment was applied to facilitate the crystallization of the anatase phase in the boron-modified NTO. The effect of the BA concentration on the structural, morphological, and photoelectrochemical (PEC) properties of the NTOs was systematically explored through scanning electron microscopy (SEM), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), luminescence, and UV-Vis spectrometry. The introduction of boron during anodization facilitated the formation of sub-bandgap states, thereby enhancing the light absorption and electron mobility. This study revealed the optimal BA concentration that yielded a 3.3-fold enhancement of the PEC performance, attributed to a reduction in the bandgap energy. Notably, the highest incident photon-to-current conversion efficiency (IPCE) was observed for NTO samples anodized at a 0.10 M BA concentration. These findings underscore the promise of boron-modified NTOs for advanced photocatalytic applications, particularly in solar-driven water-splitting processes. Full article
(This article belongs to the Section Chemical and Molecular Sciences)
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17 pages, 3870 KB  
Review
Eco-Friendly, Biomass-Derived Materials for Electrochemical Energy Storage Devices
by Yeong-Seok Oh, Seung Woo Seo, Jeong-jin Yang, Moongook Jeong and Seongki Ahn
Coatings 2025, 15(8), 915; https://doi.org/10.3390/coatings15080915 - 5 Aug 2025
Viewed by 834
Abstract
This mini-review emphasizes the potential of biomass-derived materials as sustainable components for next-generation electrochemical energy storage systems. Biomass obtained from abundant and renewable natural resources can be transformed into carbonaceous materials. These materials typically possess hierarchical porosities, adjustable surface functionalities, and inherent heteroatom [...] Read more.
This mini-review emphasizes the potential of biomass-derived materials as sustainable components for next-generation electrochemical energy storage systems. Biomass obtained from abundant and renewable natural resources can be transformed into carbonaceous materials. These materials typically possess hierarchical porosities, adjustable surface functionalities, and inherent heteroatom doping. These physical and chemical characteristics provide the structural and chemical flexibility needed for various electrochemical applications. Additionally, biomass-derived materials offer a cost-effective and eco-friendly alternative to traditional components, promoting green chemistry and circular resource utilization. This review provides a systematic overview of synthesis methods, structural design strategies, and material engineering approaches for their use in lithium-ion batteries (LIBs), lithium–sulfur batteries (LSBs), and supercapacitors (SCs). It also highlights key challenges in these systems, such as the severe volume expansion of anode materials in LIBs and the shuttle effect in LSBs and discusses how biomass-derived carbon can help address these issues. Full article
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24 pages, 2845 KB  
Review
Silicon-Based Polymer-Derived Ceramics as Anode Materials in Lithium-Ion Batteries
by Liang Zhang, Han Fei, Chenghuan Wang, Hao Ma, Xuan Li, Pengjie Gao, Qingbo Wen, Shasha Tao and Xiang Xiong
Materials 2025, 18(15), 3648; https://doi.org/10.3390/ma18153648 - 3 Aug 2025
Viewed by 830
Abstract
In most commercial lithium-ion batteries, graphite remains the primary anode material. However, its theoretical specific capacity is only 372 mAh∙g−1, which falls short of meeting the demands of high-performance electronic devices. Silicon anodes, despite boasting an ultra-high theoretical specific capacity of [...] Read more.
In most commercial lithium-ion batteries, graphite remains the primary anode material. However, its theoretical specific capacity is only 372 mAh∙g−1, which falls short of meeting the demands of high-performance electronic devices. Silicon anodes, despite boasting an ultra-high theoretical specific capacity of 4200 mAh∙g−1, suffer from significant volume expansion (>300%) during cycling, leading to severe capacity fade and limiting their commercial viability. Currently, silicon-based polymer-derived ceramics have emerged as a highly promising next-generation anode material for lithium-ion batteries, thanks to their unique nano-cluster structure, tunable composition, and low volume expansion characteristics. The maximum capacity of the ceramics can exceed 1000 mAh∙g−1, and their unique synthesis routes enable customization to align with diverse electrochemical application requirements. In this paper, we present the progress of silicon oxycarbide (SiOC), silicon carbonitride (SiCN), silicon boron carbonitride (SiBCN) and silicon oxycarbonitride (SiOCN) in the field of LIBs, including their synthesis, structural characteristics and electrochemical properties, etc. The mechanisms of lithium-ion storage in the Si-based anode materials are summarized as well, including the key role of free carbon in these materials. Full article
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17 pages, 1647 KB  
Article
Application of Iron Oxides in the Photocatalytic Degradation of Real Effluent from Aluminum Anodizing Industries
by Lara K. Ribeiro, Matheus G. Guardiano, Lucia H. Mascaro, Monica Calatayud and Amanda F. Gouveia
Appl. Sci. 2025, 15(15), 8594; https://doi.org/10.3390/app15158594 - 2 Aug 2025
Viewed by 562
Abstract
This study reports the synthesis and evaluation of iron molybdate (Fe2(MoO4)3) and iron tungstate (FeWO4) as photocatalysts for the degradation of a real industrial effluent from aluminum anodizing processes under visible light irradiation. The oxides [...] Read more.
This study reports the synthesis and evaluation of iron molybdate (Fe2(MoO4)3) and iron tungstate (FeWO4) as photocatalysts for the degradation of a real industrial effluent from aluminum anodizing processes under visible light irradiation. The oxides were synthesized via a co-precipitation method in an aqueous medium, followed by microwave-assisted hydrothermal treatment. Structural and morphological characterizations were performed using X-ray diffraction, field-emission scanning electron microscopy, Raman spectroscopy, ultraviolet–visible (UV–vis), and photoluminescence (PL) spectroscopies. The effluent was characterized by means of ionic chromatography, total organic carbon (TOC) analysis, physicochemical parameters (pH and conductivity), and UV–vis spectroscopy. Both materials exhibited well-crystallized structures with distinct morphologies: Fe2(MoO4)3 presented well-defined exposed (001) and (110) surfaces, while FeWO4 showed a highly porous, fluffy texture with irregularly shaped particles. In addition to morphology, both materials exhibited narrow bandgaps—2.11 eV for Fe2(MoO4)3 and 2.03 eV for FeWO4. PL analysis revealed deep defects in Fe2(MoO4)3 and shallow defects in FeWO4, which can influence the generation and lifetime of reactive oxygen species. These combined structural, electronic, and morphological features significantly affected their photocatalytic performance. TOC measurements revealed degradation efficiencies of 32.2% for Fe2(MoO4)3 and 45.3% for FeWO4 after 120 min of irradiation. The results highlight the critical role of morphology, optical properties, and defect structures in governing photocatalytic activity and reinforce the potential of these simple iron-based oxides for real wastewater treatment applications. Full article
(This article belongs to the Special Issue Application of Nanomaterials in the Field of Photocatalysis)
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17 pages, 2016 KB  
Article
DFT-Guided Next-Generation Na-Ion Batteries Powered by Halogen-Tuned C12 Nanorings
by Riaz Muhammad, Anam Gulzar, Naveen Kosar and Tariq Mahmood
Computation 2025, 13(8), 180; https://doi.org/10.3390/computation13080180 - 1 Aug 2025
Viewed by 699
Abstract
Recent research on the design and synthesis of new and upgraded materials for secondary batteries is growing to fulfill future energy demands around the globe. Herein, by using DFT calculations, the thermodynamic and electrochemical properties of Na/Na+@C12 complexes and then [...] Read more.
Recent research on the design and synthesis of new and upgraded materials for secondary batteries is growing to fulfill future energy demands around the globe. Herein, by using DFT calculations, the thermodynamic and electrochemical properties of Na/Na+@C12 complexes and then halogens (X = Br, Cl, and F) as counter anions are studied for the enhancement of Na-ion battery cell voltage and overall performance. Isolated C12 nanorings showed a lower cell voltage (−1.32 V), which was significantly increased after adsorption with halide anions as counter anions. Adsorption of halides increased the Gibbs free energy, which in turn resulted in higher cell voltage. Cell voltage increased with the increasing electronegativity of the halide anion. The Gibbs free energy of Br@C12 was −52.36 kcal·mol1, corresponding to a desirable cell voltage of 2.27 V, making it suitable for use as an anode in sodium-ion batteries. The estimated cell voltage of these considered complexes ensures the effective use of these complexes in sodium-ion secondary batteries. Full article
(This article belongs to the Special Issue Feature Papers in Computational Chemistry)
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125 pages, 50190 KB  
Review
Sulfurized Polyacrylonitrile for Rechargeable Batteries: A Comprehensive Review
by Mufeng Wei
Batteries 2025, 11(8), 290; https://doi.org/10.3390/batteries11080290 - 1 Aug 2025
Viewed by 1348
Abstract
This paper presents a comprehensive review of research on sulfurized polyacrylonitrile (SPAN) for rechargeable batteries which was firstly reported by Jiulin Wang in July 2002. Spanning over two decades (2002–2025), this review cites over 600 publications, covering various aspects of SPAN-based battery systems. [...] Read more.
This paper presents a comprehensive review of research on sulfurized polyacrylonitrile (SPAN) for rechargeable batteries which was firstly reported by Jiulin Wang in July 2002. Spanning over two decades (2002–2025), this review cites over 600 publications, covering various aspects of SPAN-based battery systems. These include SPAN chemical structure, structural evolution during synthesis, redox reaction mechanism, synthetic conditions, cathode, electrolyte, binder, current collector, separator, anode, SPAN as additive, SPAN as anode, and high-energy SPAN cathodes. As this field continues to advance rapidly and garners significant interest, this review aims to provide researchers with a thorough and in-depth overview of the progress made over the past 23 years. Additionally, it highlights emerging trends and outlines future directions for SPAN research and its practical applications in energy storage technologies. Full article
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41 pages, 6887 KB  
Review
Charging the Future with Pioneering MXenes: Scalable 2D Materials for Next-Generation Batteries
by William Coley, Amir-Ali Akhavi, Pedro Pena, Ruoxu Shang, Yi Ma, Kevin Moseni, Mihrimah Ozkan and Cengiz S. Ozkan
Nanomaterials 2025, 15(14), 1089; https://doi.org/10.3390/nano15141089 - 14 Jul 2025
Cited by 1 | Viewed by 768
Abstract
MXenes, a family of two-dimensional carbide and nitride nanomaterials, have demonstrated significant promise across various technological domains, particularly in energy storage applications. This review critically examines scalable synthesis techniques for MXenes and their potential integration into next-generation rechargeable battery systems. We highlight both [...] Read more.
MXenes, a family of two-dimensional carbide and nitride nanomaterials, have demonstrated significant promise across various technological domains, particularly in energy storage applications. This review critically examines scalable synthesis techniques for MXenes and their potential integration into next-generation rechargeable battery systems. We highlight both top-down and emerging bottom-up approaches, exploring their respective efficiencies, environmental impacts, and industrial feasibility. The paper further discusses the electrochemical behavior of MXenes in lithium-ion, sodium-ion, and aluminum-ion batteries, as well as their multifunctional roles in solid-state batteries—including as electrodes, additives, and solid electrolytes. Special emphasis is placed on surface functionalization, interlayer engineering, and ion transport properties. We also compare MXenes with conventional graphite anodes, analyzing their gravimetric and volumetric performance potential. Finally, challenges such as diffusion kinetics, power density limitations, and scalability are addressed, providing a comprehensive outlook on the future of MXenes in sustainable energy storage technologies. Full article
(This article belongs to the Special Issue Pioneering Nanomaterials: Revolutionizing Energy and Catalysis)
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