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The large number of active sites in the layered structure of δ-MnO with considerable interlayer spacing makes it an excellent candidate for ion storage. Unfortunately, the δ-MnO-based electrode has not yet attained the exceptional storage potential that it should demonstrate because of disappointing structural deterioration during periodic charging and discharging. Here, we represent that stable Na ion storage in δ-MnO may be triggered by the preintercalation of K ions and water molecules. Furthermore, the sluggish reaction kinetics and poor electrical conductivity of preintercalated δ-MnO layers are overcome by the incorporation of h-WO in the preintercalated δ-MnO to form novel composite electrodes. The composites contain mixed valence metals, which provide a great number of active sites along with improved redox activity, while maintaining a fast ion transfer efficiency to enhance the pseudocapacitance performance. Based on our research, the composite prepared from preintercalated δ-MnO with 5 wt % h-WO provides a specific capacitance of up to 363.8 F g at a current density of 1.5 A g and an improved energy density (32.3 W h kg) along with an ∼14% increase in capacity upon cycling up to 5000 cycles. Hence, the interaction between the preintercalated δ-MnO and h-WO nanorods results in satisfactory energy storage performance due to the defect-rich structure, high conductivity, superior stability, and lower charge transfer resistance. This research has the potential to pave the way for a new class of hybrid supercapacitors that could fill the energy gap between chemical batteries and ideal capacitors.
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http://dx.doi.org/10.1021/acsomega.3c09236 | DOI Listing |
Chem Commun (Camb)
September 2025
Department of Applied Chemistry, School of Chemistry and Chemical Engineering, Chongqing University, Chongqing 401331, China.
In this work, a series of potassium ion (K) pre-intercalated sodium hydrogen vanadates (K-HNVO) are prepared through a facile route. The introduction of K modulates the microstructure of the pristine sodium metavanadate and increases the interlayer spacing, thereby resulting in improved charge transport kinetics. Moreover, the pillaring effect of K enhances the structural stability of the pristine material.
View Article and Find Full Text PDFJ Colloid Interface Sci
September 2025
Department of Materials Science and Engineering, University of Washington, Seattle, WA 98195, USA. Electronic address:
Pre-intercalation has emerged as a highly effective strategy to enhance structural integrity and ion transport kinetics in cathodes for aqueous Zn-ion batteries. Here, we report a zinc-ion pre-intercalated hydrate vanadium oxide cathode, in which the initial insertion of Zn induces a significant expansion of the interplanar spacing, followed by contraction at higher Zn concentrations owing to strong electrostatic interactions with the VO framework. Such competing expansion and contraction of interplanar spacing enhances the overall electrochemical properties.
View Article and Find Full Text PDFNano Lett
September 2025
Advanced Optoelectronic Technology Research Institute Zhengzhou Research Institute, Harbin Institute of Technology, Zhengzhou 450052, China.
Covalent organic frameworks (COFs) with well-ordered nanopores and numerous accessible redox sites exhibit significant promise in aqueous zinc-ion batteries (AZIBs). However, challenges such as complex synthesis, limited capacity, and poor cycling stability still persist. In this study, we present a Zn preintercalation strategy enabling the one-pot synthesis of long-range interconnected COFs functionalized with -SO groups (COFs-Zn).
View Article and Find Full Text PDFACS Omega
July 2025
Department of Chemical Engineering, National Tsing-Hua University, Hsinchu 300, Taiwan.
Portable or miniaturized gadgets have seen rapid development in recent years, yet their power supply remains a major obstacle, often relying on external sources. Herein, we present a portable self-powered device for sensing the NO gas. This concept integrates a perovskite photovoltaic cell (8.
View Article and Find Full Text PDFJ Chem Phys
July 2025
Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics and Communication Electronics, Jiangxi Normal University, Nanchang 330022, China.
Understanding ionic migration mechanisms in solid-state materials is of paramount importance for advancing rechargeable batteries technologies. Combining first-principle calculations and ab initio molecular dynamics (MD) simulations, we reveal a novel mechanism of ionic migration in 3D tunnel-type H2V2O5, a newly developed cathode material formed by proton pre-intercalated α-V2O5, where hydrogen bonds dynamic play a critical regulatory role. We demonstrate the rotation behavior of -OH groups and the synergistic coupling between the -OH rotation and divalent ion migration in H2V2O5.
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