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Developing stable, high-performance chloride-ion storage electrodes is essential for energy storage and water purification application. Herein, a P, S co-doped porous hollow nanotube array, with a free ion diffusion pathway and highly active adsorption sites, on carbon felt electrodes (CoNiPS@CF) is reported. Due to the porous hollow nanotube structure and synergistic effect of P, S co-doped, the CoNiPS@CF based capacitive deionization (CDI) system exhibits high desalination capacity (76.1 mg g), fast desalination rate (6.33 mg g min) and good cycling stability (capacity retention rate of > 90%), which compares favorably to the state-of-the-art electrodes. The porous hollow nanotube structure enables fast ion diffusion kinetics due to the swift ion transport inside the electrode and the presence of a large number of reactive sites. The introduction of S element also reduces the passivation layer on the surface of CoNiP and lowers the adsorption energy for Cl capture, thereby improving the electrode conductivity and surface electrochemical activity, and further accelerating the adsorption kinetics. Our results offer a powerful strategy to improve the reactivity and stability of transition metal phosphides for chloride capture, and to improve the efficiency of electrochemical dechlorination technologies.
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http://dx.doi.org/10.1038/s41467-024-49319-5 | DOI Listing |
Chem Sci
September 2025
Department of Chemical Engineering, School of Environmental and Chemical Engineering, Shanghai University 99 Shangda Road Shanghai 200444 China
Lithium metal is deemed to be the ultimate anode material for high-energy-density and fast-charging lithium batteries. However, issues of dendritic deposition and frangible solid electrolyte interphases must be resolved for lithium metal anodes. Herein, a hybrid interfacial layer, hierarchical hollow nanospheres assembled from lithiophilic imine-based covalent organic frameworks and built-in Ag sites (Ag@ICOFs), has been applied to regulate the interfacial lithium ion flux and enhance the anode stability for effectively inhibiting dendrite formation.
View Article and Find Full Text PDFJ Mater Chem B
September 2025
School of Chemistry and Chemical Engineering, NanChang University, NanChang, Jiangxi, 330031, P. R. China.
Photocatalytic antibacterial therapy is a promising method for wound disinfection and treatment. However, the weak photocatalytic antibacterial activity of ZnO stimulated by visible light limits its applications. In this study, porous CuO@ZnO heterojunctions with enhanced visible light response are successfully synthesized by coupling ZnO and CuO using a one-pot water bath method.
View Article and Find Full Text PDFJ Colloid Interface Sci
August 2025
College of Chemistry and Chemical Engineering, Xi'an University of Science and Technology, Xi'an, Shaanxi 710054, PR China. Electronic address:
With the rapid advancement of science and technology, rechargeable aqueous zinc ion batteries (AZIBs) has garnered increasing attention in consideration of security, chemical stability and cost-effectiveness. Vanadium-based oxides have emerged as a promising high-performance electrode materials for AZIBs, owing to their high energy density, rich crystal configurations, and simple preparation process. However, the practical application of vanadium oxides is hindered by their low ion/electron transfer rate and significant capacity fading during electrochemical reactions.
View Article and Find Full Text PDFBioengineering (Basel)
August 2025
Department of Neurosurgery, The Jikei University School of Medicine, Tokyo 105-8461, Japan.
Intracranial aneurysms are a serious cerebrovascular condition with a risk of subarachnoid hemorrhage due to rupture, leading to high mortality and morbidity. Flow Diverter Stents (FDSs) have become an important endovascular treatment option for unruptured large or wide-neck aneurysms. Hemodynamic factors significantly influence treatment outcomes in aneurysms treated with FDSs, and Computational Fluid Dynamics (CFD) has been widely used to evaluate post-deployment flow characteristics.
View Article and Find Full Text PDFJ Colloid Interface Sci
August 2025
Key Laboratory Incubation Base for Green Processing of Chemical Engineering, School of Chemistry and Chemical Engineering/State, Shihezi University, Shihezi 832003, China. Electronic address:
The regulation of electron distribution of single-atom catalysts (SACs) by metal oxide groups is an effective strategy for boosting their intrinsic activity of oxygen reduction reaction (ORR). However, it remains a challenge to precisely control synthesis and achieve high activity of the catalyst. Herein, single-atomic Zn sites decorated with ZnO clusters on porous hollow carbon spheres (Zn/ZnO@NC) was constructed by in-situ carbon reduction and limited evaporation strategy.
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