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This study presents the development and application of a hybrid inorganic adsorbent composed of mesoporous Mg-MCM-41 integrated with exfoliated talc nanosheets (MCM/talc composite)-for the efficient removal of Sr²⁺, V⁵⁺, and Rb⁺ ions from contaminated water sources. The composite exhibited a mesoporous architecture (9.6 nm) and a specific surface area of 123.6 m²/g, combining the high reactivity of MCM-41 with the layered structure of talc. Batch adsorption experiments revealed exceptional saturation capacities (Q) of 229.9 mg/g (Sr²⁺), 188.8 mg/g (V⁵⁺), and 137.2 mg/g (Rb⁺). Kinetic data followed a pseudo-first-order model, while Langmuir isotherms confirmed monolayer adsorption. Critically, statistical physics modeling provided deep mechanistic insights into the adsorption process. The number of ions per active site (n) exceeded 2 for all ions, indicating multi-ionic vertical stacking at single adsorption sites. The adsorption energies (ΔE), derived from advanced monolayer modeling, were all below 8 kJ/mol. These values confirm a physisorption-dominant mechanism, governed by weak interactions such as van der Waals forces, hydrogen bonding, and electrostatic attractions. Fixed-bed column studies further validated the material's dynamic performance, achieving removal efficiencies of 79.7% (Sr²⁺), 73.4% (V⁵⁺), and 68.6% (Rb⁺). Application to real groundwater from Egypt's Siwa Oasis resulted in final concentrations of 1.3 mg/L (Sr²⁺), 0.46 mg/L (V⁵⁺), and 0.03 mg/L (Rb⁺) after two treatment cycles-meeting global health standards. This work demonstrates that the MCM/talc composite is a highly promising, low-cost, and reusable adsorbent for environmental remediation and selective recovery of critical metals, combining advanced theoretical modeling with field-relevant practicality.
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http://dx.doi.org/10.1038/s41598-025-09553-3 | DOI Listing |
ACS Electrochem
September 2025
Department of Chemistry and Chemical Engineering, Chalmers University of Technology, Kemigården 4, Gothenburg 412 96, Sweden.
Carbon fiber nanotip electrodes (CFNEs) are crucial for electrochemical recordings of neurotransmission release in confined spaces, such as synapses and intracellular measurements. However, fabricating CFNEs with small surface area to minimize noise remains challenging due to inconsistent tip size control, low reproducibility, and low fabrication success rate. Here, we present a reliable, user-friendly method with high reproducibility and success rate for precise CFNE fabrication using microscopy-guided electrochemical etching of cylindrical carbon fiber microelectrodes in a potassium hydroxide droplet.
View Article and Find Full Text PDFBeilstein J Nanotechnol
September 2025
Faculty of Chemical Engineering, Industrial University of Ho Chi Minh City, Vietnam.
Effective removal of trace heavy metal ions from aqueous bodies is a pressing problem and requires significant improvement in the area of absorbent material in terms of removal efficiency and sustainability. We propose an efficient strategy to enhance the adsorption efficiency of carbon nanotubes (CNTs) by growing dendrimers on their surface. First, CNTs were pre-functionalized with maleic acid (MA) via Diels-Alder reaction in presence of a deep eutectic solvent under ultrasonication.
View Article and Find Full Text PDFBeilstein J Nanotechnol
August 2025
Faculty of Engineering and Technology, Saigon University, 273 An Duong Vuong Street, Cho Quan Ward, Ho Chi Minh City 700000, Vietnam.
This study employs a bibliometric analysis using CiteSpace to explore research trends on the impact of biochar on microplastics (MPs) in soil and water environments. In agricultural soils, MPs reduce crop yield, alter soil properties, and disrupt microbial diversity and nutrient cycling. Biochar, a stable and eco-friendly material, has demonstrated effectiveness in mitigating these effects by restoring soil chemistry, enhancing microbial diversity and improving crop productivity.
View Article and Find Full Text PDFRSC Adv
September 2025
Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences, Saveetha University Chennai Tamil Nadu 602105 India.
A free radical polymerization approach was applied to synthesize different carboxymethyl cellulose-grafted poly(acrylamide) hydrogels (Hyd) composited with biochar, magnetic biochar, and magnetic biochar decorated with ZIF-67 to decontaminate methylene blue (MB) from water media. Biochar was obtained from walnut shells (WS) by a pyrolysis method, and magnetic biochar (WS/CoFeO) and biochar-decorated ZIF-67 (WS/CoFeO/ZIF-67) were prepared by chemical co-precipitation and hydrothermal methods, respectively. An increase in the amount of these particles by up to 10 wt% enhanced the removal performance.
View Article and Find Full Text PDFWater Environ Res
September 2025
Suzhou Institute of Trade & Commerce, Suzhou, China.
This study investigated the efficacy of two microalgae treatment systems (Chlorella vulgaris monoculture and a Chlorella vulgaris-S395-2-Clonostachys rosea symbiotic system) in treating aquaculture wastewater, under varying concentrations of synthetic strigolactone analog (GR24). By exposing the systems to four GR24 doses (0, 10, 10, and 10 M), we examined the impact on biomass growth, photosynthesis, and wastewater treatment. Elevated GR24 concentrations bolstered metabolism and photosynthesis in the systems, fostering rapid symbiont growth and enhanced treatment efficiency.
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