Morozova AG, Lonzinger TM, Skotnikov VA, Mikhailov GG, Kapelyushin Y, Khandaker MU, Alqahtani A, Bradley DA, Sayyed MI, Tishkevich DI, Vinnik DA, Trukhanov AV. Insights into Sorption-Mineralization Mechanism for Sustainable Granular Composite of MgO-CaO-Al
2O
3-SiO
2-CO
2 Based on
Nanosized Adsorption Centers and Its Effect on Aqueous Cu(II) Removal.
NANOMATERIALS 2021;
12:nano12010116. [PMID:
35010067 PMCID:
PMC8746411 DOI:
10.3390/nano12010116]
[Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 11/19/2021] [Revised: 12/24/2021] [Accepted: 12/28/2021] [Indexed: 11/16/2022]
Abstract
Although copper is needed for living organisms at low concentrations, it is one of the pollutants that should be monitored along with other heavy metals. A novel and sustainable composite mineralizing sorbent based on MgO-CaO-Al2O3-SiO2-CO2 with nanosized adsorption centers was synthesized using natural calcium-magnesium carbonates and clay aluminosilicates for copper sorption. An organometallic modifier was added as a temporary binder and a source of inovalent ions participating in the reactions of defect formation and activated sintering. The sorbent-mineralizer samples of specified composition and properties showed irreversible sorption of Cu2+ ions by the ion exchange reactions Ca2+ ↔ Cu2+ and Mg2+ ↔ Cu2+. The topochemical reactions of the ion exchange 2OH- → CO32-, 2OH- → SO42- and CO32- → SO42- occurred at the surface with formation of the mixed calcium-copper carbonates and sulfates structurally connected with aluminosilicate matrix. The reverse migration of ions to the environment is blocked by the subsequent mineralization of the newly formed interconnected aluminosilicate and carbonate structures.
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