4.6 Article

Novel Porous Organic Polymer for High-Performance Pb(II) Adsorption from Water: Synthesis, Characterization, Kinetic, and Isotherm Studies

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CRYSTALS
卷 13, 期 6, 页码 -

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MDPI
DOI: 10.3390/cryst13060956

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adsorption; porous organic polymers; Friedel-Crafts reaction; lead ion removal

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The aim of this study was to develop a novel triphenylaniline-based porous organic polymer (TPABPOP-1) for efficient removal of Pb(II) from water. The TPABPOP-1 polymer was characterized using XPS, FTIR, SEM, TGA, and C-13 CP/MAS NMR analyses. The results showed that the TPABPOP-1 polymer had a BET surface area of 1290 m(2)/g. FTIR and XPS techniques confirmed the successful adsorption of Pb(II) onto TPABPOP-1.
The aim of the current study was to develop a novel triphenylaniline-based porous organic polymer (TPABPOP-1) by the Friedel-Crafts reaction for the efficient elimination of Pb(II) from an aqueous environment. XPS, FTIR, SEM, TGA, and C-13 CP/MAS NMR analyses were applied to characterize the synthesized TPABPOP-1 polymer. The BET surface area of the TPABPOP-1 polymer was found to be 1290 m(2)/g. FTIR and XPS techniques proved the uptake of Pb(II) was successfully adsorbed onto TPABPOP-1. Using batch methods, Pb(II) ion adsorption on the TPABPOP-1 was studied at different equilibrium times, pH values, initial Pb(II) concentration, adsorption mass, and temperature. The outcomes exhibited that the optimum parameters were t: 180 min, m: 0.02 g, pH: 5, T: 308 K, and [Pb(II)]: 200 mg/L. Nonlinear isotherms and kinetics models were investigated. The Langmuir isotherm model suggested that the uptake of Pb(II) was favorable on the homogeneous surface of TPABPOP-1. Adsorption kinetics showed that the PFO model was followed. Pb(II) removal mechanisms of TPABPOP-1 may include surface adsorption and electrostatic attraction. The uptake capacity for Pb(II) was identified to be 472.20 mg/g. Thermodynamic factors exhibited that the uptake of Pb(II) was endothermic and spontaneous in standard conditions. Finally, this study provides effective triphenylaniline-based porous organic polymers (TPABPOP-1) as a promising adsorbent with high uptake capacity.

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