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It is a lignocellulose substance containing lignin, hemicellulose and cellulose and as such would have abundant functional groups and lone pairs of electrons needed for biosorption of cationic pollutants in solution.
The adsorption capacities of the adsorbents were calculated according to the following equation: q e = (C 0 − C e V/m, where q e represents the adsorbed amount at equilibrium (mg g−1), C 0 and C e are the initial and equilibrium concentrations of pollutants in solution (mg L−1), V is the volume of the Pb II) solutions (mL), and m is the dry weight of adsorbents (g).
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Initial concentration of pollutant in solution.
Final concentration of pollutant in solution.
Our findings pave a way to design recyclable Fe2O3-B-TiO2 photocatalysts for photodegradation of organic pollutants in aqueous solution.
The as obtained composites were employed to degrade different kinds of organic pollutants (dyes and colorless pollutants) in aqueous solution under visible light irradiation.
On the basis of their efficient and stable photocatalytic activities under visible-light irradiation, these photocatalysts could be widely used for degradation of organic pollutants in aqueous solution.
On the basis of their efficient and stable photocatalytic activities, these photocatalysts could be widely used for environmental purification of organic pollutants in aqueous solution.
These results suggest that this kind of nanocomposites is potentially useful materials for effectively adsorbing and removing different dangerous pollutants in aqueous solution.
The presented paper describes the results of the investigation on the possibility of coupling photocatalysis and membrane distillation (MD) for the degradation of organic pollutants in aqueous solution.
Given their porosity significantly facilitating mass transportation in photocatalytic process, hierarchically porous ZnO structures, especially with high specific surface area, are attractive to photocatalytically degrade organic pollutants in aqueous solution.
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