Synergistic mechanisms for the superior sorptive removal of aquatic pollutants via functionalized biochar-clay composite
Maged, Ali; Elgarahy, Ahmed M.; Hlawitschka, Mark W.; Haneklaus, Nils H.; Gupta, Ashok Kumar; Bhatnagar, Amit (2023-08-07)
Publishers version
Maged, Ali
Elgarahy, Ahmed M.
Hlawitschka, Mark W.
Haneklaus, Nils H.
Gupta, Ashok Kumar
Bhatnagar, Amit
07.08.2023
Bioresource Technology
Elsevier
School of Engineering Science
Julkaisun pysyvä osoite on
https://urn.fi/URN:NBN:fi-fe20230823102382
https://urn.fi/URN:NBN:fi-fe20230823102382
Tiivistelmä
This study investigated the successful synthesis of functionalized algal biochar-clay composite (FBKC). Subsequently, the sorption performance of FBKC towards norfloxacin (NFX) antibiotic and crystal violet dye (CVD) from water was extensively assessed in both batch and continuous flow systems. A series of characterization techniques were carried out for FBKC and the utilized precursors, indicating that the surface area of FBKC was increased thirty-fold with a well-developed pore structure compared to the original precursors. FBKC demonstrated a maximum sorption capacity of 192.80 and 281.24 mg/g for NFX and CVD, respectively. The suited fitting of the experimental data to Freundlich and Clark models suggested multi-layer sorption of NFX/CVD molecules. The mechanistic studies of NFX/CVD sorption onto FBKC unveiled multiple mechanisms, including π-π interaction, hydrogen bonding, electrostatic attraction, and surface/pore filling effect. The estimated cost of 5.72 €/kg and superior sorption capacity makes FBKC an efficient low-cost sorbent for emergent water pollutants.
Lähdeviite
Maged, A., Elgarahy, A. M., Hlawitschka, M. W., Haneklaus, N. H., Gupta, A. K., Bhatnagar, A. (2023). Synergistic mechanisms for the superior sorptive removal of aquatic pollutants via functionalized biochar-clay composite. Bioresource technology. DOI: 10.1016/j.biortech.2023.129593
Kokoelmat
- Tieteelliset julkaisut [1800]
