Mechanism of sonication time on structure and adsorption properties of 3D peanut shell/graphene oxide aerogel

A 3D pretreated peanut shell-supported graphene oxide (PPS/GO) aerogel has been facilely prepared through a brief sonication + freeze-shaping technique, avoiding the traditional application of hydrothermal method which suffered from high temperature and long reaction time as well as significant loss...

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Veröffentlicht in:The Science of the total environment 2020-10, Vol.739, p.139983-139983, Article 139983
Hauptverfasser: Dan, Hongbing, Li, Nan, Xu, Xing, Gao, Yue, Huang, Ying, Akram, Muhammad, Yin, Weiyan, Gao, Baoyu, Yue, Qinyan
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Sprache:eng
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Zusammenfassung:A 3D pretreated peanut shell-supported graphene oxide (PPS/GO) aerogel has been facilely prepared through a brief sonication + freeze-shaping technique, avoiding the traditional application of hydrothermal method which suffered from high temperature and long reaction time as well as significant loss of oxygen-containing functional groups. It was then employed to efficient norfloxacin (NOR) removal from aqueous medium. The mechanism of sonication time on the structure and adsorption properties of as-obtained PPS/GO aerogels was emphatically discussed via combining instrumental analyses, batch adsorption experiments and density functional theory (DFT) calculations. Results showed that the 3D PPS/GO aerogel with a decrease in oxygen functional groups and an increase in sp2-derived sp3 hybridization regions was observed as sonication time provided in excess, causing the worse removal efficiency towards NOR. The resulting PPS/GO(5:1) aerogel obtained at sonication of 2 min and GO loading content of 200 mg/(PPS)g exhibited the optimal NOR adsorption capacity (pH 6.2, 228.83 mg g−1). DFT calculations further identified that the sp3-hybridized areas in PPS/GO aerogel had much lower adsorption energy (ΔE, −6.69 kcal/mol) towards NOR as compared with that of sp2-hybridized zones (−12.45 kcal/mol). In addition, multiple interactions were involved in the adsorption of NOR by 3D PPS/GO aerogel, including electrostatic attraction, H-bonding, π-π conjugation and hydrophobic effect. [Display omitted] •3D PPS/GO aerogel was facilely prepared by sonication + freeze-shaping technique.•Excessive sonication will cause decreasing oxygen groups and increasing sp3-hybridized regions.•DFT calculations were introduced and identified the experimental investigations.•Multiple interactions were involved in the adsorption of NOR by PPS/GO aerogel.
ISSN:0048-9697
1879-1026
DOI:10.1016/j.scitotenv.2020.139983