Deep eutectic solvent assisted facile and efficient synthesis of nitrogen-doped magnetic biochar for hexavalent chromium elimination: Mechanism and performance insights

生物炭 共晶体系 六价铬 化学 兴奋剂 热解 材料科学 氮气 深共晶溶剂 机制(生物学) 化学工程 溶剂 冶金 有机化学 合金 工程类 哲学 光电子学 认识论
作者
Zhijian Ke,Meng Mei,Jingxin Liu,Peiyu Du,Bin Zhang,Teng Wang,Si Chen,Jinping Li
出处
期刊:Journal of Cleaner Production [Elsevier]
卷期号:357: 132012-132012 被引量:31
标识
DOI:10.1016/j.jclepro.2022.132012
摘要

Dual-modification of biochar through magnetization and nitrogen-doping can greatly enhance the removal performance for Cr(VI). Deep eutectic solvent (DES), as a class of novel green solvent, has gained much attention in the research field of material science. In this study, a DES produced by complexing of FeCl 3 and urea was adopted for the first time to assist the facile and efficient preparation of a nitrogen-doped magnetic biochar (NMBC) by using peanut shell (PS) as raw stock. The results indicated that FeCl 3 /urea-based DES could act as fine iron and nitrogen sources in the formation of NMBC. More importantly, the DES catalyzed the pyrolysis process of PS and promoted the pore development on biochar. The synthesized NMBC showed satisfactory removal efficiency for Cr(VI), with the adsorption process well depicted by Langmuir isotherm and pseudo-second-order kinetic models . The results revealed that iron species, nitrogen- and oxygen-containing groups in NMBC made great contributions to Cr(VI) capture. The comprehensive mechanism included pore-filling, electrostatic attraction , cation bridging, ion-exchange, reduction and surface complexation. The present study provides a new insight to guide the design of functional biochar for Cr(VI) decontamination from water. • A nitrogen-doped magnetic biochar (NMBC) was synthesized with the help of DES. • The FeCl 3 /urea-based DES played important roles in the formation of NMBC. • The as-prepared NMBC showed highly efficient removal performance for Cr(VI). • The removal of Cr(VI) was the synergetic result of adsorption-reduction-adsorption.
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