4.7 Article

Adsorption characteristics and mechanisms of Pb2+ and Cd2+ by a new agricultural waste-Caragana korshinskii biomass derived biochar

期刊

ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH
卷 28, 期 11, 页码 13800-13818

出版社

SPRINGER HEIDELBERG
DOI: 10.1007/s11356-020-11571-9

关键词

Caragana korshinskii biochar; Adsorption characteristics; Mechanisms; Lead (Pb2+); Cadmium (Cd2+)

资金

  1. National Key Research and Development Project of China [2017YFC0504504, 2016YFC0501702]
  2. Key Research and Development Project of Ningxia Hui Autonomous Region [2020BCF01001]
  3. Science and Technology Service Network Initiative of the Chinese Academy of Sciences [KFJ-STS-QYZD-177]
  4. Opening Fund of Chongqing Key Laboratory of Environmental Materials and Remediation Technology [CEK1805]

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This study explored the comprehensive utilisation and recycling technology of Caragana korshinskii resources by preparing 15 kinds of Caragana korshinskii biochar (CB) under controlled pyrolysis conditions. The CB showed promising adsorption characteristics for Pb2+ and Cd2+, with the optimal preparation condition at 650 degrees C for 3 h. The adsorption process followed Langmuir and Freundlich models, while the adsorption kinetics followed the pseudo-second-order model.
In order to explore the comprehensive utilisation and recycling technology of Caragana korshinskii resources, a new agricultural biomass waste, 15 kinds of Caragana korshinskii biochar (CB) were prepared by controlling the pyrolysis temperature and time at the anaerobic environment. Moreover, we pay more attention to deriving the adsorption mechanisms and exploring the difference in adsorption characteristics of Pb2+ and Cd2+. The optimal preparation conditions and the batch adsorption experiments were evaluated, and the adsorption characteristics and mechanisms were discussed using 8 theoretical adsorption models and multiple characterisation methods. The results showed that the CB prepared at 650 degrees C for 3 h presented the best performance. The Langmuir and Freundlich models can well simulate the isotherm adsorption process of CB for Pb2+ and Cd2+, respectively. The adsorption kinetics of CB for Pb2+ and Cd2+ were best fitted by the pseudo-second-order model. The adsorption equilibrium for Pb2+ and Cd2+ was reached within 3 h, and their maximum adsorption capacity reached 220.94 mg g(-1) and 42.43 mg g(-1), respectively. In addition, the best addition amount was 3 g L-1 and 2.2 g L-1 for Pb2+ and Cd2+, respectively. The optimum pH range was 3-6 for Pb2+ and 6-7.5 for Cd2+. The adsorption mechanisms of CB for Pb2+ and Cd2+ were physicochemical composite adsorption processes, mainly including physical sorption on surface sites, intraparticle diffusion, electrostatic adsorption, ion/ligand exchange, cationic-pi interactions, surface complexation and precipitation. Furthermore, the ash of CB also presented a positive effect on the adsorption of Pb2+. Compared with other cellulose- and lignin-based biomass materials, CB showed low cost and efficient performance without complicated modification conditions. Therefore, this study demonstrates that CB is a promising raw material in water pollution control to immobilise heavy metals.

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