Efficient recovery of rare metal lanthanum from water by MOF-modified biochar: DFT calculation and dynamic adsorption

Abstract In this research, a novel metal-organic framework-modified biochar composite (MIL-88b@BC) was created for the first time by modifying rice husk biochar using the excellent adsorption properties of metal-organic framework (MOF), as well as reducing the solubility of MOF using biochar as a su...

Full description

Saved in:
Bibliographic Details
Main Authors: Qilan Huang, Qianru Zhang, Shuwen Zhao, Chuchen Zhang, Huixin Guan, Jianqiao Liu
Format: Article
Language:English
Published: Springer 2025-02-01
Series:Biochar
Subjects:
Online Access:https://doi.org/10.1007/s42773-024-00419-x
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1823861773021741056
author Qilan Huang
Qianru Zhang
Shuwen Zhao
Chuchen Zhang
Huixin Guan
Jianqiao Liu
author_facet Qilan Huang
Qianru Zhang
Shuwen Zhao
Chuchen Zhang
Huixin Guan
Jianqiao Liu
author_sort Qilan Huang
collection DOAJ
description Abstract In this research, a novel metal-organic framework-modified biochar composite (MIL-88b@BC) was created for the first time by modifying rice husk biochar using the excellent adsorption properties of metal-organic framework (MOF), as well as reducing the solubility of MOF using biochar as a substrate, aiming to improve the understanding of the adsorption characteristics of rare-earth metal recycling and to predict its adsorption mechanism. Density functional theory (DFT) computations allowed for rationally constructing the adsorption model. According to DFT calculations, the primary processes involved in the adsorption of La3+ were π–π interaction and ligand exchange, wherein the surface hydroxyl group played a crucial role. MIL-88b@BC interacted better with La3+ than biochar or MOF did. Accompanying batch tests with the theoretical conjecture's verification demonstrated that the pseudo-second-order model and the Langmuir model, respectively, provided a good fit for the adsorption kinetics and isotherms. The maximum La3+ adsorption capacity of MOF@BC (288.89 mg g−1) was achieved at pH 6.0, which was significantly higher than the adsorbents' previously documented adsorption capacities. Confirming the DFT estimations, the adsorption capacity of BC@MIL-88b for La3+ was higher than that of MOF and BC. Additionally, MOF@BC can be recycled at least four times. To mitigate the growing scarcity of rare earth elements (REEs) and lessen their negative environmental effects, this work laid the path for effectively treating substantial volumes of wastewater produced while mining REEs. Highlights The novel composite adsorbent was prepared by MOF and biochar in situ growth method. The adsorption mechanism was innovatively investigated based on DFT calculations. Ligand exchange and La–O–Fe formation dominated in lanthanide ion removal. Graphical Abstract
format Article
id doaj-art-fcad8d2f891244e0992629e9cc904c08
institution Kabale University
issn 2524-7867
language English
publishDate 2025-02-01
publisher Springer
record_format Article
series Biochar
spelling doaj-art-fcad8d2f891244e0992629e9cc904c082025-02-09T12:48:53ZengSpringerBiochar2524-78672025-02-017111710.1007/s42773-024-00419-xEfficient recovery of rare metal lanthanum from water by MOF-modified biochar: DFT calculation and dynamic adsorptionQilan Huang0Qianru Zhang1Shuwen Zhao2Chuchen Zhang3Huixin Guan4Jianqiao Liu5State Key Laboratory of Efficient Utilization of Arid and Semi−arid Arable Land in Northern China, Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Haidian DistrictState Key Laboratory of Efficient Utilization of Arid and Semi−arid Arable Land in Northern China, Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Haidian DistrictState Key Laboratory of Efficient Utilization of Arid and Semi−arid Arable Land in Northern China, Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Haidian DistrictState Key Laboratory of Efficient Utilization of Arid and Semi−arid Arable Land in Northern China, Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Haidian DistrictCollege of Information Science and Technology, Dalian Maritime UniversityCollege of Information Science and Technology, Dalian Maritime UniversityAbstract In this research, a novel metal-organic framework-modified biochar composite (MIL-88b@BC) was created for the first time by modifying rice husk biochar using the excellent adsorption properties of metal-organic framework (MOF), as well as reducing the solubility of MOF using biochar as a substrate, aiming to improve the understanding of the adsorption characteristics of rare-earth metal recycling and to predict its adsorption mechanism. Density functional theory (DFT) computations allowed for rationally constructing the adsorption model. According to DFT calculations, the primary processes involved in the adsorption of La3+ were π–π interaction and ligand exchange, wherein the surface hydroxyl group played a crucial role. MIL-88b@BC interacted better with La3+ than biochar or MOF did. Accompanying batch tests with the theoretical conjecture's verification demonstrated that the pseudo-second-order model and the Langmuir model, respectively, provided a good fit for the adsorption kinetics and isotherms. The maximum La3+ adsorption capacity of MOF@BC (288.89 mg g−1) was achieved at pH 6.0, which was significantly higher than the adsorbents' previously documented adsorption capacities. Confirming the DFT estimations, the adsorption capacity of BC@MIL-88b for La3+ was higher than that of MOF and BC. Additionally, MOF@BC can be recycled at least four times. To mitigate the growing scarcity of rare earth elements (REEs) and lessen their negative environmental effects, this work laid the path for effectively treating substantial volumes of wastewater produced while mining REEs. Highlights The novel composite adsorbent was prepared by MOF and biochar in situ growth method. The adsorption mechanism was innovatively investigated based on DFT calculations. Ligand exchange and La–O–Fe formation dominated in lanthanide ion removal. Graphical Abstracthttps://doi.org/10.1007/s42773-024-00419-xBiocharFe-MOFAdsorptionRare earth elementDensity functional theory
spellingShingle Qilan Huang
Qianru Zhang
Shuwen Zhao
Chuchen Zhang
Huixin Guan
Jianqiao Liu
Efficient recovery of rare metal lanthanum from water by MOF-modified biochar: DFT calculation and dynamic adsorption
Biochar
Biochar
Fe-MOF
Adsorption
Rare earth element
Density functional theory
title Efficient recovery of rare metal lanthanum from water by MOF-modified biochar: DFT calculation and dynamic adsorption
title_full Efficient recovery of rare metal lanthanum from water by MOF-modified biochar: DFT calculation and dynamic adsorption
title_fullStr Efficient recovery of rare metal lanthanum from water by MOF-modified biochar: DFT calculation and dynamic adsorption
title_full_unstemmed Efficient recovery of rare metal lanthanum from water by MOF-modified biochar: DFT calculation and dynamic adsorption
title_short Efficient recovery of rare metal lanthanum from water by MOF-modified biochar: DFT calculation and dynamic adsorption
title_sort efficient recovery of rare metal lanthanum from water by mof modified biochar dft calculation and dynamic adsorption
topic Biochar
Fe-MOF
Adsorption
Rare earth element
Density functional theory
url https://doi.org/10.1007/s42773-024-00419-x
work_keys_str_mv AT qilanhuang efficientrecoveryofraremetallanthanumfromwaterbymofmodifiedbiochardftcalculationanddynamicadsorption
AT qianruzhang efficientrecoveryofraremetallanthanumfromwaterbymofmodifiedbiochardftcalculationanddynamicadsorption
AT shuwenzhao efficientrecoveryofraremetallanthanumfromwaterbymofmodifiedbiochardftcalculationanddynamicadsorption
AT chuchenzhang efficientrecoveryofraremetallanthanumfromwaterbymofmodifiedbiochardftcalculationanddynamicadsorption
AT huixinguan efficientrecoveryofraremetallanthanumfromwaterbymofmodifiedbiochardftcalculationanddynamicadsorption
AT jianqiaoliu efficientrecoveryofraremetallanthanumfromwaterbymofmodifiedbiochardftcalculationanddynamicadsorption