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题名

Highly-efficient Pb2+ removal from water by novel K2W4O13 nanowires: Performance, mechanisms and DFT calculation

作者
通讯作者Wei,Wei
发表日期
2020-02-01
DOI
发表期刊
ISSN
1385-8947
EISSN
1873-3212
卷号381
摘要
As one of the most toxic heavy metals, lead ions (Pb) contamination arouses increasing public concern for high carcinogenicity and neurotoxicity. In this study, a modified hydrothermal method was designed to fabricate novel hexagonal KWO nanowires to achieve highly-efficient Pb removal from water. Attractively, the as-prepared KWO exhibited large uptake capacity (228.83 mg/g), fast kinetic (141.67 mg/g in 30 min), superior acid-resistance (75% of removal at pH = 2) and excellent reusability (over 95% of removal after 5 runs) toward Pb adsorption. The Langmuir isotherm and pseudo-second-order kinetic model gave a better fit to the adsorption experimental data. The Pb adsorption process on KWO was revealed to be a spontaneous, exothermic, film diffusion limited chemisorption reaction. The mechanism studied elucidated that both ion-exchange and complexation were involved in Pb adsorption, with each accounting for approximate 50% of Pb elimination. Through density functional theory (DFT) calculation, the equatorial oxygen was found to be more accessible for Pb attachment than the axial corner oxygen from [WO] octahedra. Electron pairs from the adjacent O atoms would transfer to the empty orbitals of Pb atoms after adsorption, causing the Pb removal via metal-ligand complexation.
关键词
相关链接[Scopus记录]
收录类别
SCI ; EI
语种
英语
学校署名
其他
资助项目
National Natural Science Foundation of China[51578391] ; National Natural Science Foundation of China[51608374] ; Recruitment Program of Global Experts[] ; State Key Laboratory of Pollution Control and Resource Reuse[PCRRK18007]
WOS研究方向
Engineering
WOS类目
Engineering, Environmental ; Engineering, Chemical
WOS记录号
WOS:000499066900006
出版者
EI入藏号
20193507379931
EI主题词
Acid resistance ; Adsorption ; Density functional theory ; Heavy metals ; Ion exchange ; Isotherms ; Lead compounds ; Mechanisms ; Nanowires ; Oxygen ; Reusability
EI分类号
Water Treatment Techniques:445.1 ; Metallurgy and Metallography:531 ; Mechanisms:601.3 ; Nanotechnology:761 ; Chemical Reactions:802.2 ; Chemical Operations:802.3 ; Chemical Products Generally:804 ; Probability Theory:922.1 ; Solid State Physics:933
ESI学科分类
ENGINEERING
Scopus记录号
2-s2.0-85071365614
来源库
Scopus
引用统计
被引频次[WOS]:31
成果类型期刊论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/43717
专题工学院_环境科学与工程学院
工学院_深圳可持续发展研究院
作者单位
1.State Key Laboratory of Pollution Control and Resources ReuseCollege of Environmental Science and EngineeringTongji University,Shanghai,200092,China
2.Shanghai Institute of Pollution Control and Ecological Security,Shanghai,200092,China
3.School of Environmental Science and EngineeringSouthern University of Science and Technology,Shenzhen,518055,China
4.Shenzhen Institute of Sustainable Development,Shenzhen,518055,China
推荐引用方式
GB/T 7714
Huang,Qi Su,Wu,Wei,Wei,Wei,et al. Highly-efficient Pb2+ removal from water by novel K2W4O13 nanowires: Performance, mechanisms and DFT calculation[J]. CHEMICAL ENGINEERING JOURNAL,2020,381.
APA
Huang,Qi Su,Wu,Wei,Wei,Wei,Song,Lan,Sun,Jing,&Ni,Bing Jie.(2020).Highly-efficient Pb2+ removal from water by novel K2W4O13 nanowires: Performance, mechanisms and DFT calculation.CHEMICAL ENGINEERING JOURNAL,381.
MLA
Huang,Qi Su,et al."Highly-efficient Pb2+ removal from water by novel K2W4O13 nanowires: Performance, mechanisms and DFT calculation".CHEMICAL ENGINEERING JOURNAL 381(2020).
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