Reduction and adsorption of uranium(VI) from aqueous solutions using nanoscale zero-valent manganese

被引:19
作者
Li, Xiaohan [1 ]
Huang, Juanxi [1 ]
Shi, Zhengqin [2 ]
Xie, Yuan [3 ]
Xu, Zhengfan [3 ]
Long, Jianyou [1 ]
Song, Gang [1 ]
Wang, Yaxuan [1 ]
Zhang, Gaosheng [1 ]
Luo, Xiatiao [1 ]
Zhang, Ping
Zha, Shuxiang [1 ]
Li, Huosheng [1 ]
机构
[1] Guangzhou Univ, Sch Environm Sci & Engn, Key Lab Water Qual & Conservat Pearl River Delta, Minist Educ, Guangzhou 510006, Peoples R China
[2] Guangzhou Univ, Sch Chem & Chem Engn, Guangzhou 510006, Peoples R China
[3] Minist Nat Resources, Key Lab Radioact & Rare Scattered Minerals, Shaoguan 512026, Peoples R China
关键词
U(VI); ZVMn; Sorption; Nanoparticles; Density functional theory; EFFICIENT REMOVAL; OXIDE; U(VI); WATER; SORPTION; DEGRADATION; TEMPERATURE; GROUNDWATER; DISSOLUTION; COMPOSITES;
D O I
10.1016/j.jenvman.2023.118088
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Nano zero-valent manganese (nZVMn) is theoretically expected to exhibit high reducibility and adsorption ca-pacity, yet its feasibility, performance, and mechanism for reducing and adsorbing hexavalent uranium (U(VI)) from wastewater remain unclear. In this study, nZVMn was prepared via borohydride reduction, and its be-haviors about reduction and adsorption of U(VI), as well as the underlying mechanism, were investigated. Results indicated that nZVMn exhibited a maximum U(VI) adsorption capacity of 625.3 mg/g at a pH of 6 and an adsorbent dosage of 1 g/L, and the co-existing ions (K+, Na+, Mg2+, Cd2+, Pb2+, Tl+, Cl-) at studied range had little interference on U(VI) adsorption. Furthermore, nZVMn effectively removed U(VI) from rare-earth ore leachate at a dosage of 1.5 g/L, resulting in a U(VI) concentration of lower than 0.017 mg/L in the effluent. Comparative tests demonstrated the superiority of nZVMn over other manganese oxides (Mn2O3 and Mn3O4). Characterization analyses, including X-ray diffraction and depth profiling X-ray photoelectron spectroscopy, combined with density functional theory calculation revealed that the reaction mechanism of U(VI) using nZVMn involved reduction, surface complexation, hydrolysis precipitation, and electrostatic attraction. This study provides a new alternative for efficient removal of U(VI) from wastewater and improves the understanding of the interaction between nZVMn and U(VI).
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页数:11
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共 75 条
[31]   Removal and recovery of thallium from aqueous solutions via a magnetite-mediated reversible adsorption-desorption process [J].
Li, Huosheng ;
Li, Xiuwan ;
Chen, Yongheng ;
Long, Jianyou ;
Zhang, Gaosheng ;
Xiao, Tangfu ;
Zhang, Ping ;
Li, Changlin ;
Zhuang, Lingzhi ;
Huang, Wenyu .
JOURNAL OF CLEANER PRODUCTION, 2018, 199 :705-715
[32]   Zero-valent manganese nanoparticles coupled with different strong oxidants for thallium removal from wastewater [J].
Li, Keke ;
Li, Huosheng ;
Xiao, Tangfu ;
Zhang, Gaosheng ;
Liang, Aiping ;
Zhang, Ping ;
Lin, Lianhua ;
Chen, Zexin ;
Cao, Xinyu ;
Long, Jianyou .
FRONTIERS OF ENVIRONMENTAL SCIENCE & ENGINEERING, 2020, 14 (02)
[33]   Removal of thallium from wastewater by a combination of persulfate oxidation and iron coagulation [J].
Li, Keke ;
Li, Huosheng ;
Xiao, Tangfu ;
Zhang, Gaosheng ;
Long, Jianyou ;
Luo, Dinggui ;
Zhang, Hongguo ;
Xiong, Jingfang ;
Wang, Qimin .
PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2018, 119 :340-349
[34]   Mechanisms of U(VI) removal by biochar derived from Ficus microcarpa aerial root: A comparison between raw and modified biochar [J].
Li, Nuo ;
Yin, Meiling ;
Tsang, Daniel C. W. ;
Yang, Shitong ;
Liu, Juan ;
Li, Xue ;
Song, Gang ;
Wang, Jin .
SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 697
[35]   Facile preparation and performance of mesoporous manganese oxide for supercapacitors utilizing neutral aqueous electrolytes [J].
Li, Siheng ;
Qi, Li ;
Lu, Lehui ;
Wang, Hongyu .
RSC ADVANCES, 2012, 2 (08) :3298-3308
[36]   Zero-valent iron-manganese bimetallic nanocomposites catalyze hypochlorite for enhanced thallium(I) oxidation and removal from wastewater: Materials characterization, process optimization and removal mechanisms [J].
Li, Yuting ;
Li, Huosheng ;
Liu, Fengli ;
Zhang, Gaosheng ;
Xu, Yanhong ;
Xiao, Tangfu ;
Long, Jianyou ;
Chen, Zexin ;
Liao, Dandan ;
Zhang, Jiajun ;
Lin, Lianhua ;
Zhang, Ping .
JOURNAL OF HAZARDOUS MATERIALS, 2020, 386
[37]   Selective Ammonium Removal from Synthetic Wastewater by Flow-Electrode Capacitive Deionization Using a Novel K2Ti2O5-Activated Carbon Mixture Electrode [J].
Lin, Lin ;
Hu, Jiahui ;
Liu, Jiahua ;
He, Xin ;
Li, Bing ;
Li, Xiao-yan .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2020, 54 (19) :12723-12731
[38]   Removal of phosphate anions using the modified chitosan beads: Adsorption kinetic, isotherm and mechanism studies [J].
Liu, Xin ;
Zhang, Lingfan .
POWDER TECHNOLOGY, 2015, 277 :112-119
[39]   Influence and Mechanism of Cu2+ on Removal of U(VI) by Sulfate Reducing Bacteria [J].
Liu, Yuelin ;
Xie, Shuibo ;
Ling, Hui ;
Wang, Wentao ;
Li, Shiyou ;
Liu, Yingjiu .
APPLICATION OF CHEMICAL ENGINEERING, PTS 1-3, 2011, 236-238 :903-+
[40]   Copper modified manganese oxide with tunnel structure as efficient catalyst for low-temperature catalytic combustion of toluene [J].
Luo, Mengmeng ;
Cheng, Yan ;
Peng, Xuzhe ;
Pan, Wei .
CHEMICAL ENGINEERING JOURNAL, 2019, 369 :758-765