Synthesis of novel nanomaterials and their application in efficient removal of radionuclides
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  • 英文篇名:Synthesis of novel nanomaterials and their application in efficient removal of radionuclides
  • 作者:Xiangxue ; Wang ; Long ; Chen ; Lin ; Wang ; Qiaohui ; Fan ; Duoqiang ; Pan ; Jiaxing ; Li ; Fangting ; Chi ; Yi ; Xie ; Shujun ; Yu ; Chengliang ; Xiao ; Feng ; Luo ; Jun ; Wang ; Xiaolin ; Wang ; Changlun ; Chen ; Wangsuo ; Wu ; Weiqun ; Shi ; Shuao ; Wang ; Xiangke ; Wang
  • 英文作者:Xiangxue Wang;Long Chen;Lin Wang;Qiaohui Fan;Duoqiang Pan;Jiaxing Li;Fangting Chi;Yi Xie;Shujun Yu;Chengliang Xiao;Feng Luo;Jun Wang;Xiaolin Wang;Changlun Chen;Wangsuo Wu;Weiqun Shi;Shuao Wang;Xiangke Wang;Key Laboratory of Resources and Environmental Systems Optimization,Ministry of Education,College of Environmental Science and Engineering,North China Electric Power University;State Key Laboratory of Radiation Medicine and Protection,School of Radiation Medicine and Protection,Collaborative Innovation Center of Radiological Medicine of Jiangsu Higher Education Institutions,Soochow University;Laboratory of Nuclear Energy Chemistry and Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety,Institute of High Energy Physics,Chinese Academy of Sciences;Key Laboratory of Petroleum Resources,Gansu Province,Northwest Institute of Eco-Environment and Resources,Chinese Academy of Sciences;Radiochemistry Laboratory,School of Nuclear Science and Technology,Lanzhou University;CAS Key Laboratory of Photovoltaic and Energy Conservation Materials,Institute of Plasma Physics,Chinese Academy of Sciences;Fundamental Science on Nuclear Wastes and Environmental Safety Laboratory,Southwest University of Science and Technology;State Key Laboratory of Nuclear Resources and Environment,School of Biology,Chemistry and Material Science,East China University of Technology;College of Materials Science and Chemical Engineering,Harbin Engineering University;China Academy of Engineering Physics;
  • 英文关键词:nanomaterials;;radionuclides;;removal;;preconcentration;;interaction mechanism
  • 中文刊名:JBXG
  • 英文刊名:中国科学:化学(英文版)
  • 机构:Key Laboratory of Resources and Environmental Systems Optimization,Ministry of Education,College of Environmental Science and Engineering,North China Electric Power University;State Key Laboratory of Radiation Medicine and Protection,School of Radiation Medicine and Protection,Collaborative Innovation Center of Radiological Medicine of Jiangsu Higher Education Institutions,Soochow University;Laboratory of Nuclear Energy Chemistry and Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety,Institute of High Energy Physics,Chinese Academy of Sciences;Key Laboratory of Petroleum Resources,Gansu Province,Northwest Institute of Eco-Environment and Resources,Chinese Academy of Sciences;Radiochemistry Laboratory,School of Nuclear Science and Technology,Lanzhou University;CAS Key Laboratory of Photovoltaic and Energy Conservation Materials,Institute of Plasma Physics,Chinese Academy of Sciences;Fundamental Science on Nuclear Wastes and Environmental Safety Laboratory,Southwest University of Science and Technology;State Key Laboratory of Nuclear Resources and Environment,School of Biology,Chemistry and Material Science,East China University of Technology;College of Materials Science and Chemical Engineering,Harbin Engineering University;China Academy of Engineering Physics;
  • 出版日期:2019-06-20 16:18
  • 出版单位:Science China(Chemistry)
  • 年:2019
  • 期:v.62
  • 基金:supported by the Science Challenge Project (TZ2016004);; the National Natural Science Foundation of China (21836001, 21876048)
  • 语种:英文;
  • 页:JBXG201908006
  • 页数:35
  • CN:08
  • ISSN:11-5839/O6
  • 分类号:19-53
摘要
With the development of nuclear energy, large amounts of radionuclides are inevitably released into the natural environment. It is necessary to eliminate radionuclides from wastewater for the protection of environment. Nanomaterials have been considered as the potential candidates for the effective and selective removal of radionuclides from aqueous solutions under complicated conditions because of their high specific surface area, large amounts of binding sites, abundant functional groups, pore-size controllable and easily surface modification. This review mainly summarized the recent studies for the synthesis, fabrication and surface modification of novel nanomaterials and their applications in the efficient elimination and solidification of radionuclides,and discussed the interaction mechanisms from batch experiments, spectroscopy analysis and theoretical calculations. The sorption capacities with other materials, advantages and disadvantages of different nanomaterials are compared, and at last the perspective of the novel nanomaterials is summarized.
        With the development of nuclear energy, large amounts of radionuclides are inevitably released into the natural environment. It is necessary to eliminate radionuclides from wastewater for the protection of environment. Nanomaterials have been considered as the potential candidates for the effective and selective removal of radionuclides from aqueous solutions under complicated conditions because of their high specific surface area, large amounts of binding sites, abundant functional groups, pore-size controllable and easily surface modification. This review mainly summarized the recent studies for the synthesis, fabrication and surface modification of novel nanomaterials and their applications in the efficient elimination and solidification of radionuclides,and discussed the interaction mechanisms from batch experiments, spectroscopy analysis and theoretical calculations. The sorption capacities with other materials, advantages and disadvantages of different nanomaterials are compared, and at last the perspective of the novel nanomaterials is summarized.
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