Highly efficient iodine capture by polyethyleneimine-impregnated CuAl-pillared montmorillonite
暂无分享,去创建一个
Wenkun Zhu | Hongyi Chen | Xiaoyu Tian | Ying Xie | Yong Zhang | Lingyi Jia | Bingyu Mei
[1] A. Sari,et al. Influential antimony removal from Aquatic Solution using Graphene Nanoplatelet/ Staphylococcus aureus as Novel Composite Adsorbent , 2023, Surfaces and Interfaces.
[2] A. Sari,et al. Synthesis of TiO2 nanoparticles loaded on Magnetite nanoparticles modified Kaolinite clay (KC) and their efficiency for As(III) adsorption , 2023, Chemical Engineering Research and Design.
[3] Yuzhi Zhou,et al. UO22+ capture using amidoxime grafting low-cost activated carbon (AO-AC) from solution: Adsorption kinetic, isotherms and interaction mechanism , 2023, Inorganica Chimica Acta.
[4] Tao Duan,et al. Capture of iodine gas by Bi0 modified silica with different morphologies: influence of pore characteristic on the stable and unstable forms of adsorption , 2022, Chemical Engineering Journal.
[5] Xin Chen,et al. A novel three-dimensionally ordered macroporous aerogel for capturing radioactive gaseous iodine , 2022, Ceramics International.
[6] Yuehua Wu,et al. Novel phenothiazine-based hyper-cross-linked porous polymers containing N, S double electrically rich atoms for efficient iodine capture , 2022, Microporous and Mesoporous Materials.
[7] Tao Duan,et al. Scalable and economical Bi0-SiO2 for the high efficient capture of iodine gas , 2022, Journal of Nuclear Materials.
[8] N. Sahiner,et al. Polymeric ionic liquid forms of PEI microgels as catalysts for hydrogen production via sodium borohydride methanolysis , 2022, Journal of Molecular Liquids.
[9] Dongxiang Zhang,et al. LiAlO2-melamine for efficient and rapid iodine capture , 2022, Journal of Environmental Chemical Engineering.
[10] Rui-Fang Ding,et al. Novel and Versatile Pei Modified Zif-8 Hollow Nanotubes to Construct Co2 Facilitated Transport Pathway in Mmms , 2022, SSRN Electronic Journal.
[11] Tao Duan,et al. Novel synthesis of NaY-NH4F-Bi2S3 composite for enhancing iodine capture , 2022, Chemical Engineering Journal.
[12] Xiyan Xu,et al. Highly stable iodine capture by pillared montmorillonite functionalized Bi2O3@g-C3N4 nanosheets , 2022, Separation and Purification Technology.
[13] Jinglei Yang,et al. Catalytic pyrolysis of film waste over Co/Ni pillared montmorillonites towards H2 production. , 2022, Chemosphere.
[14] Chungui Tian,et al. Two-dimensional assembly made up of ZIF-8 particles for the high-efficient capture of the iodine and dyes. , 2022, Journal of hazardous materials.
[15] Ming Chen,et al. Al30 polycation pillared montmorillonite preparation and phosphate adsorption removal from water , 2022, Surfaces and Interfaces.
[16] Tao Duan,et al. Interface assembly of specific recognition gripper wrapping on activated collagen fiber for synergistic capture effect of iodine. , 2021, Colloids and surfaces. B, Biointerfaces.
[17] Feng Yan,et al. Efficient one-pot synthesis of ethyl levulinate from carbohydrates catalyzed by Wells-Dawson heteropolyacid supported on Ce–Si pillared montmorillonite , 2021, Journal of Cleaner Production.
[18] Bin Wang,et al. Polypyrrole deposited electrospun PAN/PEI nanofiber membrane designed for high efficient adsorption of chromium ions (VI) in aqueous solution , 2021 .
[19] Lishu Shao,et al. Facile preparation of oxygen-rich porous polymer microspheres from lignin-derived phenols for selective CO2 adsorption and iodine vapor capture. , 2021, Chemosphere.
[20] Yi Zhao,et al. The adsorbent for efficient iodine capture based on citrazinic acid and cytosine: experimental synthesis with a simple way and property analysis with electronic structure calculations , 2021, Journal of Materials Research and Technology.
[21] Jae Won Lee,et al. Synthesis and characterization of Ag-containing hydrophobic aluminosilicate aerogels for I2 capture , 2021, Journal of Nuclear Materials.
[22] Xianliang Sheng,et al. Efficient iodine capture by a sesbania gum-based polymeric adsorbent for reutilization in bacterial decontamination , 2021 .
[23] Tao Duan,et al. Space and structure activation of collagen fiber for high efficient capture iodine in off-gas , 2021, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[24] Xingwang Zhang,et al. Novel bismuth-based electrospinning materials for highly efficient capture of radioiodine , 2021 .
[25] Y. Liu,et al. Sonicated zeolitic imidazolate Framework-8 derived nanoporous carbon for efficient capture and reversible storage of radioiodine , 2021, Journal of Solid State Chemistry.
[26] Xiaolang Chen,et al. Fabrication of novel CuO/layered double oxide microspheres and its high efficiency adsorption performance for Congo red , 2021 .
[27] Lehui Lu,et al. Host-guest interaction-mediated nanointerface engineering for radioiodine capture , 2021, Nano Today.
[28] Jianlong Wang,et al. Adsorption isotherm models: Classification, physical meaning, application and solving method. , 2020, Chemosphere.
[29] J. Bundschuh,et al. Inorganic arsenic species removal from water using bone char: A detailed study on adsorption kinetic and isotherm models using error functions analysis. , 2020, Journal of hazardous materials.
[30] Shifang Luan,et al. Controlled Engineering of Nano-Povidones for Efficient Iodine Recovery and Antibacterial Reutilization , 2020 .
[31] F. Rezaei,et al. Development of bismuth-mordenite adsorbents for iodine capture from off-gas streams , 2020 .
[32] Gang Yu,et al. Efficient removal of CO2 from indoor air using a polyethyleneimine-impregnated resin and its low-temperature regeneration , 2020 .
[33] H. Liang,et al. Cheap and biodegradable amino acid-based deep eutectic solvents for radioactive iodine capture via halogen bonds , 2020 .
[34] Y. Liao,et al. A crosslinking alkylation strategy to construct nitrogen-enriched tetraphenylmethane-based porous organic polymers as efficient carbon dioxide and iodine adsorbents , 2020 .
[35] Chengchun Tang,et al. Effective capture and reversible storage of iodine using foam-like adsorbents consisting of porous boron nitride microfibers , 2020 .
[36] D. Hua,et al. Fluorescent conjugated mesoporous polymers with N,N-diethylpropylamine for the efficient capture and real-time detection of volatile iodine , 2020 .
[37] Jian-Bo He,et al. Ferrocene-based porous organic polymers for high-affinity iodine capture , 2020 .
[38] T. Verma,et al. High Adsorption Capacity of an sp2/sp3-N-Rich Polymeric Network: From Molecular Iodine Capture to Catalysis , 2020 .
[39] Xuemei Li,et al. Task-specific synthesis of cost-effective electron-rich thiophene-based hypercrosslinked polymer with perylene for efficient iodine capture , 2019 .
[40] B. Azambre,et al. High iodine adsorption by polyethyleneimine impregnated nanosilica sorbents , 2019, Microporous and Mesoporous Materials.
[41] Hanxue Sun,et al. Biomass derived porous carbon for efficient capture of carbon dioxide, organic contaminants and volatile iodine with exceptionally high uptake , 2019, Chemical Engineering Journal.
[42] Guihua Li,et al. Efficient iodine capture by biocompatible PEG-based deep eutectic solvents: Kinetics and dynamic mechanism , 2019, Journal of Molecular Liquids.
[43] Gang Chen,et al. One-pot synthesis of viologen-based hypercrosslinked polymers for efficient volatile iodine capture , 2019, Microporous and Mesoporous Materials.
[44] Xiaoqiang Jiang,et al. Novel synthesis of Bi-Bi2O3-TiO2-C composite for capturing iodine-129 in off-gas. , 2019, Journal of hazardous materials.
[45] Gang Chen,et al. Highly efficient iodine capture by task-specific polyethylenimine impregnated hypercrosslinked polymers , 2018, Journal of the Taiwan Institute of Chemical Engineers.
[46] H. Nouali,et al. Porous sorbents for the capture of radioactive iodine compounds: a review , 2018, RSC advances.
[47] D. E. Aston,et al. Adsorption of radioactive iodine and krypton from off-gas stream using continuous flow adsorption column , 2017 .
[48] Zhimin Xue,et al. The high-efficiency and eco-friendly PEGylated ionic liquid systems for radioactive iodine capture through halogen bonding interaction , 2017 .
[49] K. Sapag,et al. A comparative study of CO2 diffusion from adsorption kinetic measurements on microporous materials at low pressures and temperatures , 2016 .
[50] D. E. Aston,et al. Porous microsphere of magnesium oxide as an effective sorbent for removal of volatile iodine from off-gas stream , 2016, Adsorption.
[51] RajenderKumar Gupta,et al. Post-combustion CO2 capture using polyethyleneimine impregnated mesoporous cellular foams , 2015 .
[52] Chenze Qi,et al. Preparation and characterization of novel composite AlCr-pillared clays and preliminary investigation for benzene adsorption , 2015 .
[53] Hanxue Sun,et al. Capture and reversible storage of volatile iodine by porous carbon with high capacity , 2015, Journal of Materials Science.
[54] E. Gaigneaux,et al. Catalysts based on pillared clays for the oxidation of chlorobenzene , 2015 .
[55] Soojin Park,et al. Silica-coated multi-walled carbon nanotubes impregnated with polyethyleneimine for carbon dioxide capture under the flue gas condition , 2015 .
[56] A. Gil,et al. Removal of dyes from wastewaters by adsorption on pillared clays , 2011 .