Current Status of Nanoclay Phytotoxicity
暂无分享,去创建一个
[1] C. Geri,et al. The effects of nano-TiO2 on seed germination, development and mitosis of root tip cells of Vicia narbonensis L. and Zea mays L , 2011 .
[2] T. Xia,et al. Toxic Potential of Materials at the Nanolevel , 2006, Science.
[3] Mingxian Liu,et al. Recent advance in research on halloysite nanotubes-polymer nanocomposite , 2014 .
[4] Selective desorption characteristics of halloysite nanotubes for anionic azo dyes , 2014 .
[5] Yingqing Zhan,et al. Novel polyvinylidene fluoride nanofiltration membrane blended with functionalized halloysite nanotubes for dye and heavy metal ions removal. , 2016, Journal of hazardous materials.
[6] G. Schroeder,et al. High decrease in soil metal bioavailability by metal immobilization with halloysite clay , 2015, Environmental Chemistry Letters.
[7] P. M. Neumann,et al. Colloidal suspensions of clay or titanium dioxide nanoparticles can inhibit leaf growth and transpiration via physical effects on root water transport. , 2009, Plant, cell & environment.
[8] Pengwei Huo,et al. Effect of metal ion (Zn2+, Bi3+, Cr3+, and Ni2+)-doped CdS/halloysite nanotubes (HNTs) photocatalyst for the degradation of tetracycline under visible light , 2015 .
[9] Xiazhang Li,et al. Hierarchical La0.7Ce0.3FeO3/halloysite nanocomposite for photocatalytic degradation of antibiotics , 2016 .
[10] Giuseppe Lazzara,et al. Ecocompatible Halloysite/Cucurbit[8]uril Hybrid as Efficient Nanosponge for Pollutants Removal , 2016 .
[11] Jianfeng Chen,et al. Assembled alginate/chitosan micro-shells for removal of organic pollutants , 2009 .
[12] Y. Lvov,et al. Self-healing coatings based on halloysite clay polymer composites for protection of copper alloys. , 2013, ACS applied materials & interfaces.
[13] Zhouqing Xu,et al. The Enhanced Catalytic Activities of Asymmetric Au-Ni Nanoparticle Decorated Halloysite-Based Nanocomposite for the Degradation of Organic Dyes , 2016, Nanoscale Research Letters.
[14] Jing Ouyang,et al. Metal oxide nanoparticles deposited onto carbon-coated halloysite nanotubes , 2014 .
[15] Y. Lvov,et al. Evaluation of toxicity of nanoclays and graphene oxide in vivo: a Paramecium caudatum study , 2016 .
[16] Dimitrios Stampoulis,et al. Assay-dependent phytotoxicity of nanoparticles to plants. , 2009, Environmental science & technology.
[17] Jin-dun Liu,et al. The removal of dye from aqueous solution using alginate-halloysite nanotube beads. , 2012 .
[18] M. Radziemska,et al. CONTENT OF SELECTED HEAVY METALS IN NI-CONTAMINATED SOIL FOLLOWING THE APPLICATION OF HALLOYSITE AND ZEOLITE , 2016 .
[19] G. Lazzara,et al. Synthesis and Characterization of Halloysite–Cyclodextrin Nanosponges for Enhanced Dyes Adsorption , 2017 .
[20] P. Słomkiewicz,et al. Possible use of halloysite in phytoremediation of soils contaminated with heavy metals , 2012 .
[21] P. E. Poh,et al. Halloysite/alginate nanocomposite beads: Kinetics, equilibrium and mechanism for lead adsorption , 2016 .
[22] Stephen Mann,et al. Nanoparticles can cause DNA damage across a cellular barrier. , 2009, Nature nanotechnology.
[23] Y. Lvov,et al. Enlargement of halloysite clay nanotube lumen by selective etching of aluminum oxide. , 2012, ACS nano.
[24] K. Berent,et al. Hybrid photosensitizer based on halloysite nanotubes for phenol-based pesticide photodegradation , 2015 .
[25] Y. Lvov,et al. Biomimetic cell-mediated three-dimensional assembly of halloysite nanotubes. , 2013, Chemical communications.
[26] Hongda Chen,et al. Nanoscale Science and Engineering for Agriculture and Food Systems , 2012 .
[27] Liqun Zhang,et al. Nanodot-Loaded Clay Nanotubes as Green and Sustained Radical Scavengers for Elastomer , 2017 .
[28] Junliang Sun,et al. Zeolite A synthesized from alkaline assisted pre-activated halloysite for efficient heavy metal removal in polluted river water and industrial wastewater. , 2017, Journal of environmental sciences.
[29] Eric Eslinger,et al. Clay minerals for petroleum geologists and engineers , 1988 .
[30] Y. Lvov,et al. Toxicity of halloysite clay nanotubes in vivo: a Caenorhabditis elegans study , 2015 .
[31] Faheem Ahmed,et al. Nanobiotechnology: Scope and Potential for Crop Improvement , 2013 .
[32] Baoshan Xing,et al. Phytotoxicity of nanoparticles: inhibition of seed germination and root growth. , 2007, Environmental pollution.
[33] D. Mills,et al. Enhanced efficiency of antiseptics with sustained release from clay nanotubes , 2014 .
[34] J. Matusik,et al. Enhanced heavy metal adsorption on functionalized nanotubular halloysite interlayer grafted with aminoalcohols , 2014 .
[35] Giuseppe Lazzara,et al. Covalently modified halloysite clay nanotubes: synthesis, properties, biological and medical applications. , 2017, Journal of materials chemistry. B.
[36] Xiazhang Li,et al. Halloysite–CeO2–AgBr nanocomposite for solar light photodegradation of methyl orange , 2015 .
[37] Mingliang Du,et al. Green synthesis of halloysite nanotubes supported Ag nanoparticles for photocatalytic decomposition of methylene blue , 2012 .
[38] G. Kiani,et al. Adsorption studies on the removal of Malachite Green from aqueous solutions onto halloysite nanotubes , 2011 .
[39] H. Murray. Applied clay mineralogy : occurrences, processing, and application of kaolins, bentonites, palygorskite-sepiolite, and common clays , 2007 .
[40] A. Poma,et al. Penetration and Toxicity of Nanomaterials in Higher Plants , 2015, Nanomaterials.
[41] Giuseppe Lazzara,et al. Halloysite nanotubes as support for metal-based catalysts , 2016 .
[42] Y. Rui,et al. Uptake, transport, distribution and Bio-effects of SiO2 nanoparticles in Bt-transgenic cotton , 2014, Journal of Nanobiotechnology.
[43] M. H. Siddiqui,et al. Role of nano-SiO2 in germination of tomato (Lycopersicum esculentum seeds Mill.). , 2014, Saudi journal of biological sciences.
[44] G. Sposito,et al. Surface geochemistry of the clay minerals. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[45] H. Nakata,et al. Organochlorine Pesticides and Polychlorinated Biphenyl Residues in Foodstuffs and Human Tissues from China: Status of Contamination, Historical Trend, and Human Dietary Exposure , 2002, Archives of environmental contamination and toxicology.
[46] Yasuhiko Yoshida,et al. Nanoparticulate material delivery to plants , 2010 .
[47] Sangeeta Garg,et al. Synthesis of cross-linked starch based polymers for sorption of organic pollutants from aqueous solutions , 2012 .
[48] Jin-dun Liu,et al. Removal of methylene blue from aqueous solutions by adsorption onto chemically activated halloysite nanotubes , 2011 .
[49] B. Loganathan,et al. Contamination profiles and mass loadings of macrolide antibiotics and illicit drugs from a small urban wastewater treatment plant. , 2009, Chemosphere.
[50] C. Delerue-Matos,et al. Ecotoxicological aspects related to the presence of pharmaceuticals in the aquatic environment. , 2010, Journal of hazardous materials.
[51] Kang Feiyu,et al. Microstructure and Photocatalytic Decomposition of Methylene Blue by TiO2‐Mounted Halloysite, a Natural Tubular Mineral , 2006 .
[52] Peng Liu,et al. Adsorption behavior of methylene blue on halloysite nanotubes , 2008 .
[53] Yuan Tian,et al. Carboxylated multi-walled carbon nanotubes aggravated biochemical and subcellular damages in leaves of broad bean (Vicia faba L.) seedlings under combined stress of lead and cadmium. , 2014, Journal of hazardous materials.
[54] G. Kiani. High removal capacity of silver ions from aqueous solution onto Halloysite nanotubes , 2014 .
[55] Tianxi Liu,et al. Enhanced visible-light photocatalytic performance of electrospun carbon-doped TiO2/halloysite nanotube hybrid nanofibers. , 2015, Journal of colloid and interface science.
[56] Yan-Xing Wang,et al. Preparation of halloysite-derived mesoporous silica nanotube with enlarged specific surface area for enhanced dye adsorption , 2016 .
[57] G. Cavallaro,et al. Alginate gel beads filled with halloysite nanotubes , 2013 .
[58] Jong Bum Lee,et al. Engineering DNA-based functional materials. , 2011, Chemical Society reviews.
[59] Yuri Lvov,et al. Halloysite clay nanotubes for controlled release of protective agents. , 2011, Journal of nanoscience and nanotechnology.
[60] Ruichao Liu,et al. HALLOYSITE NANOTUBE-FE3O4 COMPOSITE FOR REMOVAL OF METHYL VIOLET FROM AQUEOUS SOLUTIONS , 2012 .
[61] Zhiping Zhou,et al. Ultrahigh adsorption of typical antibiotics onto novel hierarchical porous carbons derived from renewable lignin via halloysite nanotubes-template and in-situ activation , 2016 .
[62] G. Cavallaro,et al. Multicavity halloysite-amphiphilic cyclodextrin hybrids for co-delivery of natural drugs into thyroid cancer cells. , 2015, Journal of materials chemistry. B.
[63] E. Varghese,et al. Exploitation of Nano-Bentonite, Nano-Halloysite and Organically Modified Nano-Montmorillonite as an Adsorbent and Coagulation Aid for the Removal of Multi-Pesticides from Water: A Sorption Modelling Approach , 2015, Water, Air, & Soil Pollution.
[64] Filippo Parisi,et al. Pharmaceutical properties of supramolecular assembly of co-loaded cardanol/triazole-halloysite systems. , 2015, International journal of pharmaceutics.
[65] Y. Lvov,et al. The application of halloysite tubule nanoclay in drug delivery , 2016, Expert opinion on drug delivery.
[66] G. Lazzara,et al. Ecotoxicity of halloysite nanotube–supported palladium nanoparticles in Raphanus sativus L , 2016, Environmental toxicology and chemistry.
[67] Pengwei Huo,et al. Preparation high photocatalytic activity of CdS/halloysite nanotubes (HNTs) nanocomposites with hydrothermal method , 2012 .
[68] Pengwu Zheng,et al. Adsorption and photodegradation of methylene blue on TiO2-halloysite adsorbents , 2014, Korean Journal of Chemical Engineering.
[69] Yatao Zhang,et al. Potent antibacterial activity of a novel silver nanoparticle-halloysite nanotube nanocomposite powder. , 2013, Journal of inorganic biochemistry.
[70] Zhang Xiang,et al. Rapid adsorption of Cr (VI) on modified halloysite nanotubes , 2010 .
[71] S. Milioto,et al. Development and characterization of co-loaded curcumin/triazole-halloysite systems and evaluation of their potential anticancer activity. , 2014, International journal of pharmaceutics.
[72] A. Pace,et al. The effect of montmorillonite clay in alginate gel beads for polychlorinated biphenyl adsorption: Isothermal and kinetic studies , 2014 .
[73] R. Fakhrullin,et al. Clay-based drug-delivery systems: what does the future hold? , 2017, Therapeutic delivery.
[74] F. Parisi,et al. A synergic nanoantioxidant based on covalently modified halloysite-trolox nanotubes with intra-lumen loaded quercetin. , 2016, Journal of materials chemistry. B.
[75] Ahmad Fauzi Ismail,et al. Fabrication of polydopamine functionalized halloysite nanotube/polyetherimide membranes for heavy metal removal , 2016 .
[76] Hong Wang,et al. Supramolecular gel composites reinforced by using halloysite nanotubes loading with in-situ formed Fe3O4 nanoparticles and used for dye adsorption , 2016 .
[77] D. Lee,et al. Phytotoxicity of Carbon Nanotubes Assessed by Brassica Juncea and Phaseolus Mungo , 2010 .
[78] G. Cavallaro,et al. Exploiting the Colloidal Stability and Solubilization Ability of Clay Nanotubes/Ionic Surfactant Hybrid Nanomaterials , 2012 .
[79] Y. Lvov,et al. Enzyme-activated intracellular drug delivery with tubule clay nanoformulation , 2015, Scientific Reports.
[80] Ling Yang,et al. Particle surface characteristics may play an important role in phytotoxicity of alumina nanoparticles. , 2005, Toxicology letters.
[81] Y. Lvov,et al. Clay nanotube encapsulation for functional biocomposites. , 2014, Advances in colloid and interface science.
[82] Jin-dun Liu,et al. Chitosan–halloysite hybrid-nanotubes: Horseradish peroxidase immobilization and applications in phenol removal , 2013 .
[83] Y. Lvov,et al. Halloysite Clay Nanotubes for Enzyme Immobilization. , 2016, Biomacromolecules.
[84] Á. Jos,et al. Toxicological evaluation of clay minerals and derived nanocomposites: a review. , 2015, Environmental research.
[85] A. Takahara,et al. Selective modification of halloysite lumen with octadecylphosphonic acid: new inorganic tubular micelle. , 2012, Journal of the American Chemical Society.
[86] Nalinkanth G. Veerabadran,et al. CLAY NANOTUBES FOR ENCAPSULATION AND SUSTAINED RELEASE OF DRUGS , 2007 .
[87] Liqun Zhang,et al. Highly aging-resistant elastomers doped with antioxidant-loaded clay nanotubes. , 2015, ACS applied materials & interfaces.
[88] Xiaofei Ma,et al. Synthesis, adsorption and photocatalytic property of halloysite-TiO2-Fe3O4 composites , 2016 .
[89] K. Kümmerer. Pharmaceuticals in the Environment , 2001 .
[90] B. Gaber,et al. Thin film nanofabrication via layer-by-layer adsorption of tubule halloysite, spherical silica, proteins and polycations , 2002 .
[91] Bing Zhang,et al. Continuous fixed bed adsorption of Cu(II) by halloysite nanotube-alginate hybrid beads: an experimental and modelling study. , 2014, Water science and technology : a journal of the International Association on Water Pollution Research.
[92] M. Tagliabue,et al. Zeolites and related mesoporous materials for multi-talented environmental solutions , 2013 .
[93] G. Lazzara,et al. Thermodynamics of Proton Binding of Halloysite Nanotubes , 2016 .
[94] J. Matusik,et al. The effect of acid activation and calcination of halloysite on the efficiency and selectivity of Pb(II), Cd(II), Zn(II) and As(V) uptake , 2016, Clay Minerals.
[95] Xiaoyan Liu,et al. Fabrication of highly hydrophobic organic-inorganic hybrid magnetic polysulfone microcapsules: A lab-scale feasibility study for removal of oil and organic dyes from environmental aqueous samples. , 2016, Journal of hazardous materials.
[96] Yuri Lvov,et al. Halloysite clay nanotubes as a ceramic "skeleton" for functional biopolymer composites with sustained drug release. , 2013, Journal of materials chemistry. B.
[97] Liqun Zhang,et al. Halloysite Clay Nanotubes for Loading and Sustained Release of Functional Compounds , 2016, Advanced materials.
[98] Pengwei Huo,et al. Synthesis of thermal-responsive photocatalysts by surface molecular imprinting for selective degradation of tetracycline , 2013 .
[99] Katsuhiko Ariga,et al. Activated interiors of clay nanotubes for agglomeration-tolerant automotive exhaust remediation , 2015 .
[100] Talgar Shaymurat,et al. Phytotoxic and genotoxic effects of ZnO nanoparticles on garlic (Allium sativum L.): A morphological study , 2012, Nanotoxicology.
[101] Deyi Wu,et al. Chitosan modified zeolite as a versatile adsorbent for the removal of different pollutants from water , 2013 .
[102] Jin-dun Liu,et al. Study on the adsorption of Neutral Red from aqueous solution onto halloysite nanotubes. , 2010, Water research.
[103] Yuri Lvov,et al. Halloysite nanotubule clay for efficient water purification. , 2013, Journal of colloid and interface science.
[104] V. Vergaro,et al. Cytocompatibility and uptake of halloysite clay nanotubes. , 2010, Biomacromolecules.
[105] V. Zharov,et al. Complex genetic, photothermal, and photoacoustic analysis of nanoparticle-plant interactions , 2010, Proceedings of the National Academy of Sciences.
[106] E. Tekay,et al. Biosorbent immobilized nanotube reinforced hydrogel carriers for heavy metal removal processes , 2015 .
[107] Ruichao Liu,et al. Adsorption of methyl violet from aqueous solution by halloysite nanotubes , 2011 .
[108] Yuri Lvov,et al. Halloysite tubes as nanocontainers for anticorrosion coating with benzotriazole. , 2009, ACS applied materials & interfaces.
[109] Chengyu Ma,et al. Silane-modified halloysite/Fe3O4 nanocomposites: Simultaneous removal of Cr(VI) and Sb(V) and positive effects of Cr(VI) on Sb(V) adsorption , 2017 .
[110] Yongsheng Yan,et al. Hollow imprinted polymer nanorods with a tunable shell using halloysite nanotubes as a sacrificial template for selective recognition and separation of chloramphenicol , 2016 .
[111] Abdul Shukor Juraimi,et al. Effects of Engineered Nanomaterials on Plants Growth: An Overview , 2014, TheScientificWorldJournal.
[112] S. Milioto,et al. Dual drug-loaded halloysite hybrid-based glycocluster for sustained release of hydrophobic molecules , 2016 .
[113] Cuiping Li,et al. Enhanced visible light photocatalytic activity of polyaniline–crystalline TiO2–halloysite composite nanotubes by tuning the acid dopant in the preparation , 2015 .