Nanoscale Zero-Valent Iron Confined in Anion Exchange Resins to Enhance Selective Adsorption of Phosphate from Wastewater
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[1] B. Pan,et al. Selective removal of organic phosphonates via coupling hyper-cross-linked resin with nanoconfined hydrated oxides , 2022, Chemical Engineering Journal.
[2] Yifan Sun,et al. Improved utilization of active sites for phosphorus adsorption in FeOOH/anion exchanger nanocomposites via a glycol-solvothermal synthesis strategy. , 2022, Journal of environmental sciences.
[3] J. Ilavsky,et al. Engineering Calcium-bearing Mineral/Hydrogel Composites for Effective Phosphate Recovery. , 2021, ACS ES&T engineering.
[4] A. Khalil,et al. Efficient treatment of ammonia-nitrogen contaminated waters by nano zero-valent iron/zeolite composite. , 2021, Chemosphere.
[5] Y. Sugihara,et al. Encapsulation of iron nanoparticles with magnesium hydroxide shell for remarkable removal of ciprofloxacin from contaminated water. , 2021, Journal of colloid and interface science.
[6] Y. Sugihara,et al. Insights into kinetics, isotherms and thermodynamics of phosphorus sorption onto nanoscale zero-valent iron , 2021 .
[7] G. Wells,et al. Systematic Evaluation of Emerging Wastewater Nutrient Removal and Recovery Technologies to Inform Practice and Advance Resource Efficiency , 2021 .
[8] M. Elimelech,et al. Environmental Applications of Engineered Materials with Nanoconfinement , 2021 .
[9] D. Robertson,et al. Partitioning and transformation of organic and inorganic phosphorus among dissolved, colloidal and particulate phases in a hypereutrophic freshwater estuary. , 2021, Water research.
[10] B. Barbeau,et al. Impact of natural organic matter characteristics and inorganic anions on the performance of ion exchange resins in natural waters , 2020, Water Supply.
[11] D. Lin,et al. A new strategy using nanoscale zero-valent iron to simultaneously promote remediation and safe crop production in contaminated soil , 2020, Nature Nanotechnology.
[12] L. Lv,et al. New insights into the fractionation of effluent organic matter on diagnosis of key element affecting advanced phosphate removal by nanocomposite material. , 2020, Water research.
[13] A. SenGupta,et al. Hybrid nitrate selective resin (NSR-NanoZr) for simultaneous selective removal of nitrate and phosphate (or fluoride) from impaired water sources , 2020 .
[14] Nengwu Zhu,et al. Mechanism Insight into Efficient Peroxydisulfate activation by Novel Nano Zero-valent Iron Anchored yCo3O4 (nZVI/yCo3O4) Composites. , 2020, Journal of hazardous materials.
[15] Q. Huang,et al. Effects of Al substitution on local structure and morphology of lepidocrocite and its phosphate adsorption kinetics , 2020 .
[16] Chen Zhao,et al. Feasibility and mechanism of enhanced 17β-estradiol degradation by the nano Zero Valent Iron-citrate system. , 2020, Journal of hazardous materials.
[17] I. Lo,et al. Surface Functional Group Engineering of CeO2 Particles for Enhanced Phosphate Adsorption. , 2020, Environmental science & technology.
[18] Hainan Ai,et al. Chemical removal and selectivity reduction of nitrate from water by (nano) zero-valent iron/activated carbon micro-electrolysis. , 2020, Chemosphere.
[19] B. Pan,et al. Selective Phosphate Removal from Water and Wastewater using Sorption: Process Fundamentals and Removal Mechanisms. , 2019, Environmental science & technology.
[20] Zedong Teng,et al. Enhanced passivation of lead with immobilized phosphate solubilizing bacteria beads loaded with biochar/ nanoscale zero valent iron composite. , 2019, Journal of hazardous materials.
[21] Y. Kawase,et al. Mechanisms of phosphate removal from aqueous solution by zero-valent iron: A novel kinetic model for electrostatic adsorption, surface complexation and precipitation of phosphate under oxic conditions , 2019, Separation and Purification Technology.
[22] B. Pan,et al. Unexpected Favorable Role of Ca2+ in Phosphate Removal by Using Nanosized Ferric Oxides Confined in Porous Polystyrene Beads. , 2018, Environmental science & technology.
[23] Xiaoli Chai,et al. Enhanced phosphate removal using nanostructured hydrated ferric-zirconium binary oxide confined in a polymeric anion exchanger , 2018, Chemical Engineering Journal.
[24] M. Baudu,et al. Phosphate removal from aqueous solutions using zero valent iron (ZVI): Influence of solution composition and ZVI aging , 2017 .
[25] M. Lürling,et al. Bioavailable phosphorus (P) reduction is less than mobile P immobilization in lake sediment for eutrophication control by inactivating agents. , 2017, Water research.
[26] Falong Jia,et al. Iron oxide shell mediated environmental remediation properties of nano zero-valent iron , 2017 .
[27] Aimin Li,et al. Effect of humic acid on ciprofloxacin removal by magnetic multifunctional resins , 2016, Scientific Reports.
[28] E. Mackay,et al. Editorial - A critical perspective on geo-engineering for eutrophication management in lakes. , 2016, Water research.
[29] B. Pan,et al. Enhanced Phosphate Removal by Nanosized Hydrated La(III) Oxide Confined in Cross-linked Polystyrene Networks. , 2016, Environmental science & technology.
[30] Norman L. Dietrich,et al. Novel regeneration method for phosphate loaded granular ferric (hydr)oxide--a contribution to phosphorus recycling. , 2015, Water research.
[31] Hyun-Chul Kim. High-rate MIEX filtration for simultaneous removal of phosphorus and membrane foulants from secondary effluent. , 2015, Water research.
[32] Yalei Zhang,et al. Removal of phosphate from aqueous solution using nanoscale zerovalent iron (nZVI) , 2014 .
[33] B. Pan,et al. New strategy to enhance phosphate removal from water by hydrous manganese oxide. , 2014, Environmental science & technology.
[34] Aaron Marc Saunders,et al. Metabolic versatility in full-scale wastewater treatment plants performing enhanced biological phosphorus removal. , 2013, Water research.
[35] C. Ruby,et al. Investigation of phosphate adsorption onto ferrihydrite by X-ray photoelectron spectroscopy. , 2013, Journal of colloid and interface science.
[36] B. Gao,et al. Preparation of wheat straw based superabsorbent resins and their applications as adsorbents for ammonium and phosphate removal. , 2013, Bioresource technology.
[37] D. Sparks,et al. Effect of ferrihydrite crystallite size on phosphate adsorption reactivity. , 2013, Environmental science & technology.
[38] G. Qian,et al. Removal efficiency of arsenate and phosphate from aqueous solution using layered double hydroxide materials: intercalation vs. precipitation , 2010 .
[39] L. Lv,et al. Development of polymer-based nanosized hydrated ferric oxides (HFOs) for enhanced phosphate removal from waste effluents. , 2009, Water research.
[40] H. Paerl,et al. Controlling Eutrophication: Nitrogen and Phosphorus , 2009, Science.
[41] Lee Blaney,et al. Hybrid anion exchanger for trace phosphate removal from water and wastewater. , 2007, Water research.
[42] D. Sparks,et al. ATR-FTIR Spectroscopic Investigation on Phosphate Adsorption Mechanisms at the Ferrihydrite-Water Interface , 2001 .
[43] L. Lv,et al. Effects of organic acids of different molecular size on phosphate removal by HZO-201 nanocomposite. , 2017, Chemosphere.