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Boyer TH, Briese E, Crane L, Bhadha J, Call DF, McLamore ES, Rittmann B, Tuberty S, Westerhoff P, Duckworth OW. Guidance on aqueous matrices for evaluating novel precipitants and adsorbents for phosphorus removal and recovery. CHEMOSPHERE 2024; 367:143648. [PMID: 39476984 PMCID: PMC12036625 DOI: 10.1016/j.chemosphere.2024.143648] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/25/2024] [Revised: 10/05/2024] [Accepted: 10/28/2024] [Indexed: 11/08/2024]
Abstract
Phosphorus (P) removal from water and recovery into useable forms is a critical component of creating a sustainable P cycle, although mature technologies for P removal and recovery are still lacking. The goal of this paper was to advance the testing of novel materials for P removal and recovery from water by providing guidance on the development of more realistic aqueous matrices used during materials development. Literature reports of "new" materials to remove P from water are often difficult to compare in terms of performance because authors use a myriad of water chemistries containing P concentrations, pH, and competing ions. Moreover, many tests are conducted in simplified matrices that do not reflect conditions in real systems. To address this critical gap, the research herein developed a systematic approach of identifying aqueous matrices relevant to P recovery, including key components in the aqueous matrices having the greatest influence on the mechanisms of P removal with emphasis on phosphate precipitation and phosphate adsorption, and providing guidelines on relevant "recipes" for aqueous solutions for testing novel materials. Key components in the aqueous matrices included hydrogen ion (i.e., pH), multivalent metal cations, and dissolved organic matter due to their influence on phosphate precipitation and adsorption mechanisms. Recipes for buffer solution and synthetic groundwater, surface water, anaerobic digestate, and stored urine are discussed in the context of P removal and recovery processes. Wherein the adoption of standard matrices in other fields have permitted direct comparison of processes or materials, it is anticipated that adoption of relevant aqueous matrix recipes for P removal and recovery will improve the ability to directly compare novel materials and processes.
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Affiliation(s)
- Treavor H Boyer
- School of Sustainable Engineering and the Built Environment (SSEBE), Arizona State University, PO Box 873005, Tempe, AZ, 85287-3005, USA; NSF Science and Technologies for Phosphorus Sustainability (STEPS) Center, USA.
| | - Emily Briese
- School of Sustainable Engineering and the Built Environment (SSEBE), Arizona State University, PO Box 873005, Tempe, AZ, 85287-3005, USA; NSF Science and Technologies for Phosphorus Sustainability (STEPS) Center, USA
| | - Lucas Crane
- School of Sustainable Engineering and the Built Environment (SSEBE), Arizona State University, PO Box 873005, Tempe, AZ, 85287-3005, USA; NSF Science and Technologies for Phosphorus Sustainability (STEPS) Center, USA
| | - Jehangir Bhadha
- Department of Soil, Water, and Ecosystem Sciences, UF/IFAS Everglades Research and Education Center, University of Florida, 3200 E Canal St, Belle Glade, FL, 33430, USA; NSF Science and Technologies for Phosphorus Sustainability (STEPS) Center, USA
| | - Douglas F Call
- Department of Civil, Construction, and Environmental Engineering, North Carolina State University, 915 Partners Way, Raleigh, NC, 27695-7908, USA; NSF Science and Technologies for Phosphorus Sustainability (STEPS) Center, USA
| | - Eric S McLamore
- Department of Agricultural Sciences, Clemson University, 232 McAdams Hall, Clemson, SC, 29634, USA; Department of Environmental Engineering and Earth Sciences, Clemson University, Calhoun Dr, Clemson, SC, 29634, USA; NSF Science and Technologies for Phosphorus Sustainability (STEPS) Center, USA
| | - Bruce Rittmann
- Biodesign Swette Center for Environmental Biotechnology, Arizona State University, Tempe, AZ, 85287-5701, USA; NSF Science and Technologies for Phosphorus Sustainability (STEPS) Center, USA
| | - Shea Tuberty
- Department of Biology, Appalachian State University, ASU Box 32027, 572 Rivers St, Boone, NC, 28608, USA; NSF Science and Technologies for Phosphorus Sustainability (STEPS) Center, USA
| | - Paul Westerhoff
- School of Sustainable Engineering and the Built Environment (SSEBE), Arizona State University, PO Box 873005, Tempe, AZ, 85287-3005, USA; NSF Science and Technologies for Phosphorus Sustainability (STEPS) Center, USA
| | - Owen W Duckworth
- Department of Crop and Soil Sciences, North Carolina State University, 101 Derieux St, Campus Box 7619, Raleigh, NC, 26795, USA; NSF Science and Technologies for Phosphorus Sustainability (STEPS) Center, USA
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Hamed A, Ashraf S, Mostafa MS, Khalaf M, Yousef H, Mourad I. Development of nanofibrous scaffolds containing polylactic acid modified with turmeric and hydroxyapatite/vivianite nanoparticles for wound dressing applications. Int J Biol Macromol 2024; 259:128624. [PMID: 38061519 DOI: 10.1016/j.ijbiomac.2023.128624] [Citation(s) in RCA: 6] [Impact Index Per Article: 6.0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/14/2023] [Revised: 11/25/2023] [Accepted: 12/02/2023] [Indexed: 01/14/2024]
Abstract
Damaging the outer layer of the body (the skin) has been a common issue for decades. Fabrication of nanofibrous membranes via the electrospinning technique for the sake of making the wound healing process more facile has caught a lot of interest. For this purpose, a polymeric scaffold of polylactic acid (PLA) was doped with nanoparticles with different concentrations of turmeric/hydroxyapatite/vivianite/graphene oxide. The obtained membrane was tested by XRD, SEM, FTIR, and XPS. The surface topography of the scaffold has experienced changes upon adding different concentrations of the nanoparticles. The contact angle was measured by water droplets. It accentuated change in CA starting from 43.9o for pure condition of PLA to 67.7o for PLA/turmeric/vivianite. The thermogravimetric analysis (TGA) test stated that the PLA scaffold features are thermally stable in relatively high-temperature conditions initiating from room temperature to about 300 °C, meeting the maximum loss in mass of about 5 %. The cell viability was carried out in prepared vitro for the sample which contains PLA/turmeric/vivianite/GO, it was elucidated that the IC50 was around 3060 μg/ml.
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Affiliation(s)
- Amr Hamed
- Department of Physics, Faculty of Science, Suez University, Suez 43518, Egypt
| | - Sherif Ashraf
- Department of Physics, Faculty of Science, Suez University, Suez 43518, Egypt.
| | - Mervat S Mostafa
- Faculty of Nanotechnology for Postgraduate Studies, Cairo University, El-Sheikh Zayed 12588, Egypt; Science and Technology Center of Excellence (STCE), Ministry of Military Production, Cairo, Egypt
| | - Mohamed Khalaf
- Science and Technology Center of Excellence (STCE), Ministry of Military Production, Cairo, Egypt
| | - Hesham Yousef
- Department of Physics, Faculty of Science, Suez University, Suez 43518, Egypt
| | - Ibrahim Mourad
- Department of Physics, Faculty of Science, Suez University, Suez 43518, Egypt
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Yang X, Zhang C, Zhang X, Deng S, Cheng X, Waite TD. Phosphate Recovery from Aqueous Solutions via Vivianite Crystallization: Interference of Fe II Oxidation at Different DO Concentrations and pHs. ENVIRONMENTAL SCIENCE & TECHNOLOGY 2023; 57:2105-2117. [PMID: 36688915 DOI: 10.1021/acs.est.2c06668] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/17/2023]
Abstract
Vivianite (Fe3(PO4)2·8H2O) crystallization has attracted increasing attention as a promising approach for removing and recovering P from wastewaters. However, FeII is susceptible to oxygen with its oxidation inevitably influencing the crystallization of vivianite. In this study, the profile of vivianite crystallization in the presence of dissolved oxygen (DO) was investigated at pHs 5-7 in a continuous stirred-tank reactor. It is found that the influence of DO on vivianite crystallization was highly pH-related. At pH 5, the low rate of FeII oxidation at all of the investigated DO of 0-5 mg/L and the low degree of vivianite supersaturation resulted in slow crystallization with the product being highly crystalline vivianite, but the P removal efficiency was only 30-40%. The removal of P from the solution was substantially more effective (to >90%) in the DO-removed reactors at pH 6 and 7, whereas the efficiencies of P removal and especially recovery decreased by 10-20% when FeII oxidation became more severe at DO concentrations >2.5 mg/L (except at pH 6 with 2.5 mg/L DO). The elevated degree of vivianite supersaturation and enhanced rate and extent of FeII oxidation at the higher pHs led to decreases in the size and homogeneity of the products. At the same pH, amorphous ferric oxyhydroxide (AFO)─the product of FeII oxidation and FeIII hydrolysis─interferes with vivianite crystallization with the induction of aggregation of crystal fines by AFO, leading to increases in the size of the obtained solids.
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Affiliation(s)
- Xiaofan Yang
- Beijing Key Laboratory for Source Control Technology of Water Pollution, Beijing Forestry University, Beijing100083, China
| | - Changyong Zhang
- Water Research Center, School of Civil and Environmental Engineering, University of New South Wales, Sydney, NSW2052, Australia
| | - Xinran Zhang
- Beijing Key Laboratory for Source Control Technology of Water Pollution, Beijing Forestry University, Beijing100083, China
| | - Shaoyu Deng
- Beijing Key Laboratory for Source Control Technology of Water Pollution, Beijing Forestry University, Beijing100083, China
| | - Xiang Cheng
- Beijing Key Laboratory for Source Control Technology of Water Pollution, Beijing Forestry University, Beijing100083, China
| | - T David Waite
- Water Research Center, School of Civil and Environmental Engineering, University of New South Wales, Sydney, NSW2052, Australia
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Konadu-Amoah B, Hu R, Ndé-Tchoupé AI, Gwenzi W, Noubactep C. Metallic iron (Fe 0)-based materials for aqueous phosphate removal: A critical review. JOURNAL OF ENVIRONMENTAL MANAGEMENT 2022; 315:115157. [PMID: 35526394 DOI: 10.1016/j.jenvman.2022.115157] [Citation(s) in RCA: 5] [Impact Index Per Article: 1.7] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 01/24/2022] [Revised: 04/06/2022] [Accepted: 04/22/2022] [Indexed: 06/14/2023]
Abstract
The discharge of excessive phosphate from wastewater sources into the aquatic environment has been identified as a major environmental threat responsible for eutrophication. It has become essential to develop efficient but affordable techniques to remove excess phosphate from wastewater before discharging into freshwater bodies. The use of metallic iron (Fe0) as a reactive agent for aqueous phosphate removal has received a wide attention. Fe0 in-situ generates positively charged iron corrosion products (FeCPs) at pH > 4.5, with high binding affinity for anionic phosphate. This study critically reviews the literature that focuses on the utilization of Fe0-based materials for aqueous phosphate removal. The fundamental science of aqueous iron corrosion and historical background of the application of Fe0 for phosphate removal are elucidated. The main mechanisms for phosphate removal are identified and extensively discussed based on the chemistry of the Fe0/H2O system. This critical evaluation confirms that the removal process is highly influenced by several operational factors including contact time, Fe0 type, influent geochemistry, initial phosphate concentration, mixing conditions, and pH value. The difficulty in comparing independent results owing to diverse experimental conditions is highlighted. Moreover, contemporary research in progress including Fe0/oxidant systems, nano-Fe0 application, Fe0 material selection, desorption studies, and proper design of Fe0-based systems for improved phosphate removal have been discussed. Finally, potential strategies to close the loop in Fe0-based phosphate remediation systems are discussed. This review presents a science-based guide to optimize the efficient design of Fe0-based systems for phosphate removal.
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Affiliation(s)
- Bernard Konadu-Amoah
- School of Earth Science and Engineering, Hohai University, Fo Cheng Xi Road 8, Nanjing, 211100, China.
| | - Rui Hu
- School of Earth Science and Engineering, Hohai University, Fo Cheng Xi Road 8, Nanjing, 211100, China.
| | - Arnaud Igor Ndé-Tchoupé
- School of Earth Science and Engineering, Hohai University, Fo Cheng Xi Road 8, Nanjing, 211100, China.
| | - Willis Gwenzi
- Biosystems and Environmental Engineering Research Group, Department of Agricultural and Biosystems Engineering, University of Zimbabwe, P.O. Box MP167, Mount Pleasant, Harare, Zimbabwe.
| | - Chicgoua Noubactep
- School of Earth Science and Engineering, Hohai University, Fo Cheng Xi Road 8, Nanjing, 211100, China; Centre for Modern Indian Studies (CeMIS), University of Göttingen, Waldweg 26, 37073, Göttingen, Germany; Department of Water and Environmental Science and Engineering, Nelson Mandela African Institution of Science and Technology, Arusha P.O. Box 447, Tanzania; Faculty of Science and Technology, Campus of Banekane, Université des Montagnes, P.O. Box 208, Bangangté, Cameroon.
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