Difference between revisions of "Main Page"
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| id="mp-left" class="MainPageBG" style="width:55%; padding:0; vertical-align:top; color:#000;" | | | id="mp-left" class="MainPageBG" style="width:55%; padding:0; vertical-align:top; color:#000;" | | ||
| − | <h2 id="mp-tfa-h2" style="margin:0.5em; background:#cef2e0; font-family:inherit; font-size:120%; font-weight:bold; border:1px solid #a3bfb1; color:#000; padding:0.2em 0.4em;"> Featured article: | + | <h2 id="mp-tfa-h2" style="margin:0.5em; background:#cef2e0; font-family:inherit; font-size:120%; font-weight:bold; border:1px solid #a3bfb1; color:#000; padding:0.2em 0.4em;"> Featured article: PFAS Destruction by Ultraviolet/Sulfite Treatment</h2> |
| − | <div id="mp-tfa" style="padding:0.0em 1.0em;">[[File: | + | <div id="mp-tfa" style="padding:0.0em 1.0em;">[[File:XiongFig1.png|400px|left|link=PFAS Destruction by Ultraviolet/Sulfite Treatment]]<dailyfeaturedpage></dailyfeaturedpage> |
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| + | [[PFAS Destruction by Ultraviolet/Sulfite Treatment|(Full article...)]] </div> | ||
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*[[Compound Specific Isotope Analysis (CSIA)|Compound Specific Isotope Analysis (CSIA)]] | *[[Compound Specific Isotope Analysis (CSIA)|Compound Specific Isotope Analysis (CSIA)]] | ||
*[[Direct Push (DP) Technology]] | *[[Direct Push (DP) Technology]] | ||
| − | **[[Direct Push Logging | Direct Push Logging]] | + | **[[Direct Push Logging |Direct Push Logging]] |
| − | **[[Direct Push Sampling | Direct Push Sampling]] | + | **[[Direct Push Sampling |Direct Push Sampling]] |
*[[Geophysical Methods | Geophysical Methods]] | *[[Geophysical Methods | Geophysical Methods]] | ||
| − | **[[Geophysical Methods - Case Studies | Case Studies]] | + | **[[Geophysical Methods - Case Studies |Case Studies]] |
| + | **[[Hydrogeophysical Methods for Characterization and Monitoring of Groundwater-Surface Water Exchanges]] | ||
*[[Groundwater Sampling - No-Purge/Passive]] | *[[Groundwater Sampling - No-Purge/Passive]] | ||
*[[Long-Term Monitoring (LTM)|Long-Term Monitoring (LTM)]] | *[[Long-Term Monitoring (LTM)|Long-Term Monitoring (LTM)]] | ||
| − | **[[Long-Term Monitoring (LTM) - Data Analysis | LTM Data Analysis]] | + | **[[Long-Term Monitoring (LTM) - Data Analysis |LTM Data Analysis]] |
| − | **[[Long-Term Monitoring (LTM) - Data Variability | LTM Data Variability]] | + | **[[Long-Term Monitoring (LTM) - Data Variability |LTM Data Variability]] |
| − | *[[Molecular Biological Tools - MBTs | Molecular Biological Tools (MBTs)]] | + | *[[Molecular Biological Tools - MBTs |Molecular Biological Tools (MBTs)]] |
**[[Metagenomics]] | **[[Metagenomics]] | ||
**[[Proteomics and Proteogenomics]] | **[[Proteomics and Proteogenomics]] | ||
**[[Quantitative Polymerase Chain Reaction (qPCR)]] | **[[Quantitative Polymerase Chain Reaction (qPCR)]] | ||
**[[Stable Isotope Probing (SIP)]] | **[[Stable Isotope Probing (SIP)]] | ||
| − | *[[Natural Attenuation in Source Zone and Groundwater Plume - Bemidji Crude Oil Spill | Natural Attenuation in Source Zone and Groundwater Plume -<br /> Bemidji Crude Oil Spill]] | + | *[[Natural Attenuation in Source Zone and Groundwater Plume - Bemidji Crude Oil Spill |Natural Attenuation in Source Zone and Groundwater Plume -<br />Bemidji Crude Oil Spill]] |
*[[OPTically-based In-situ Characterization System (OPTICS)]] | *[[OPTically-based In-situ Characterization System (OPTICS)]] | ||
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*[[Mercury in Sediments]] | *[[Mercury in Sediments]] | ||
*[[Passive Sampling of Sediments]] | *[[Passive Sampling of Sediments]] | ||
| + | **[[Sediment Porewater Dialysis Passive Samplers for Inorganics (Peepers)]] | ||
*[[Sediment Capping]] | *[[Sediment Capping]] | ||
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<u>'''[[Light Non-Aqueous Phase Liquids (LNAPLs)]]'''</u> | <u>'''[[Light Non-Aqueous Phase Liquids (LNAPLs)]]'''</u> | ||
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<u>'''[[Munitions Constituents]]'''</u> | <u>'''[[Munitions Constituents]]'''</u> | ||
| − | *[[Munitions Constituents - Abiotic Reduction| Abiotic Reduction]] | + | *[[Munitions Constituents - Abiotic Reduction|Abiotic Reduction]] |
| − | *[[Munitions Constituents - Alkaline Degradation| Alkaline Degradation]] | + | *[[Munitions Constituents - Alkaline Degradation|Alkaline Degradation]] |
| − | *[[Munitions Constituents - Composting| Composting]] | + | **[[Pyrogenic Carbonaceous Matter Enhanced Alkaline Hydrolysis]] |
| − | *[[Munitions Constituents - Deposition | Deposition]] | + | *[[Munitions Constituents - Composting|Composting]] |
| − | *[[Munitions Constituents - Dissolution | Dissolution]] | + | *[[Munitions Constituents - Deposition |Deposition]] |
| + | *[[Munitions Constituents - Dissolution |Dissolution]] | ||
| + | *[[Munitions Constituents - Electrochemical Treatment|Electrochemical Treatment]] | ||
*[[Metal(loid)s - Small Arms Ranges]] | *[[Metal(loid)s - Small Arms Ranges]] | ||
| − | *[[Passive Sampling of Munitions Constituents| Passive Sampling]] | + | *[[Passive Sampling of Munitions Constituents|Passive Sampling]] |
| − | *[[Munitions Constituents – Photolysis | Photolysis]] | + | *[[Munitions Constituents – Photolysis |Photolysis]] |
| + | *[[Remediation of Stormwater Runoff Contaminated by Munition Constituents |Remediation of Stormwater Runoff ]] | ||
*[[Munitions Constituents – Sample Extraction and Analytical Techniques|Sample Extraction and Analytical Techniques]] | *[[Munitions Constituents – Sample Extraction and Analytical Techniques|Sample Extraction and Analytical Techniques]] | ||
| − | *[[Munitions Constituents - Soil Sampling | Soil Sampling]] | + | *[[Munitions Constituents - Soil Sampling |Soil Sampling]] |
| − | *[[Munitions Constituents - Sorption | Sorption]] | + | *[[Munitions Constituents - Sorption |Sorption]] |
| − | *[[Munitions Constituents - IM Toxicology | Toxicology]] | + | *[[Munitions Constituents - IM Toxicology |Toxicology]] |
*[[Munitions Constituents- TREECS™ Fate and Risk Modeling|TREECS™]] | *[[Munitions Constituents- TREECS™ Fate and Risk Modeling|TREECS™]] | ||
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<u>'''[[Perfluoroalkyl and Polyfluoroalkyl Substances (PFAS)]]'''</u> | <u>'''[[Perfluoroalkyl and Polyfluoroalkyl Substances (PFAS)]]'''</u> | ||
| + | *[[Hydrothermal Alkaline Treatment (HALT)]] | ||
| + | *[[Lysimeters for Measuring PFAS Concentrations in the Vadose Zone]] | ||
| + | *[[PFAS Destruction by Ultraviolet/Sulfite Treatment]] | ||
*[[PFAS Ex Situ Water Treatment]] | *[[PFAS Ex Situ Water Treatment]] | ||
**[[PFAS Treatment by Anion Exchange]] | **[[PFAS Treatment by Anion Exchange]] | ||
| + | *[[PFAS Monitored Retention (PMR) and PFAS Enhanced Retention (PER)]] | ||
*[[PFAS Soil Remediation Technologies]] | *[[PFAS Soil Remediation Technologies]] | ||
*[[PFAS Sources]] | *[[PFAS Sources]] | ||
| + | *[[PFAS Toxicology and Risk Assessment]] | ||
*[[PFAS Transport and Fate]] | *[[PFAS Transport and Fate]] | ||
*[[PFAS Treatment by Electrical Discharge Plasma]] | *[[PFAS Treatment by Electrical Discharge Plasma]] | ||
*[[Photoactivated Reductive Defluorination - PFAS Destruction | Photoactivated Reductive Defluorination]] | *[[Photoactivated Reductive Defluorination - PFAS Destruction | Photoactivated Reductive Defluorination]] | ||
| − | *[[Transition of Aqueous Film Forming Foam (AFFF) Fire Suppression Infrastructure Impacted by Per and Polyfluoroalkyl Substances (PFAS)]] | + | *[[Reverse Osmosis and Nanofiltration Membrane Filtration Systems for PFAS Removal]] |
| + | *[[Thermal Conduction Heating for Treatment of PFAS-Impacted Soil]] | ||
| + | *[[Transition of Aqueous Film Forming Foam (AFFF) Fire Suppression Infrastructure Impacted by Per and Polyfluoroalkyl Substances (PFAS)| Transition of Aqueous Film Forming Foam Fire Suppression Infrastructure Impacted by Per and Polyfluoroalkyl Substances]] | ||
| + | | style="width:33%; vertical-align:top; " | | ||
<u>'''[[Regulatory Issues and Site Management]]'''</u> | <u>'''[[Regulatory Issues and Site Management]]'''</u> | ||
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*[[Sustainable Remediation]] | *[[Sustainable Remediation]] | ||
| − | + | <u>'''[[Remediation Technologies]]'''</u> | |
*[[Amendment Distribution in Low Conductivity Materials]] | *[[Amendment Distribution in Low Conductivity Materials]] | ||
*[[Bioremediation - Anaerobic|Anaerobic Bioremediation]] | *[[Bioremediation - Anaerobic|Anaerobic Bioremediation]] | ||
Latest revision as of 17:48, 3 March 2026
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Featured article: PFAS Destruction by Ultraviolet/Sulfite TreatmentThe ultraviolet (UV)/sulfite based reductive defluorination process has emerged as an effective and practical option for generating hydrated electrons (eaq- ) which can destroy per- and polyfluoroalkyl substances (PFAS) in water. A UV/sulfite treatment system has been demonstrated in two field demonstrations in which it achieved near-complete defluorination and greater than 99% destruction of 40 PFAS analytes measured by EPA method 1633. Hydrated electrons can be produced by photoirradiation of solutes, including sulfite, iodide, dithionite, and ferrocyanide, and have been reported in literature to effectively decompose per- and polyfluoroalkyl substances (PFAS) in water. The hydrated electron is one of the most reactive reducing species, with a standard reduction potential of about −2.9 volts. Though short-lived, hydrated electrons react rapidly with many species having more positive reduction potentials. Under the Environmental Security Technology Certification Program (ESTCP) Project ER21-5152, a field demonstration was conducted at a Navy site on the east coast, and results showed that the technology was highly effective in destroying various PFAS in a liquid concentrate produced from an in situ foam fractionation groundwater treatment system. Another field demonstration was completed at an Air Force base in California, where a treatment train was used to treat PFAS in groundwater. PFAS analytical data and fluoride results demonstrated near-complete destruction of various PFAS. In addition, this demonstration showed: a) high PFAS destruction ratio was achieved in the foam fractionate, even in very high concentration (up to 1,700 mg/L of booster), and b) the effluent was sent back to the influent of the system for further concentration and treatment, resulting in a closed-loop treatment system and no waste discharge.
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