Item talk:Q54338
From geokb
{
"USGS Staff Profile": { "@context": "https://schema.org", "@type": "Person", "dateModified": "2024-09-21T07:59:35.967812", "name": "David P Krabbenhoft", "identifier": [ { "@type": "PropertyValue", "propertyID": "ORCID", "value": "0000-0003-1964-5020" } ], "jobTitle": "Scientist Emeritus", "hasOccupation": [ { "@type": "OrganizationalRole", "startDate": "2024-09-21T07:59:35.986268", "affiliatedOrganization": { "@type": "Organization", "name": "Mercury Research Laboratory", "url": "https://www.usgs.gov/labs/mercury-research-laboratory" }, "roleName": "Scientist Emeritus" }, { "@type": "OrganizationalRole", "startDate": "2024-09-21T07:59:35.986285", "affiliatedOrganization": { "@type": "Organization", "name": "Mercury Research Laboratory", "url": "https://www.usgs.gov/labs/mercury-research-laboratory" } }, { "@type": "Occupation", "additionalType": "self-claimed professional experience", "name": "Research Hydrologist/Geochemist, U.S. Geological Survey, Wisconsin Water Science Center, 8505 Research Way, Middleton, Wisconsin, July 1988 to present." }, { "@type": "Occupation", "additionalType": "self-claimed professional experience", "name": "Adjunct, University of Wisconsin-Madison, 2001 to present." }, { "@type": "Occupation", "additionalType": "self-claimed professional experience", "name": "USGS Mercury Research Lab, Team Leader, 1994 to present." } ], "description": [ { "@type": "TextObject", "additionalType": "short description", "abstract": "Scientist Emeritus with the Mercury Research Laboratory" }, { "@type": "TextObject", "additionalType": "staff profile page introductory statement", "abstract": "David Krabbenhoft is a Scientist Emeritus with the Upper Midwest Water Science Center." }, { "@type": "TextObject", "additionalType": "personal statement", "abstract": "David Krabbenhoft received his Ph.D. from the University of Wisconsin-Madison in 1988 and has been a research scientist with the U.S. Geological Survey since. He has general research interests are in biogeochemistry and hydrogeology of aquatic ecosystems. Dave began working on environmental mercury cycling, transformations, and fluxes in aquatic ecosystems with the Mercury in Temperate Lakes project in 1988; since then, the topic has consumed his professional life. In 1994, Dave established the USGS\u2019s Mercury Research Laboratory, which includes a team of multi-disciplinary mercury investigators and a state-of-the-art analytical facility strictly dedicated to low-level speciation analysis of mercury. In 1995 he initiated the multi-agency Aquatic Cycling of Mercury in the Everglades (ACME) project, which is still ongoing. More recently, Dave has been a Primary Investigator on the internationally conducted Mercury Experiment To Assess Atmospheric Loadings in Canada and the US (METAALICUS) project, which is a novel effort to examine the ecosystem-level response to loading an entire watershed with mercury. Currently, Dave\u2019s research team is active on projects that span environments as far ranging as the Pacific Ocean to freshwater systems in Alaska to Florida, and from California to New England. In recent years, the Mercury Research Team entered into the realm of atmospheric research by constructing and deployed the USGS Mobile Atmospheric Mercury Lab, which has the capability for rapid deployment and advanced study of mercury in the atmosphere. Since 1990, he has authored or coauthored over 100 papers on mercury in the environment. In August 2006, Dave served as the Co-Chair for the 8th International Conference on Mercury as a Global Pollutant." } ], "email": "dpkrabbe@usgs.gov", "url": "https://www.usgs.gov/staff-profiles/david-p-krabbenhoft", "affiliation": [], "hasCredential": [ { "@type": "EducationalOccupationalCredential", "name": "Ph.D. 1988, University of Wisconsin-Madsion, Department of Geology and Geophysics; research emphasis isotope geochemistry, limnology, and hydrogeology" }, { "@type": "EducationalOccupationalCredential", "name": "M.S. 1984, University of Wisconsin-Madsion, Department of Geology and Geophysics; research emphasis geochemistry and hydrogeology" }, { "@type": "EducationalOccupationalCredential", "name": "B.S. 1982, North Dakota St. University, Major: Geology, Minor: Chemistry" } ], "knowsAbout": [ { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "acid deposition" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "atmospheric deposition (chemical & particulate)" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "climate change" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "effects of climate change" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "greenhouse effect" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "aquatic ecosystems" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "ecological processes" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "environmental assessment" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "freshwater ecosystems" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "contamination and pollution" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "groundwater quality" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "health and disease" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "human impacts" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "nonpoint-source pollution" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "surface water quality" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "toxic trace element contamination" }, { "@type": "Thing", "additionalType": "self-claimed expertise", "name": "water quality" } ], "memberOf": { "@type": "OrganizationalRole", "name": "staff member", "member": { "@type": "Organization", "name": "U.S. Geological Survey" }, "startDate": "2024-09-21T07:59:35.967823" }, "award": [ "Shoemaker Lifetime Achievement Award for Excellence in Science Communications (October 2013)", "USGS performance awards (received on 24 occasions from 1988-2013)", "Department of the Interior, U.S. Geological Survey, In Recognition for Meritorious Service (2003)", "Department of the Interior, U.S. Geological Survey, In Recognition for Superior Service (1997)", "Exxon Research Scholarship, University of Wisconsin-Madison (1982)", "Summa Cum Laude, North Dakota State University (19" ] }, "ORCID": { "@context": "http://schema.org", "@id": "https://orcid.org/0000-0003-1964-5020", "@reverse": { "creator": [ { "@id": "https://doi.org/10.1016/j.scitotenv.2023.169396", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1016/j.scitotenv.2023.169396" }, "name": "Habitat and dissolved organic carbon modulate variation in the biogeochemical drivers of mercury bioaccumulation in dragonfly larvae at the national scale" }, { "@id": "https://doi.org/10.1021/acsearthspacechem.3c00154", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acsearthspacechem.3c00154" }, "name": "Competition between Dissolved Organic Matter and Freshwater Plankton Control Methylmercury Isotope Fractionation during Uptake and Photochemical Demethylation" }, { "@id": "https://doi.org/10.1021/acs.est.3c04646", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.3c04646" }, "name": "Reservoir Stratification Modulates the Influence of Impoundments on Fish Mercury Concentrations along an Arid Land River System" }, { "@id": "https://doi.org/10.1021/acs.est.3c04907", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.3c04907" }, "name": "Linking Mesoscale Spatial Variation in Methylmercury Production to Bioaccumulation in Tidal Marsh Food Webs" }, { "@id": "https://doi.org/10.1029/2022jd038276", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1029/2022jd038276" }, "name": "National\u2010Scale Assessment of Total Gaseous Mercury Isotopes Across the United States" }, { "@id": "https://doi.org/10.1021/acs.est.2c03958", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.2c03958" }, "name": "In-Reservoir Physical Processes Modulate Aqueous and Biological Methylmercury Export from a Seasonally Anoxic Reservoir" }, { "@id": "https://doi.org/10.1021/acsestwater.1c00285", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acsestwater.1c00285" }, "name": "Methylmercury Stable Isotopes: New Insights on Assessing Aquatic Food Web Bioaccumulation in Legacy Impacted Regions" }, { "@id": "https://doi.org/10.1021/acs.estlett.2c00096", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.estlett.2c00096" }, "name": "Using Carbon, Nitrogen, and Mercury Isotope Values to Distinguish Mercury Sources to Alaskan Lake Trout" }, { "@id": "https://doi.org/10.3133/ofr20221051", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/ofr20221051" }, "name": "Assessment of mercury in sediments and waters of Grubers Grove Bay, Wisconsin" }, { "@id": "https://doi.org/10.1021/acs.est.1c04388", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.1c04388" }, "name": "Mercury Isotope Fractionation by Internal Demethylation and Biomineralization Reactions in Seabirds: Implications for Environmental Mercury Science" }, { "@id": "https://doi.org/10.1021/acs.est.1c02319", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.1c02319" }, "name": "Enhanced Susceptibility of Methylmercury Bioaccumulation into Seston of the Laurentian Great Lakes" }, { "@id": "https://doi.org/10.1021/acsearthspacechem.1c00051", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acsearthspacechem.1c00051" }, "name": "Isotope Fractionation from In Vivo Methylmercury Detoxification in Waterbirds" }, { "@id": "https://doi.org/10.1021/acsestwater.0c00187", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acsestwater.0c00187" }, "name": "Aqueous Elemental Mercury Production versus Mercury Inventories in the Lake Michigan Airshed: Deciphering the Spatial and Diel Controls of Mercury Gradients in Air and Water" }, { "@id": "https://doi.org/10.1021/acs.est.0c04948", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.0c04948" }, "name": "Demethylation of Methylmercury in Bird, Fish, and Earthworm" }, { "@id": "https://doi.org/10.1002/essoar.10505907.1", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/essoar.10505907.1" }, "name": "The Dragonfly Mercury Project: A National Scale Assessment of Mercury Bioaccumulation and Risk in US National Parks Through a Citizen Science Framework" }, { "@id": "https://doi.org/10.1021/acs.est.0c05435", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.0c05435" }, "name": "Mercury Methylation Genes Identified across Diverse Anaerobic Microbial Guilds in a Eutrophic Sulfate-Enriched Lake" }, { "@id": "https://doi.org/10.1021/acs.est.0c00579", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.0c00579" }, "name": "Resolving Atmospheric Mercury Loading and Source Trends from Isotopic Records of Remote North American Lake Sediments" }, { "@id": "https://doi.org/10.1021/acs.est.9b07103", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.9b07103" }, "name": "Seasonal Dynamics and Interannual Variability in Mercury Concentrations and Loads through a Three-Reservoir Complex" }, { "@id": "https://doi.org/10.1021/acs.est.0c01255", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.0c01255" }, "name": "A National-Scale Assessment of Mercury Bioaccumulation in United States National Parks Using Dragonfly Larvae As Biosentinels through a Citizen-Science Framework" }, { "@id": "https://doi.org/10.1021/acs.est.9b07145", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.9b07145" }, "name": "Mercury Export from Arctic Great Rivers" }, { "@id": "https://doi.org/10.1007/s00216-019-02277-0", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1007/s00216-019-02277-0" }, "name": "Isolation of methylmercury using distillation and anion-exchange chromatography for isotopic analyses in natural matrices" }, { "@id": "https://doi.org/10.3133/ofr20201092", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/ofr20201092" }, "name": "Observed and modeled mercury and dissolved organic carbon concentrations and loads at control structure S-12D, Florida Everglades, 2013\u201317" }, { "@id": "https://doi.org/10.1021/acs.est.9b03394", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.9b03394" }, "name": "Chemical and Physical Controls on Mercury Source Signatures in Stream Fish from the Northeastern United States" }, { "@id": "https://doi.org/10.1021/acs.est.8b06041", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.8b06041" }, "name": "Geochemical Factors Controlling Dissolved Elemental Mercury and Methylmercury Formation in Alaskan Wetlands of Varying Trophic Status" }, { "@id": "https://doi.org/10.1021/acs.estlett.8b00592", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.estlett.8b00592" }, "name": "Mercury Isotopes Reveal an Ontogenetic Shift in Habitat Use by Walleye in Lower Green Bay of Lake Michigan" }, { "@id": "https://doi.org/10.3133/ofr20181159", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/ofr20181159" }, "name": "Biogeochemical and physical processes controlling mercury methylation and bioaccumulation in Lake Powell, Glen Canyon National Recreation Area, Utah and Arizona, 2014 and 2015" }, { "@id": "https://doi.org/10.3133/ofr20191001", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/ofr20191001" }, "name": "Coagulant and sorbent efficacy in removing mercury from surface waters in the Cache Creek watershed, California" }, { "@id": "https://doi.org/10.1021/acs.est.7b06429", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1021/acs.est.7b06429" }, "name": "Mercury Stable Isotopes Reveal Influence of Foraging Depth on Mercury Concentrations and Growth in Pacific Bluefin Tuna" }, { "@id": "https://doi.org/10.1002/2017gl075571", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/2017gl075571" }, "name": "Permafrost Stores a Globally Significant Amount of Mercury" }, { "@id": "https://doi.org/10.3133/fs20163005", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/fs20163005" }, "name": "Dragonfly Mercury Project\u2014A citizen science driven approach to linking surface-water chemistry and landscape characteristics to biosentinels on a national scale" }, { "@id": "https://doi.org/10.3133/fs20163051", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/fs20163051" }, "name": "Mercury cycling in the Hells Canyon Complex of the Snake River, Idaho and Oregon" }, { "@id": "https://doi.org/10.3133/ds950", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/ds950" }, "name": "Mercury, monomethyl mercury, and dissolved organic carbon concentrations in surface water entering and exiting constructed wetlands treated with metal-based coagulants, Twitchell Island, California" }, { "@id": "https://doi.org/10.3133/cir1395", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/cir1395" }, "name": "Mercury in the nation's streams - Levels, trends, and implications" }, { "@id": "https://doi.org/10.3133/cir1383e", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/cir1383e" }, "name": "U.S. Geological Survey environmental health science strategy \u2014 Providing environmental health science for a changing world" }, { "@id": "https://doi.org/10.3133/ofr20121069", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/ofr20121069" }, "name": "USGS Environmental health science strategy: providing environmental health science for a changing world: Public review release" }, { "@id": "https://doi.org/10.3133/sir20105037", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/sir20105037" }, "name": "Comparison of mercury in water, bottom sediment, and zooplankton in two Front Range reservoirs in Colorado, 2008-09" }, { "@id": "https://doi.org/10.3133/sir20095109", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/sir20095109" }, "name": "Mercury in fish, bed sediment, and water from streams across the United States, 1998-2005" }, { "@id": "https://doi.org/10.3133/ds375", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/ds375" }, "name": "Total mercury, methylmercury, methylmercury production potential, and ancillary streambed-sediment and pore-water data for selected streams in Oregon, Wisconsin, and Florida, 2003-04" }, { "@id": "https://doi.org/10.3133/sir20075240", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/sir20075240" }, "name": "An Assessment of the Potential Effects of Aquifer Storage and Recovery on Mercury Cycling in South Florida" }, { "@id": "https://doi.org/10.3133/sir20075084", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/sir20075084" }, "name": "Water-quality characteristics for selected sites within the Milwaukee Metropolitan Sewerage District planning area, Wisconsin, February 2004-September 2005" }, { "@id": "https://doi.org/10.3133/ofr20051368", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/ofr20051368" }, "name": "Analysis of mercury wet-deposition data collected with a newly designed sampler, Boston, Massachusetts metropolitan area, 2002-04" }, { "@id": "https://doi.org/10.3133/sir20045196", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/sir20045196" }, "name": "Sediment remobilization of Mercury in South San Francisco Bay, California" }, { "@id": "https://doi.org/10.3133/fs01603", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/fs01603" }, "name": "Mercury in stream ecosystems -- New studies initiated by the U.S. Geological Survey" }, { "@id": "https://doi.org/10.3133/fs05102", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/fs05102" }, "name": "Glacial ice cores reveal a record of natural and anthropogenic atmospheric mercury deposition for the last 270 years" }, { "@id": "https://doi.org/10.3133/fs16696", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/fs16696" }, "name": "Mercury studies in the Florida Everglades" }, { "@id": "https://doi.org/10.3133/fs21695", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/fs21695" }, "name": "Mercury contamination of aquatic ecosystems" }, { "@id": "https://doi.org/10.3133/ofr9248", "@type": "CreativeWork", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3133/ofr9248" }, "name": "Water, Energy, and Biogeochemical Budgets (WEBB) program: Data availability and research at the Northern Temperate Lakes site in north-central Wisconsin" } ] }, "@type": "Person", "familyName": "Krabbenhoft", "givenName": "David", "mainEntityOfPage": "https://orcid.org/0000-0003-1964-5020" }, "OpenAlex": { "created_date": "2023-07-21", "display_name": "David P. Krabbenhoft", "display_name_alternatives": [ "D. Krabbenhoft", "David P. Krabbenhoft", "David Krabbenhoft", "D. P. Krabbenhoft" ], "ids": { "openalex": "https://openalex.org/A5058832533", "orcid": "https://orcid.org/0000-0003-1964-5020" }, "last_known_institutions": [ { "country_code": "US", "display_name": "United States Geological Survey", "id": "https://openalex.org/I1286329397", "lineage": [ "https://openalex.org/I1286329397", "https://openalex.org/I1335927249" ], "ror": "https://ror.org/035a68863", "type": "government" } ], "orcid": "https://orcid.org/0000-0003-1964-5020", "topics": [ { "count": 195, "display_name": "Toxicology and Environmental Impacts of Mercury Contamination", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10819", "subfield": { "display_name": "Health, Toxicology and Mutagenesis", "id": "https://openalex.org/subfields/2307" } }, { "count": 82, "display_name": "Impact of Persistent Organic Pollutants on Environment and Health", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10122", "subfield": { "display_name": "Health, Toxicology and Mutagenesis", "id": "https://openalex.org/subfields/2307" } }, { "count": 54, "display_name": "Environmental Impact of Heavy Metal Contamination", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10139", "subfield": { "display_name": "Pollution", "id": "https://openalex.org/subfields/2310" } }, { "count": 38, "display_name": "Metal-Induced Oxidative Stress and Health Effects", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10790", "subfield": { "display_name": "Health, Toxicology and Mutagenesis", "id": "https://openalex.org/subfields/2307" } }, { "count": 26, "display_name": "Application of Stable Isotopes in Trophic Ecology", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T12073", "subfield": { "display_name": "Ecology", "id": "https://openalex.org/subfields/2303" } }, { "count": 25, "display_name": "Ecology and Conservation of Marine Mammals", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10659", "subfield": { "display_name": "Ecology", "id": "https://openalex.org/subfields/2303" } }, { "count": 20, "display_name": "Stable Isotope Analysis of Groundwater and Precipitation", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Earth and Planetary Sciences", "id": "https://openalex.org/fields/19" }, "id": "https://openalex.org/T10398", "subfield": { "display_name": "Geochemistry and Petrology", "id": "https://openalex.org/subfields/1906" } }, { "count": 19, "display_name": "Occurrence and Health Effects of Drinking Water Disinfection By-Products", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T11493", "subfield": { "display_name": "Health, Toxicology and Mutagenesis", "id": "https://openalex.org/subfields/2307" } }, { "count": 13, "display_name": "Health Effects of Air Pollution", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10190", "subfield": { "display_name": "Health, Toxicology and Mutagenesis", "id": "https://openalex.org/subfields/2307" } }, { "count": 12, "display_name": "Groundwater Flow and Transport Modeling", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10894", "subfield": { "display_name": "Environmental Engineering", "id": "https://openalex.org/subfields/2305" } }, { "count": 10, "display_name": "Water Quality and Hydrogeology Research", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T12773", "subfield": { "display_name": "Water Science and Technology", "id": "https://openalex.org/subfields/2312" } }, { "count": 10, "display_name": "Marine Biogeochemistry and Ecosystem Dynamics", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Earth and Planetary Sciences", "id": "https://openalex.org/fields/19" }, "id": "https://openalex.org/T10032", "subfield": { "display_name": "Oceanography", "id": "https://openalex.org/subfields/1910" } }, { "count": 9, "display_name": "Importance and Conservation of Freshwater Biodiversity", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10302", "subfield": { "display_name": "Nature and Landscape Conservation", "id": "https://openalex.org/subfields/2309" } }, { "count": 8, "display_name": "Importance of Mangrove Ecosystems in Coastal Protection", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10779", "subfield": { "display_name": "Ecology", "id": "https://openalex.org/subfields/2303" } }, { "count": 8, "display_name": "Hydrological Modeling and Water Resource Management", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10330", "subfield": { "display_name": "Water Science and Technology", "id": "https://openalex.org/subfields/2312" } }, { "count": 7, "display_name": "Global Methane Emissions and Impacts", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T11588", "subfield": { "display_name": "Global and Planetary Change", "id": "https://openalex.org/subfields/2306" } }, { "count": 7, "display_name": "Marine Microbial Diversity and Biogeography", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T11791", "subfield": { "display_name": "Ecology", "id": "https://openalex.org/subfields/2303" } }, { "count": 6, "display_name": "Biogeochemical Cycling of Nutrients in Aquatic Ecosystems", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T11311", "subfield": { "display_name": "Environmental Chemistry", "id": "https://openalex.org/subfields/2304" } }, { "count": 5, "display_name": "Atmospheric Aerosols and their Impacts", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Earth and Planetary Sciences", "id": "https://openalex.org/fields/19" }, "id": "https://openalex.org/T10075", "subfield": { "display_name": "Atmospheric Science", "id": "https://openalex.org/subfields/1902" } }, { "count": 5, "display_name": "Aquatic Ecotoxicology and Biomarkers of Pollution", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T10447", "subfield": { "display_name": "Health, Toxicology and Mutagenesis", "id": "https://openalex.org/subfields/2307" } }, { "count": 3, "display_name": "Carbon Dynamics in Peatland Ecosystems", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T12091", "subfield": { "display_name": "Ecology", "id": "https://openalex.org/subfields/2303" } }, { "count": 2, "display_name": "Emerging Zoonotic Diseases and One Health Approach", "domain": { "display_name": "Health Sciences", "id": "https://openalex.org/domains/4" }, "field": { "display_name": "Medicine", "id": "https://openalex.org/fields/27" }, "id": "https://openalex.org/T12492", "subfield": { "display_name": "Public Health, Environmental and Occupational Health", "id": "https://openalex.org/subfields/2739" } }, { "count": 2, "display_name": "Arctic Permafrost Dynamics and Climate Change", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Earth and Planetary Sciences", "id": "https://openalex.org/fields/19" }, "id": "https://openalex.org/T11333", "subfield": { "display_name": "Atmospheric Science", "id": "https://openalex.org/subfields/1902" } }, { "count": 2, "display_name": "Analytical Chemistry Techniques", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Chemistry", "id": "https://openalex.org/fields/16" }, "id": "https://openalex.org/T10180", "subfield": { "display_name": "Analytical Chemistry", "id": "https://openalex.org/subfields/1602" } }, { "count": 2, "display_name": "Urban Stormwater Management and Sustainable Drainage Systems", "domain": { "display_name": "Physical Sciences", "id": "https://openalex.org/domains/3" }, "field": { "display_name": "Environmental Science", "id": "https://openalex.org/fields/23" }, "id": "https://openalex.org/T11119", "subfield": { "display_name": "Environmental Engineering", "id": "https://openalex.org/subfields/2305" } } ], "updated_date": "2024-05-22T19:24:28.344843" }
}