Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 90 checked references that resolve
resolves10.1021/ac00110a022Performance and Optimization of a Combustion Interface for Isotope Ratio Monitoring Gas Chromatography/Mass Spectrometry
resolves10.1021/ac980248vQuantitative Production of H<sub>2</sub> by Pyrolysis of Gas Chromatographic Effluents
resolves10.1021/es9701873Tracing Organic Contaminants in Groundwater: A New Methodology Using Compound-Specific Isotopic Analysis
resolves10.1021/es9803254Headspace Analysis: A New Application for Isotopic Characterization of Dissolved Organic Contaminants
resolves10.1021/es991178sDetermination of Compound-Specific Carbon Isotope Ratios of Chlorinated Methanes, Ethanes, and Ethenes in Aqueous Samples
resolves10.1021/ac034230iCompound-Specific Carbon Isotope Analysis of Volatile Organic Compounds in the Low-Microgram per Liter Range
resolves10.1007/s00216-003-2236-zHPLC-MS investigations of acidic contaminants in ammunition wastes using volatile ion-pairing reagents (VIP-LC-MS)
resolves10.1016/S0146-6380(99)00064-9Contrasting carbon isotope fractionation during biodegradation of trichloroethylene and toluene: Implications for intrinsic bioremediation
resolves10.1021/es981282uMonitoring Microbial Dechlorination of Tetrachloroethene (PCE) in Groundwater Using Compound-Specific Stable Carbon Isotope Ratios: Microcosm and Field Studies
resolves10.1128/AEM.66.11.4870-4876.2000Evidence of Substantial Carbon Isotope Fractionation among Substrate, Inorganic Carbon, and Biomass during Aerobic Mineralization of 1,2-Dichloroethane by
<i>Xanthobacter autotrophicus</i>
resolves10.1007/BF02374138Experimental determination of nitrogen kinetic isotope fractionation: Some principles; illustration for the denitrification and nitrification processes
resolves10.1021/cr00024a004Isotope effects in solution thermodynamics: excess properties in solutions of isotopomers
resolves10.1016/0022-2860(93)08210-UIsotope effects on phase equilibria in hydrogen bonded systems, especially vapor pressure and miscibility isotope effects
resolves10.1021/jp014129mCASSCF and CAS+1+2 Studies on the Potential Energy Surface and the Rate Constants for the Reactions between CH<sub>2</sub> and O<sub>2</sub>
resolves10.1021/ac000691hCarbon Isotope Effects Resulting from Equilibrium Sorption of Dissolved VOCs
resolves10.1021/ja00005a037Nitrogen and deuterium isotope effects on quaternization of N,N-dimethyl-p-toluidine
resolves10.1021/ar000054dMultiple Isotope Effects on the Acyl Group Transfer Reactions of Amides and Esters
resolves10.1021/ja00141a030High-Precision Simultaneous Determination of Multiple Small Kinetic Isotope Effects at Natural Abundance
resolves10.1021/ja00988a020A simple theory for predicting the effects of substituent changes on transition-state geometry
resolves10.1021/cr60211a004The Magnitude of the Primary Kinetic Isotope Effect for Compounds of Hydrogen and Deuterium.
resolves10.1016/S0040-4039(99)00637-1Separation of the primary and secondary kinetic isotope effects at a reactive center using starting material reactivities. Application to the FeCl3-Catalyzed oxidation of CH bonds with tert-butyl hydroperoxide
resolves10.1021/ja9705250A New Mechanistic Probe for Cytochrome P450: An Application of Isotope Effect Profiles
resolves10.1021/ja971650eExperimental and Theoretical Kinetic Isotope Effects for Asymmetric Dihydroxylation. Evidence Supporting a Rate-Limiting “(3 + 2)” Cycloaddition
resolves10.1021/ja001258sReductive Cleavage of Carbon Tetrachloride in a Polar Solvent. An Example of a Dissociative Electron Transfer with Significant Attractive Interaction between the Caged Product Fragments
resolves10.1016/S0016-7037(03)00459-9Optimal methods for estimating kinetic isotope effects from different forms of the Rayleigh distillation equation
resolves10.1029/2000JD900447The stable carbon isotope fractionation for reactions of selected hydrocarbons with OH‐radicals and its relevance for atmospheric chemistry
resolves10.1023/B:JOCH.0000021035.49613.f7Laboratory Studies of the Hydrogen Kinetic Isotope Effects (KIES) of the Reaction of Non-Methane Hydrocarbons with the OH Radical in the Gas Phase
resolves10.1016/0016-7037(82)90241-1Carbon isotopic fractionation in the biosynthesis of bacterial fatty acids. Ozonolysis of unsaturated fatty acids as a means of determining the intramolecular distribution of carbon isotopes
resolves10.1104/pp.96.2.609Evidence for a Nonstatistical Carbon Isotope Distribution in Natural Glucose
resolves10.1021/es058015qNew Evaluation Scheme for Two-Dimensional Isotope Analysis to Decipher Biodegradation Processes: Application to Groundwater Contamination by MTBE
resolves10.1080/10256019808234056Recent Advances in Site-specific Natural Isotope Fractionation Studied by Nuclear Magnetic Resonance
resolves10.1128/AEM.67.10.4842-4849.2001Stable Hydrogen and Carbon Isotope Fractionation during Microbial Toluene Degradation: Mechanistic and Environmental Aspects
resolves10.1128/JB.185.18.5536-5545.2003Epoxyalkane:Coenzyme M Transferase in the Ethene and Vinyl Chloride Biodegradation Pathways of
<i>Mycobacterium</i>
Strain JS60
resolves10.1021/ja0055965Mechanistic Studies on the Vitamin B<sub>12</sub>-Catalyzed Dechlorination of Chlorinated Alkenes
resolves10.1021/es991179kCarbon Isotope Fractionation during Microbial Dechlorination of Trichloroethene, <i>cis</i>-1,2-Dichloroethene, and Vinyl Chloride: Implications for Assessment of Natural Attenuation
resolves10.1021/es001583fVariability in Carbon Isotopic Fractionation during Biodegradation of Chlorinated Ethenes: Implications for Field Applications
resolves10.1021/es011479dCarbon Isotopes as a Tool To Evaluate the Origin and Fate of Vinyl Chloride: Laboratory Experiments and Modeling of Isotope Evolution
resolves10.1021/es990884qPathways and Kinetics of Chlorinated Ethylene and Chlorinated Acetylene Reaction with Fe(0) Particles
resolves10.1016/S0045-6535(02)00327-2Isotopic fractionation during reductive dechlorination of trichloroethene by zero-valent iron: influence of surface treatment
resolves10.1021/es040420eEnrichment of Stable Carbon and Hydrogen Isotopes during Anaerobic Biodegradation of MTBE: Microcosm and Field Evidence
resolves10.1021/es049920yPathway Dependent Isotopic Fractionation during Aerobic Biodegradation of 1,2-Dichloroethane
resolves10.1021/es001227xStable Carbon Isotope Evidence for Intrinsic Bioremediation of Tetrachloroethene and Trichloroethene at Area 6, Dover Air Force Base
resolves10.1021/es0344516Combined Application of Stable Carbon Isotope Analysis and Specific Metabolites Determination for Assessing In Situ Degradation of Aromatic Hydrocarbons in a Tar Oil-Contaminated Aquifer
resolves10.1016/j.jconhyd.2003.09.006Assessing microbial degradation of o-xylene at field-scale from the reduction in mass flow rate combined with compound-specific isotope analyses
resolves10.1016/S0169-7722(02)00104-3In situ biodegradation determined by carbon isotope fractionation of aromatic hydrocarbons in an anaerobic landfill leachate plume (Vejen, Denmark)
resolves10.1016/S0169-7722(02)00233-4Microbial in situ degradation of aromatic hydrocarbons in a contaminated aquifer monitored by carbon isotope fractionation
resolves10.1016/j.jconhyd.2004.11.002Quantifying chlorinated ethene degradation during reductive dechlorination at Kelly AFB using stable carbon isotopes
resolves10.1021/es034417rHydrogen and Carbon Isotope Fractionation during Anaerobic Biodegradation of Aromatic HydrocarbonsA Field Study
resolves10.1021/es025704iUse of Compound-Specific Stable Carbon Isotope Analyses To Demonstrate Anaerobic Biodegradation of MTBE in Groundwater at a Gasoline Release Site
resolves10.1021/ja00015a043Phosphoryl-transfer reactions of phosphodiesters: characterization of transition states by heavy-atom isotope effects
resolves10.1021/ja036571jTransition State Differences in Hydrolysis Reactions of Alkyl versus Aryl Phosphate Monoester Monoanions
resolves10.1021/bi00043a003Nature of the transition state of the protein-tyrosine phosphatase-catalyzed reaction
resolves10.1021/ja0340026Comparisons of Phosphorothioate with Phosphate Transfer Reactions for a Monoester, Diester, and Triester: Isotope Effect Studies
resolves10.1021/ar000143qIsotope Effects in the Study of Phosphoryl and Sulfuryl Transfer Reactions
resolves10.1021/jo00168a059Temperature dependence of the kinetic isotope effect in the homolytic abstraction of benzylic hydrogen by bromine
resolves10.1002/poc.610060703Temprature dependence of the deuterium isotope effect in the deprotonation of some nitroalkanes by anionic bases
resolves10.1080/10256019608036291Temperature Dependence of the Carbon-13 Isotope Effect in the Decarbonylation of Concentrated Formic Acid Solutions of Sodium Chloride and of Metaphosphoric Acid Reagent
resolves10.1021/ja00869a008<b>Temperature Dependence of the Carbon Isotope Effect in the Dehydration of Formic Acid by Concentrated Sulfuric Acid</b>
resolves10.1006/bioo.1996.1049Temperature Dependence of the Primary Kinetic Isotope Effect in Hydride Transfer Reactions with NAD+and NADH Models
resolves10.1021/jp030575tTemperature Dependence of Kinetic Isotope Effects for Enzymatic Carbon−Hydrogen Bond Cleavage
resolves10.1002/rcm.219Continuous flow stable isotope methods for study of δ
<sup>13</sup>
C fractionation during halomethane production and degradation
resolves10.1016/j.gca.2003.11.028Degradation of methyl bromide and methyl chloride in soil microcosms: Use of stable C isotope fractionation and stable isotope probing to identify reactions and the responsible microorganisms
resolves10.1021/es0205380Carbon Isotope Fractionation during Permanganate Oxidation of Chlorinated Ethylenes (cDCE, TCE, PCE)
resolves10.1021/es049368cCarbon Isotopic Fractionation during Anaerobic Biotransformation of Methyl <i>tert</i>-Butyl Ether and <i>tert</i>-Amyl Methyl Ether
resolves10.1021/es020073dMonitoring Oxidation of Chlorinated Ethenes by Permanganate in Groundwater Using Stable Isotopes: Laboratory and Field Studies
The 43 references without a DOI — listed, not checked
no DOI — not checkedClark, I.; Fritz, P.Environmental isotopes in hydrogeology; Lewis Publishers: New York, 1997; p 328.
no DOI — not checkedes0504587b00005/es0504587b00005_1
no DOI — not checkedes0504587b00018/es0504587b00018_1
no DOI — not checkedes0504587b00021/es0504587b00021_1
no DOI — not checkedMelander, L.; Saunders: W. H.Reaction rates of isotopic molecules; John Wiley: New York, 1980; p 331.
no DOI — not checkedCook, P. F.Enzyme mechanism from isotope effects; CRC Press: Boca Raton, 1991.
no DOI — not checkedes0504587b00025/es0504587b00025_1
no DOI — not checkedThe biological fractionation of isotopes
no DOI — not checkedes0504587b00030/es0504587b00030_1
no DOI — not checkedEnzyme mechanism from isotope effects
no DOI — not checkedIsotopes in organic chemistry
no DOI — not checkedEnzyme kinetics and mechanism, part B: Isotopic probes and complex enzyme systems
no DOI — not checkedes0504587b00041/es0504587b00041_1
no DOI — not checkedSühnel, J.; Schowen, R. L. InEnzyme mechanism from isotope effects; Cook, P. F., Ed.; CRC Press: Boca Raton, Ann Arbor, Boston, London, 1991; pp 3−35.
no DOI — not checkedIsotope effects on enzyme-catalyzed reactions
no DOI — not checkedIsotopes in organic chemistry
no DOI — not checkedIsotope effects on enzyme-catalyzed reactions
no DOI — not checkedIsotopes in organic chemistry
no DOI — not checkedIsotopes in organic chemistry
no DOI — not checkedes0504587b00058/es0504587b00058_1
no DOI — not checkedes0504587b00062/es0504587b00062_1
no DOI — not checkedes0504587b00064/es0504587b00064_1
no DOI — not checkedes0504587b00065/es0504587b00065_1
no DOI — not checkedes0504587b00075/es0504587b00075_1
no DOI — not checkedes0504587b00077/es0504587b00077_1
no DOI — not checkedes0504587b00079/es0504587b00079_1
no DOI — not checkedes0504587b00080/es0504587b00080_1
no DOI — not checkedes0504587b00081/es0504587b00081_1
no DOI — not checkedes0504587b00082/es0504587b00082_1
no DOI — not checkedes0504587b00083/es0504587b00083_1
no DOI — not checkedes0504587b00085/es0504587b00085_1
no DOI — not checkedes0504587b00096/es0504587b00096_1
no DOI — not checkedes0504587b00098/es0504587b00098_1
no DOI — not checkedes0504587b00106/es0504587b00106_1
no DOI — not checkedIsotopeneffekte bei chemischen Reaktionen
no DOI — not checkedEnzyme mechanism from isotope effects
no DOI — not checkedes0504587b00109/es0504587b00109_1
no DOI — not checkedes0504587b00112/es0504587b00112_1
no DOI — not checkedes0504587b00118/es0504587b00118_1
no DOI — not checkedes0504587b00121/es0504587b00121_1
no DOI — not checkedes0504587b00123/es0504587b00123_1
no DOI — not checkedes0504587b00126/es0504587b00126_1
no DOI — not checkedes0504587b00131/es0504587b00131_1
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