| 1 | Influence of Metal Salts on the Hydrolysis of Postconsumer Poly(ethylene Terephthalate) | 5.0 | 8 | Citations (PDF) |
| 2 | General component additivity, reaction engineering, and machine learning models for hydrothermal liquefaction | 4.3 | 6 | Citations (PDF) |
| 3 | Understanding PET Hydrolysis via Reactive Molecular Dynamics Simulation and Experimental Investigation | 2.1 | 12 | Citations (PDF) |
| 4 | Acid catalyst screening for hydrolysis of post-consumer PET waste and exploration of acidolysis | 7.7 | 67 | Citations (PDF) |
| 5 | Review and assessment of models for predicting biocrude yields from hydrothermal liquefaction of biomass | 4.3 | 33 | Citations (PDF) |
| 6 | Fast hydrolysis for chemical recycling of polyethylene terephthalate (PET) | 4.3 | 35 | Citations (PDF) |
| 7 | Renewable Fuels and Chemical Recycling of Plastics via Hydrothermal Liquefaction | 11.8 | 26 | Citations (PDF) |
| 8 | Statistical Models for Predicting Oil Composition from Hydrothermal Liquefaction of Biomass | 4.3 | 17 | Citations (PDF) |
| 9 | Neutral Hydrolysis of Post-Consumer Polyethylene Terephthalate Waste in Different Phases | 5.4 | 90 | Citations (PDF) |
| 10 | Hydrothermal liquefaction of starch using homogeneous and heterogeneous co-catalysts | 8.7 | 12 | Citations (PDF) |
| 11 | Recovery of Energy and Nitrogen via Two-Stage Valorization of Food Waste | 3.0 | 10 | Citations (PDF) |
| 12 | Hydrothermal liquefaction of polysaccharide feedstocks with heterogeneous catalysts | 6.5 | 24 | Citations (PDF) |
| 13 | Effect of Cellulose and Polypropylene on Hydrolysis of Polyethylene Terephthalate for Chemical Recycling | 6.1 | 27 | Citations (PDF) |
| 14 | Heterogeneous catalyst stability during hydrodenitrogenation in supercritical water | 3.9 | 9 | Citations (PDF) |
| 15 | Ring-opening and hydrodenitrogenation of indole under hydrothermal conditions over Ni, Pt, Ru, and Ni-Ru bimetallic catalysts | 8.7 | 60 | Citations (PDF) |
| 16 | A molecular, elemental, and multiphase kinetic model for the hydrothermal liquefaction of microalgae | 8.7 | 44 | Citations (PDF) |
| 17 | Screening Potential Catalysts for the Hydrothermal Liquefaction of Food Waste | 4.3 | 19 | Citations (PDF) |
| 18 | Effects of Potassium Phosphates and Other Additives on Biocrude Production and Composition from Hydrothermal Liquefaction of Pectin and Chitin | 3.0 | 8 | Citations (PDF) |
| 19 | Synergistic interactions during hydrothermal liquefaction of plastics and biomolecules | 8.7 | 115 | Citations (PDF) |
| 20 | Hydrothermal carbonization of simulated food waste for recovery of fatty acids and nutrients | 6.5 | 43 | Citations (PDF) |
| 21 | Effect of Process Variables on Food Waste Valorization via Hydrothermal Liquefaction | 5.0 | 105 | Citations (PDF) |
| 22 | Identifying and Modeling Interactions between Biomass Components during Hydrothermal Liquefaction in Sub-, Near-, and Supercritical Water | 5.4 | 38 | Citations (PDF) |
| 23 | Component additivity model for plastics—biomass mixtures during hydrothermal liquefaction in sub-, near-, and supercritical water | 2.5 | 24 | Citations (PDF) |
| 24 | Fate of iron during hydrothermal liquefaction of hemin | 3.0 | 7 | Citations (PDF) |
| 25 | Fast and isothermal hydrothermal liquefaction of sludge at different severities: Reaction products, pathways, and kinetics | 9.0 | 107 | Citations (PDF) |
| 26 | Oil from plastic via hydrothermal liquefaction: Production and characterization | 9.0 | 187 | Citations (PDF) |
| 27 | Effects of Potassium Phosphates on Hydrothermal Liquefaction of Triglyceride, Protein, and Polysaccharide | 4.3 | 37 | Citations (PDF) |
| 28 | Effect of Additives on Hydrothermal Liquefaction of Polysaccharides | 3.0 | 9 | Citations (PDF) |
| 29 | Destruction of Perfluoroalkyl Acids Accumulated in Typha latifolia through Hydrothermal Liquefaction | 5.4 | 60 | Citations (PDF) |
| 30 | Fast and Isothermal Hydrothermal Liquefaction of Polysaccharide Feedstocks | 5.4 | 63 | Citations (PDF) |
| 31 | Reaction pathways and kinetics of tryptophan in hot, compressed water | 8.7 | 24 | Citations (PDF) |
| 32 | 110th Anniversary: Influence of Solvents on Biocrude from Hydrothermal Liquefaction of Soybean Oil, Soy Protein, Cellulose, Xylose, and Lignin, and Their Quinary Mixture | 3.0 | 41 | Citations (PDF) |
| 33 | Biodiversity Improves Life Cycle Sustainability Metrics in Algal Biofuel Production | 8.6 | 23 | Citations (PDF) |
| 34 | The individual and synergistic impacts of feedstock characteristics and reaction conditions on the aqueous co-product from hydrothermal liquefaction | 3.3 | 14 | Citations (PDF) |
| 35 | Biocrude Production from Fast and Isothermal Hydrothermal Liquefaction of Chitin | 4.3 | 31 | Citations (PDF) |
| 36 | Using Solvents To Reduce the Metal Content in Crude Bio-oil from Hydrothermal Liquefaction of Microalgae | 3.0 | 26 | Citations (PDF) |
| 37 | Reaction pathways and kinetics for tetra-alanine in hot, compressed liquid water | 2.0 | 7 | Citations (PDF) |
| 38 | Stability and activity maintenance of sol-gel Ni-MxOy (M=Ti, Zr, Ta) catalysts during continuous gasification of glycerol in supercritical water | 3.0 | 30 | Citations (PDF) |
| 39 | The independent and coupled effects of feedstock characteristics and reaction conditions on biocrude production by hydrothermal liquefaction | 9.0 | 49 | Citations (PDF) |
| 40 | Supercritical water gasification of phenol over Ni-Ru bimetallic catalysts | 10.0 | 49 | Citations (PDF) |
| 41 | Hydrothermal reaction of tryptophan over Ni-based bimetallic catalysts | 3.0 | 31 | Citations (PDF) |
| 42 | Catalyst Oxidation and Dissolution in Supercritical Water | 4.8 | 34 | Citations (PDF) |
| 43 | Metals and Other Elements in Biocrude from Fast and Isothermal Hydrothermal Liquefaction of Microalgae | 4.3 | 45 | Citations (PDF) |
| 44 | Stability and activity maintenance of Al2O3- and carbon nanotube-supported Ni catalysts during continuous gasification of glycerol in supercritical water | 3.0 | 37 | Citations (PDF) |
| 45 | Supercritical water upgrading of water-insoluble and water-soluble biocrudes from hydrothermal liquefaction of Nannochloropsis microalgae | 3.0 | 48 | Citations (PDF) |
| 46 | Synergistic and Antagonistic Interactions during Hydrothermal Liquefaction of Soybean Oil, Soy Protein, Cellulose, Xylose, and Lignin | 5.4 | 173 | Citations (PDF) |
| 47 | Hydrothermal Liquefaction of Model Food Waste Biomolecules and Ternary Mixtures under Isothermal and Fast Conditions | 5.4 | 64 | Citations (PDF) |
| 48 | Ecological Engineering Helps Maximize Function in Algal Oil Production | 2.4 | 9 | Citations (PDF) |
| 49 | Biodiversity improves the ecological design of sustainable biofuel systems | 2.9 | 28 | Citations (PDF) |
| 50 | Thermodynamic Analysis of Catalyst Stability in Hydrothermal Reaction Media | 3.0 | 28 | Citations (PDF) |
| 51 | Hydrothermal liquefaction of sewage sludge under isothermal and fast conditions | 6.5 | 192 | Citations (PDF) |
| 52 | Modeling the effects of microalga biochemical content on the kinetics and biocrude yields from hydrothermal liquefaction | 6.5 | 101 | Citations (PDF) |
| 53 | Effect of temperature, water loading, and Ru/C catalyst on water-insoluble and water-soluble biocrude fractions from hydrothermal liquefaction of algae | 6.5 | 62 | Citations (PDF) |
| 54 | Algal polycultures enhance coproduct recycling from hydrothermal liquefaction | 6.5 | 60 | Citations (PDF) |
| 55 | Ecological Stoichiometry Meets Ecological Engineering: Using Polycultures to Enhance the Multifunctionality of Algal Biocrude Systems | 8.6 | 24 | Citations (PDF) |
| 56 | Influence of process conditions and interventions on metals content in biocrude from hydrothermal liquefaction of microalgae | 3.3 | 37 | Citations (PDF) |
| 57 | Influence of biodiversity, biochemical composition, and species identity on the quality of biomass and biocrude oil produced via hydrothermal liquefaction | 3.3 | 35 | Citations (PDF) |
| 58 | Molecular and Lumped Products from Hydrothermal Liquefaction of Bovine Serum Albumin | 5.4 | 35 | Citations (PDF) |
| 59 | “Algae and Environmental Sustainability” | 0.8 | 1 | Citations (PDF) |
| 60 | Behavior of Cholesterol and Catalysts in Supercritical Water | 4.3 | 8 | Citations (PDF) |
| 61 | Near- and supercritical ethanol treatment of biocrude from hydrothermal liquefaction of microalgae | 6.5 | 31 | Citations (PDF) |
| 62 | Products and Kinetics for Isothermal Hydrothermal Liquefaction of Soy Protein Concentrate | 5.4 | 71 | Citations (PDF) |
| 63 | A quantitative kinetic model for the fast and isothermal hydrothermal liquefaction of Nannochloropsis sp. | 6.5 | 114 | Citations (PDF) |
| 64 | Products, Pathways, and Kinetics for the Fast Hydrothermal Liquefaction of Soy Protein Isolate | 5.4 | 39 | Citations (PDF) |
| 65 | Power of Plankton: Effects of Algal Biodiversity on Biocrude Production and Stability | 8.6 | 31 | Citations (PDF) |
| 66 | Effects of processing conditions on biocrude yields from fast hydrothermal liquefaction of microalgae | 6.5 | 53 | Citations (PDF) |
| 67 | Hydrocarbon chemicals from hydrothermal processing of renewable oils over HZSM-5 | 2.2 | 10 | Citations (PDF) |
| 68 | Reaction pathways and kinetics of cholesterol in high-temperature water | 8.7 | 20 | Citations (PDF) |
| 69 | Supercritical water gasification of lipid-extracted hydrochar to recover energy and nutrients | 3.0 | 28 | Citations (PDF) |
| 70 | Growing Algae for Biodiesel on Direct Sunlight or Sugars: A Comparative Life Cycle Assessment | 5.4 | 43 | Citations (PDF) |
| 71 | Catalytic Hydrothermal Liquefaction of Soy Protein Concentrate | 4.3 | 32 | Citations (PDF) |
| 72 | Hydrothermal decarboxylation of unsaturated fatty acids over PtSnx/C catalysts | 5.8 | 65 | Citations (PDF) |
| 73 | Aromatics from saturated and unsaturated fatty acids via zeolite catalysis in supercritical water | 3.0 | 35 | Citations (PDF) |
| 74 | Effect of reaction time and algae loading on water-soluble and insoluble biocrude fractions from hydrothermal liquefaction of algae | 3.3 | 64 | Citations (PDF) |
| 75 | Hydrothermal Reactions of Biomolecules Relevant for Microalgae Liquefaction | 3.0 | 164 | Citations (PDF) |
| 76 | Trash to Treasure: From Harmful Algal Blooms to High-Performance Electrodes for Sodium-Ion Batteries | 8.6 | 126 | Citations (PDF) |
| 77 | Catalytic gasification of indole in supercritical water | 14.9 | 41 | Citations (PDF) |
| 78 | Fatty Acids for Nutraceuticals and Biofuels from Hydrothermal Carbonization of Microalgae | 3.0 | 68 | Citations (PDF) |
| 79 | Hydrothermal Treatment of Protein, Polysaccharide, and Lipids Alone and in Mixtures | 4.3 | 226 | Citations (PDF) |
| 80 | Kinetic model for reactions of indole under supercritical water gasification conditions | 8.7 | 43 | Citations (PDF) |
| 81 | Hydrothermal Liquefaction of Bacteria and Yeast Monocultures | 4.3 | 38 | Citations (PDF) |
| 82 | Catalytic Hydrothermal Liquefaction of a Microalga in a Two-Chamber Reactor | 3.0 | 31 | Citations (PDF) |
| 83 | Characterization of biocrudes recovered with and without solvent after hydrothermal liquefaction of algae | 3.3 | 101 | Citations (PDF) |
| 84 | Life Cycle Design of an Algal Biorefinery Featuring Hydrothermal Liquefaction: Effect of Reaction Conditions and an Alternative Pathway Including Microbial Regrowth | 5.4 | 53 | Citations (PDF) |
| 85 | Hydrothermal Catalytic Cracking of Fatty Acids with HZSM-5 | 5.4 | 75 | Citations (PDF) |
| 86 | Development of NiCu Catalysts for Aqueous-Phase Hydrodeoxygenation | 10.0 | 77 | Citations (PDF) |
| 87 | Hydrolytic Cleavage of C–O Linkages in Lignin Model Compounds Catalyzed by Water-Tolerant Lewis Acids | 3.0 | 86 | Citations (PDF) |
| 88 | Deactivation of Pt Catalysts during Hydrothermal Decarboxylation of Butyric Acid | 5.4 | 39 | Citations (PDF) |
| 89 | Hydrothermal catalytic processing of pretreated algal oil: A catalyst screening study | 5.8 | 143 | Citations (PDF) |
| 90 | A general kinetic model for the hydrothermal liquefaction of microalgae | 6.5 | 222 | Citations (PDF) |
| 91 | Stability and activity of Pt and Ni catalysts for hydrodeoxygenation in supercritical water | 4.2 | 28 | Citations (PDF) |
| 92 | Anisole hydrolysis in high temperature water | 2.1 | 16 | Citations (PDF) |
| 93 | A reaction network for the hydrothermal liquefaction of Nannochloropsis sp. | 3.3 | 121 | Citations (PDF) |
| 94 | Reaction pathways and kinetic modeling for phenol gasification in supercritical water | 3.0 | 86 | Citations (PDF) |
| 95 | Process improvements for the supercritical in situ transesterification of carbonized algal biomass | 6.5 | 47 | Citations (PDF) |
| 96 | Fast Hydrothermal Liquefaction ofNannochloropsissp. To Produce Biocrude | 4.3 | 214 | Citations (PDF) |
| 97 | Hydrothermal catalytic production of fuels and chemicals from aquatic biomass | 2.0 | 174 | Citations (PDF) |
| 98 | Feedstocks for fuels and chemicals from algae: Treatment of crude bio-oil over HZSM-5 | 3.3 | 114 | Citations (PDF) |
| 99 | Products, pathways, and kinetics for reactions of indole under supercritical water gasification conditions | 3.0 | 59 | Citations (PDF) |
| 100 | The use of hydrothermal carbonization to recycle nutrients in algal biofuel production | 1.8 | 71 | Citations (PDF) |
| 101 | A perspective on algae, the environment, and energy | 1.8 | 31 | Citations (PDF) |
| 102 | Hydrothermal liquefaction of Nannochloropsis sp.: Systematic study of process variables and analysis of the product fractions | 4.8 | 338 | Citations (PDF) |
| 103 | Kinetics and pathways for an algal phospholipid (1,2-dioleoyl-sn-glycero-3-phosphocholine) in high-temperature (175–350 °C) water | 7.7 | 36 | Citations (PDF) |
| 104 | Intermediates and kinetics for phenol gasification in supercritical water | 2.1 | 80 | Citations (PDF) |
| 105 | Hydrothermal Gasification of Nannochloropsis sp. with Ru/C | 4.3 | 55 | Citations (PDF) |
| 106 | Deoxygenation of benzofuran in supercritical water over a platinum catalyst | 14.9 | 29 | Citations (PDF) |
| 107 | Hydrothermal Reaction Kinetics and Pathways of Phenylalanine Alone and in Binary Mixtures | 4.3 | 88 | Citations (PDF) |
| 108 | Kinetic model for supercritical water gasification of algae | 2.1 | 117 | Citations (PDF) |
| 109 | Reaction kinetics and pathways for phytol in high-temperature water | 8.7 | 48 | Citations (PDF) |
| 110 | Triflate-catalyzed (trans)esterification of lipids within carbonized algal biomass | 6.5 | 31 | Citations (PDF) |
| 111 | Gasification of alga Nannochloropsis sp. in supercritical water | 3.0 | 156 | Citations (PDF) |
| 112 | Hydrothermal Liquefaction of a Microalga with Heterogeneous Catalysts | 3.0 | 565 | Citations (PDF) |
| 113 | Modeling Hydrolysis and Esterification Kinetics for Biofuel Processes | 3.0 | 28 | Citations (PDF) |
| 114 | Characterization of Product Fractions from Hydrothermal Liquefaction of Nannochloropsis sp. and the Influence of Solvents | 4.3 | 198 | Citations (PDF) |
| 115 | Activated Carbons for Hydrothermal Decarboxylation of Fatty Acids | 10.0 | 138 | Citations (PDF) |
| 116 | Catalytic treatment of crude algal bio-oil in supercritical water: optimization studies | 22.6 | 163 | Citations (PDF) |
| 117 | Mechanistic Modeling of Hydrolysis and Esterification for Biofuel Processes | 3.0 | 23 | Citations (PDF) |
| 118 | Catalytic hydrothermal hydrodenitrogenation of pyridine | 14.9 | 95 | Citations (PDF) |
| 119 | Biorefinery sustainability assessment | 1.8 | 43 | Citations (PDF) |
| 120 | Hydrothermal Decarboxylation and Hydrogenation of Fatty Acids over Pt/C | 4.3 | 246 | Citations (PDF) |
| 121 | Upgrading of crude algal bio-oil in supercritical water | 6.5 | 286 | Citations (PDF) |
| 122 | Catalytic hydrotreatment of crude algal bio-oil in supercritical water | 14.9 | 175 | Citations (PDF) |
| 123 | Hydration of 1-Phenyl-1-Propyne in High-Temperature Water with Catalysis by Water-Tolerant Lewis Acids | 3.0 | 22 | Citations (PDF) |
| 124 | Kinetic model for noncatalytic supercritical water gasification of cellulose and lignin | 3.4 | 126 | Citations (PDF) |
| 125 | Kinetics and mechanism of N-substituted amide hydrolysis in high-temperature water | 3.0 | 41 | Citations (PDF) |
| 126 | Noncatalytic esterification of oleic acid in ethanol | 3.0 | 63 | Citations (PDF) |
| 127 | Hydrothermal Liquefaction and Gasification of Nannochloropsis sp. | 4.3 | 707 | Citations (PDF) |
| 128 | Biodiesel Production from Wet Algal Biomass through in Situ Lipid Hydrolysis and Supercritical Transesterification | 4.3 | 269 | Citations (PDF) |
| 129 | Catalytic hydrothermal deoxygenation of palmitic acid | 22.6 | 241 | Citations (PDF) |
| 130 | Effect of Metals on Supercritical Water Gasification of Cellulose and Lignin | 3.0 | 110 | Citations (PDF) |
| 131 | Terephthalic acid synthesis at higher concentrations in high‐temperature liquid water. 1. Effect of oxygen feed method | 3.4 | 20 | Citations (PDF) |
| 132 | Terephthalic acid synthesis at higher concentrations in high‐temperature liquid water. 2. Eliminating undesired byproducts | 3.4 | 15 | Citations (PDF) |
| 133 | A perspective on catalysis in sub- and supercritical water | 3.0 | 314 | Citations (PDF) |
| 134 | Expanded and Updated Results for Supercritical Water Gasification of Cellulose and Lignin in Metal-Free Reactors | 4.3 | 60 | Citations (PDF) |
| 135 | A Rapid Hot-Injection Method for the Improved Hydrothermal Synthesis of CdSe Nanoparticles | 3.0 | 32 | Citations (PDF) |
| 136 | Hydrothermal Decarboxylation of Pentafluorobenzoic Acid and Quinolinic Acid | 3.0 | 13 | Citations (PDF) |
| 137 | Quantifying rate enhancements for acid catalysis in CO2‐enriched high‐temperature water | 3.4 | 60 | Citations (PDF) |
| 138 | Assessment of Noncatalytic Biodiesel Synthesis Using Supercritical Reaction Conditions | 3.0 | 132 | Citations (PDF) |
| 139 | Effect of pH on Ether, Ester, and Carbonate Hydrolysis in High-Temperature Water | 3.0 | 61 | Citations (PDF) |
| 140 | Supercritical Water Gasification of Phenol and Glycine as Models for Plant and Protein Biomass | 4.3 | 73 | Citations (PDF) |
| 141 | Noncatalytic Gasification of Lignin in Supercritical Water | 4.3 | 120 | Citations (PDF) |
| 142 | Gasification of Guaiacol and Phenol in Supercritical Water | 4.3 | 97 | Citations (PDF) |
| 143 | Noncatalytic Gasification of Cellulose in Supercritical Water | 4.3 | 68 | Citations (PDF) |
| 144 | Benzil Rearrangement Kinetics and Pathways in High-Temperature Water | 3.0 | 11 | Citations (PDF) |
| 145 | Hydrothermal Synthesis of CdSe Nanoparticles | 3.0 | 46 | Citations (PDF) |
| 146 | Kinetics and Mechanism of Tetrahydrofuran Synthesis via 1,4-Butanediol Dehydration in High-Temperature Water | 2.3 | 126 | Citations (PDF) |
| 147 | Microcontaminants in Pentachlorophenol Synthesis. 3. Effect of Temperature and Chlorine Flow Rate at End of Run | 3.0 | 2 | Citations (PDF) |
| 148 | Bisphenol E Decomposition in High-Temperature Water | 3.0 | 7 | Citations (PDF) |
| 149 | Microcontaminants in Pentachlorophenol Synthesis. 4. Effect of Nickel and Other Metal Powders | 3.0 | 1 | Citations (PDF) |
| 150 | Effect of Water Density on Methanol Oxidation Kinetics in Supercritical Water | 1.9 | 31 | Citations (PDF) |
| 151 | Microcontaminants in Pentachlorophenol Synthesis. 1. New Bioassay for Microcontaminant Quantification | 3.0 | 7 | Citations (PDF) |
| 152 | Microcontaminants in Pentachlorophenol Synthesis. 2. Effects of Catalyst Identity, Concentration, and Addition Strategy | 3.0 | 3 | Citations (PDF) |
| 153 | Catalysis during methanol gasification in supercritical water | 3.0 | 68 | Citations (PDF) |
| 154 | Supercritical Water Oxidation of Methylamine | 3.0 | 59 | Citations (PDF) |
| 155 | Detailed Chemical Kinetic Modeling of Methylamine in Supercritical Water | 3.0 | 39 | Citations (PDF) |
| 156 | High-Temperature Liquid Water: A Viable Medium for Terephthalic Acid Synthesis | 8.6 | 38 | Citations (PDF) |
| 157 | The benzil–benzilic acid rearrangement in high-temperature water | 7.7 | 32 | Citations (PDF) |
| 158 | Hydrothermal reactions of methylamine | 3.0 | 38 | Citations (PDF) |
| 159 | Recent advances in acid- and base-catalyzed organic synthesis in high-temperature liquid water | 3.9 | 119 | Citations (PDF) |
| 160 | Synthesis of p-isopropenylphenol in high-temperature water | 7.7 | 50 | Citations (PDF) |
| 161 | Kinetics and Mechanism of p-Isopropenylphenol Synthesis via Hydrothermal Cleavage of Bisphenol A | 2.3 | 56 | Citations (PDF) |
| 162 | Reaction Pathways in Pentachlorophenol Synthesis. 1. Temperature-Programmed Reaction | 3.0 | 10 | Citations (PDF) |
| 163 | Reaction Pathways in Pentachlorophenol Synthesis. 2. Isothermal Reaction | 3.0 | 4 | Citations (PDF) |
| 164 | Potential Explanations for the Inhibition and Acceleration of Phenol SCWO by Water | 3.0 | 15 | Citations (PDF) |
| 165 | Kinetics of crossed aldol condensations in high-temperature water | 7.7 | 48 | Citations (PDF) |
| 166 | Water-density effects on phenol oxidation in supercritical water | 3.4 | 15 | Citations (PDF) |
| 167 | Hydrothermal stability of aromatic carboxylic acids | 3.0 | 78 | Citations (PDF) |
| 168 | Inhibition and Acceleration of Phenol Oxidation by Supercritical Water | 3.0 | 35 | Citations (PDF) |
| 169 | Economic and environmental assessment of high-temperature water as a medium for terephthalic acid synthesis | 7.7 | 35 | Citations (PDF) |
| 170 | Acid-Catalyzed Reactions in Carbon Dioxide-Enriched High-Temperature Liquid Water | 3.0 | 83 | Citations (PDF) |
| 171 | Roles of Water for Chemical Reactions in High-Temperature Water | 43.1 | 1,541 | Citations (PDF) |
| 172 | Terephthlic Acid Synthesis in Supercritical Water | 2.6 | 46 | Citations (PDF) |
| 173 | Kinetics and Mechanism of Cyclohexanol Dehydration in High-Temperature Water | 3.0 | 83 | Citations (PDF) |
| 174 | Pyrolysis Kinetics for Long-Chain n-Alkylcyclohexanes | 3.0 | 15 | Citations (PDF) |
| 175 | Catalyst activity, stability, and transformations during oxidation in supercritical water | 14.9 | 76 | Citations (PDF) |
| 176 | Heterogeneous catalysis in supercritical water | 3.9 | 81 | Citations (PDF) |
| 177 | Oxidation kinetics for methane/methanol mixtures in supercritical water | 3.0 | 67 | Citations (PDF) |
| 178 | Mechanisms and kinetics models for hydrocarbon pyrolysis | 4.8 | 202 | Citations (PDF) |
| 179 | Phenol oxidation over CuO/Al2O3 in supercritical water | 14.9 | 70 | Citations (PDF) |
| 180 | Effect of Water Density on Hydrogen Peroxide Dissociation in Supercritical Water. 1. Reaction Equilibrium | 1.9 | 32 | Citations (PDF) |
| 181 | Kinetics of MnO2-Catalyzed Acetic Acid Oxidation in Supercritical Water | 3.0 | 28 | Citations (PDF) |
| 182 | Kinetics of Catalytic Supercritical Water Oxidation of Phenol over TiO2 | 8.6 | 46 | Citations (PDF) |
| 183 | Effect of Water Density on Hydrogen Peroxide Dissociation in Supercritical Water. 2. Reaction Kinetics | 1.9 | 37 | Citations (PDF) |
| 184 | Organic Chemical Reactions in Supercritical Water | 43.1 | 1,382 | Citations (PDF) |
| 185 | Catalytic Oxidation of Phenol over MnO2in Supercritical Water | 3.0 | 48 | Citations (PDF) |
| 186 | Oxidation and Thermolysis of Methoxy-, Nitro-, and Hydroxy-Substituted Phenols in Supercritical Water | 3.0 | 35 | Citations (PDF) |
| 187 | Total Organic Carbon Disappearance Kinetics for the Supercritical Water Oxidation of Monosubstituted Phenols | 8.6 | 38 | Citations (PDF) |
| 188 | Supercritical Water Oxidation Kinetics and Pathways for Ethylphenols, Hydroxyacetophenones, and Other Monosubstituted Phenols | 3.0 | 27 | Citations (PDF) |
| 189 | A reduced mechanism for methanol oxidation in supercritical water | 3.9 | 63 | Citations (PDF) |
| 190 | Role of water in formic acid decomposition | 3.4 | 242 | Citations (PDF) |
| 191 | Fast catalytic oxidation of phenol in supercritical water | 3.9 | 58 | Citations (PDF) |
| 192 | Kinetics and mechanism of methane oxidation in supercritical water | 3.0 | 77 | Citations (PDF) |
| 193 | Decomposition of Formic Acid under Hydrothermal Conditions | 3.0 | 324 | Citations (PDF) |
| 194 | Thermal Decomposition of Substituted Phenols in Supercritical Water | 3.0 | 70 | Citations (PDF) |
| 195 | Thermal Cleavage of the One-Atom Aryl−Hydroaryl Bridge in 2-(1-Naphthylmethyl)-3,4-dihydronaphthalene | 4.3 | 1 | Citations (PDF) |
| 196 | Pyrolysis of Polycyclic Perhydroarenes. 3. 1-n-Decylperhydropyrene and Structure−Reactivity Relations | 3.0 | 4 | Citations (PDF) |
| 197 | Pyrolysis of Polycyclic Perhydroarenes. 2. 1-n-Undecylperhydronaphthalene | 4.3 | 5 | Citations (PDF) |
| 198 | Supercritical Water Oxidation Kinetics, Products, and Pathways for CH3- and CHO-Substituted Phenols | 3.0 | 74 | Citations (PDF) |
| 199 | Critical point and coexistence curve for a flexible, simple point-charge water model | 3.0 | 10 | Citations (PDF) |
| 200 | Fugacity coefficients for free radicals in dense fluids: HO2 in supercritical water | 3.4 | 17 | Citations (PDF) |
| 201 | Pathways, Kinetics, and Mechanisms for 2-Dodecyl-9,10-dihydrophenanthrene Pyrolysis | 3.0 | 4 | Citations (PDF) |
| 202 | Pyrolysis of Polycyclic Perhydroarenes. 1. 9-n-Dodecylperhydroanthracene | 3.0 | 9 | Citations (PDF) |
| 203 | Comparison of rigid and flexible simple point charge water models at supercritical conditions | 2.3 | 68 | Citations (PDF) |
| 204 | Analysis of non-isothermal heterogeneous autocatalytic reactions | 3.9 | 19 | Citations (PDF) |
| 205 | Temperature Dependence of Hydrogen Bonding in Supercritical Water | 3.1 | 193 | Citations (PDF) |
| 206 | Kinetics and Mechanism of Methanol Oxidation in Supercritical Water | 3.1 | 117 | Citations (PDF) |
| 207 | Reactions at supercritical conditions: Applications and fundamentals | 3.4 | 912 | Citations (PDF) |
| 208 | Detailed chemical kinetics model for supercritical water oxidation of C1 compounds and H2 | 3.4 | 108 | Citations (PDF) |
| 209 | Hydrogen-Transfer Mechanisms in 1-Dodecylpyrene Pyrolysis | 4.3 | 26 | Citations (PDF) |
| 210 | Kinetics of Acetic Acid Oxidation in Supercritical Water | 8.6 | 65 | Citations (PDF) |
| 211 | Kinetics and Products from o-Cresol Oxidation in Supercritical Water | 3.0 | 32 | Citations (PDF) |
| 212 | Methane to methanol in supercritical water | 3.0 | 68 | Citations (PDF) |
| 213 | Molecular Dynamics of Supercritical Water Using a Flexible SPC Model | 3.1 | 97 | Citations (PDF) |
| 214 | Are aromatic diluents used in pyrolysis experiments inert? | 3.0 | 7 | Citations (PDF) |
| 215 | Reaction Mechanism for Phenol Oxidation in Supercritical Water | 3.1 | 126 | Citations (PDF) |
| 216 | Reactions of Polycyclic Alkylaromatics. 7. Hydrogenolysis in Binary Mixtures | 4.3 | 9 | Citations (PDF) |
| 217 | 2-Chlorophenol oxidation in supercritical water: Global kinetics and reaction products | 3.4 | 104 | Citations (PDF) |
| 218 | Reactions of polycyclic alkylaromatics: 5. pyrolysis of methylanthracenes | 3.4 | 17 | Citations (PDF) |
| 219 | Reactions of polycyclic alkylaromatics. 4. Hydrogenolysis mechanisms in 1-alkylpyrene pyrolysis | 4.3 | 37 | Citations (PDF) |
| 220 | Phenol oxidation pathways in supercritical water | 3.0 | 100 | Citations (PDF) |
| 221 | Reply to comments on "Phenol oxidation in supercritical water: formation of dibenzofuran, dibenzo-p-dioxin, and related compounds" | 8.6 | 2 | Citations (PDF) |
| 222 | Kinetics of carbon dioxide formation from the oxidation of phenols in supercritical water | 8.6 | 45 | Citations (PDF) |
| 223 | Kinetics of phenol oxidation in supercritical water | 3.4 | 119 | Citations (PDF) |
| 224 | Reactions of polycyclic alkylaromatics. 1. Pathways, kinetics, and mechanisms for 1-dodecylpyrene pyrolysis | 3.0 | 20 | Citations (PDF) |
| 225 | Reactions of polycyclic alkylaromatics. 2. Pyrolysis of 1,3-diarylpropanes | 4.3 | 22 | Citations (PDF) |
| 226 | Phenol oxidation in supercritical water: formation of dibenzofuran, dibenzo-p-dioxin, and related compounds | 8.6 | 69 | Citations (PDF) |
| 227 | Reactions of polycyclic alkylaromatics: Structure and reactivity | 3.4 | 53 | Citations (PDF) |
| 228 | Pyrolysis of a binary mixture of complex hydrocarbons: Reaction modeling | 3.9 | 18 | Citations (PDF) |
| 229 | Phenol oxidation in supercritical water | 3.0 | 115 | Citations (PDF) |
| 230 | Pyrolysis kinetics for long-chain n-alkylbenzenes: experimental and mechanistic modeling results | 3.0 | 26 | Citations (PDF) |
| 231 | Asphaltene reaction pathways—v. Chemical and mathematical modeling | 3.9 | 56 | Citations (PDF) |
| 232 | Kinetics of coupled reactions: Lumping pentadecylbenzene pyrolysis into three parallel chains | 3.9 | 22 | Citations (PDF) |
| 233 | Effect of reactant size reductions on catalytic reaction rates | 3.0 | 3 | Citations (PDF) |
| 234 | Autocatalysis and aryl-alkyl bond cleavage in 1-dodecylpyrene pyrolysis | 3.0 | 33 | Citations (PDF) |
| 235 | Asphaltene reaction pathways. 4. Pyrolysis of tridecylcyclohexane and 2-ethyltetralin | 3.0 | 53 | Citations (PDF) |
| 236 | Asphaltene reaction pathways. 3. Effect of reaction environment | 4.3 | 85 | Citations (PDF) |
| 237 | Asphaltene reaction pathways. 2. Pyrolysis of n-pentadecylbenzene | 3.0 | 94 | Citations (PDF) |
| 238 | Discrimination between molecular and free-radical models of 1-phenyldodecane pyrolysis | 3.0 | 27 | Citations (PDF) |
| 239 | Asphaltene reaction pathways. 1. Thermolysis | 0.5 | 97 | Citations (PDF) |
| 240 | Fast and isothermal acetolysis of poly(ethylene terephthalate): Reaction pathways and kinetic modeling | 8.7 | 1 | Citations (PDF) |
| 241 | Integrated Life Cycle Assessment and Techno-economic Analysis for Hydrothermal Liquefaction of Carbonaceous Municipal Solid Waste with Variable Composition | 5.4 | 2 | Citations (PDF) |
| 242 | Driving Hydrolysis and Acetolysis of Poly(ethylene
terephthalate) (PET) by Microwave and Thermal Energy Inputs: A Comparative
Study | 3.4 | 1 | Citations (PDF) |
| 243 | Reaction Network and Kinetics Model for Neutral Hydrolysis of Poly(ethylene terephthalate) | 3.0 | 3 | Citations (PDF) |
| 244 | Hydrothermal Liquefaction of Spent K-Cups | 1.8 | 0 | Citations (PDF) |
| 245 | Molecular Recycling
of Polyethylene Terephthalate
(PET) Waste via Ytterbium Triflate-Catalyzed Hydrolysis | 3.4 | 0 | Citations (PDF) |
| 246 | Optimizing Ash Content
in Biomass Hydrothermal Liquefaction
through Machine Learning and Sustainability Assessment | 8.6 | 0 | Citations (PDF) |