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246 peer-reviewed articles • 17,634 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1Influence of Metal Salts on the Hydrolysis of Postconsumer Poly(ethylene Terephthalate)
ACS ES&T Engineering, 2025, 5, 1140-1148
5.08Citations (PDF)
2General component additivity, reaction engineering, and machine learning models for hydrothermal liquefaction
RSC Sustainability, 2025, 3, 1788-1799
4.36Citations (PDF)
3Understanding PET Hydrolysis via Reactive Molecular Dynamics Simulation and Experimental Investigation
Journal of Physical Chemistry B, 2025, 129, 6594-6603
2.112Citations (PDF)
4Acid catalyst screening for hydrolysis of post-consumer PET waste and exploration of acidolysis
Green Chemistry, 2024, 26, 1964-1974
7.767Citations (PDF)
5Review and assessment of models for predicting biocrude yields from hydrothermal liquefaction of biomass
RSC Sustainability, 2024, 2, 736-756
4.333Citations (PDF)
6Fast hydrolysis for chemical recycling of polyethylene terephthalate (PET)
RSC Sustainability, 2024, 2, 1508-1514
4.335Citations (PDF)
7Renewable Fuels and Chemical Recycling of Plastics via Hydrothermal Liquefaction
Accounts of Chemical Research, 2024, 57, 3386-3396
11.826Citations (PDF)
8Statistical Models for Predicting Oil Composition from Hydrothermal Liquefaction of Biomass
Energy & Fuels, 2023, 37, 6619-6628
4.317Citations (PDF)
9Neutral Hydrolysis of Post-Consumer Polyethylene Terephthalate Waste in Different Phases5.490Citations (PDF)
10Hydrothermal liquefaction of starch using homogeneous and heterogeneous co-catalysts
Chemical Engineering Journal, 2023, 468, 143570
8.712Citations (PDF)
11Recovery of Energy and Nitrogen via Two-Stage Valorization of Food Waste3.010Citations (PDF)
12Hydrothermal liquefaction of polysaccharide feedstocks with heterogeneous catalysts
Bioresource Technology, 2022, 352, 127100
6.524Citations (PDF)
13Effect of Cellulose and Polypropylene on Hydrolysis of Polyethylene Terephthalate for Chemical Recycling
ACS Engineering Au, 2022, 2, 507-514
6.127Citations (PDF)
14Heterogeneous catalyst stability during hydrodenitrogenation in supercritical water
Catalysis Today, 2021, 371, 171-178
3.99Citations (PDF)
15Ring-opening and hydrodenitrogenation of indole under hydrothermal conditions over Ni, Pt, Ru, and Ni-Ru bimetallic catalysts
Chemical Engineering Journal, 2021, 406, 126853
8.760Citations (PDF)
16A molecular, elemental, and multiphase kinetic model for the hydrothermal liquefaction of microalgae
Chemical Engineering Journal, 2021, 407, 127007
8.744Citations (PDF)
17Screening Potential Catalysts for the Hydrothermal Liquefaction of Food Waste
Energy & Fuels, 2021, 35, 9437-9449
4.319Citations (PDF)
18Effects of Potassium Phosphates and Other Additives on Biocrude Production and Composition from Hydrothermal Liquefaction of Pectin and Chitin3.08Citations (PDF)
19Synergistic interactions during hydrothermal liquefaction of plastics and biomolecules
Chemical Engineering Journal, 2021, 417, 129268
8.7115Citations (PDF)
20Hydrothermal carbonization of simulated food waste for recovery of fatty acids and nutrients
Bioresource Technology, 2021, 341, 125872
6.543Citations (PDF)
21Effect of Process Variables on Food Waste Valorization via Hydrothermal Liquefaction
ACS ES&T Engineering, 2021, 1, 363-374
5.0105Citations (PDF)
22Identifying and Modeling Interactions between Biomass Components during Hydrothermal Liquefaction in Sub-, Near-, and Supercritical Water5.438Citations (PDF)
23Component additivity model for plastics—biomass mixtures during hydrothermal liquefaction in sub-, near-, and supercritical water
IScience, 2021, 24, 103498
2.524Citations (PDF)
24Fate of iron during hydrothermal liquefaction of hemin3.07Citations (PDF)
25Fast and isothermal hydrothermal liquefaction of sludge at different severities: Reaction products, pathways, and kinetics
Applied Energy, 2020, 260, 114312
9.0107Citations (PDF)
26Oil from plastic via hydrothermal liquefaction: Production and characterization
Applied Energy, 2020, 278, 115673
9.0187Citations (PDF)
27Effects of Potassium Phosphates on Hydrothermal Liquefaction of Triglyceride, Protein, and Polysaccharide
Energy & Fuels, 2020, 34, 15313-15321
4.337Citations (PDF)
28Effect of Additives on Hydrothermal Liquefaction of Polysaccharides3.09Citations (PDF)
29Destruction of Perfluoroalkyl Acids Accumulated in Typha latifolia through Hydrothermal Liquefaction5.460Citations (PDF)
30Fast and Isothermal Hydrothermal Liquefaction of Polysaccharide Feedstocks5.463Citations (PDF)
31Reaction pathways and kinetics of tryptophan in hot, compressed water
Chemical Engineering Journal, 2020, 390, 124600
8.724Citations (PDF)
32110th Anniversary: Influence of Solvents on Biocrude from Hydrothermal Liquefaction of Soybean Oil, Soy Protein, Cellulose, Xylose, and Lignin, and Their Quinary Mixture3.041Citations (PDF)
33Biodiversity Improves Life Cycle Sustainability Metrics in Algal Biofuel Production8.623Citations (PDF)
34The individual and synergistic impacts of feedstock characteristics and reaction conditions on the aqueous co-product from hydrothermal liquefaction
Algal Research, 2019, 42, 101568
3.314Citations (PDF)
35Biocrude Production from Fast and Isothermal Hydrothermal Liquefaction of Chitin
Energy & Fuels, 2019, 33, 11328-11338
4.331Citations (PDF)
36Using Solvents To Reduce the Metal Content in Crude Bio-oil from Hydrothermal Liquefaction of Microalgae3.026Citations (PDF)
37Reaction pathways and kinetics for tetra-alanine in hot, compressed liquid water2.07Citations (PDF)
38Stability and activity maintenance of sol-gel Ni-MxOy (M=Ti, Zr, Ta) catalysts during continuous gasification of glycerol in supercritical water3.030Citations (PDF)
39The independent and coupled effects of feedstock characteristics and reaction conditions on biocrude production by hydrothermal liquefaction
Applied Energy, 2019, 235, 714-728
9.049Citations (PDF)
40Supercritical water gasification of phenol over Ni-Ru bimetallic catalysts
Water Research, 2019, 152, 12-20
10.049Citations (PDF)
41Hydrothermal reaction of tryptophan over Ni-based bimetallic catalysts3.031Citations (PDF)
42Catalyst Oxidation and Dissolution in Supercritical Water
Chemistry of Materials, 2018, 30, 1218-1229
4.834Citations (PDF)
43Metals and Other Elements in Biocrude from Fast and Isothermal Hydrothermal Liquefaction of Microalgae
Energy & Fuels, 2018, 32, 4118-4126
4.345Citations (PDF)
44Stability and activity maintenance of Al2O3- and carbon nanotube-supported Ni catalysts during continuous gasification of glycerol in supercritical water3.037Citations (PDF)
45Supercritical water upgrading of water-insoluble and water-soluble biocrudes from hydrothermal liquefaction of Nannochloropsis microalgae3.048Citations (PDF)
46Synergistic and Antagonistic Interactions during Hydrothermal Liquefaction of Soybean Oil, Soy Protein, Cellulose, Xylose, and Lignin5.4173Citations (PDF)
47Hydrothermal Liquefaction of Model Food Waste Biomolecules and Ternary Mixtures under Isothermal and Fast Conditions5.464Citations (PDF)
48Ecological Engineering Helps Maximize Function in Algal Oil Production2.49Citations (PDF)
49Biodiversity improves the ecological design of sustainable biofuel systems
GCB Bioenergy, 2018, 10, 752-765
2.928Citations (PDF)
50Thermodynamic Analysis of Catalyst Stability in Hydrothermal Reaction Media3.028Citations (PDF)
51Hydrothermal liquefaction of sewage sludge under isothermal and fast conditions
Bioresource Technology, 2017, 232, 27-34
6.5192Citations (PDF)
52Modeling the effects of microalga biochemical content on the kinetics and biocrude yields from hydrothermal liquefaction
Bioresource Technology, 2017, 239, 144-150
6.5101Citations (PDF)
53Effect of temperature, water loading, and Ru/C catalyst on water-insoluble and water-soluble biocrude fractions from hydrothermal liquefaction of algae
Bioresource Technology, 2017, 239, 1-6
6.562Citations (PDF)
54Algal polycultures enhance coproduct recycling from hydrothermal liquefaction
Bioresource Technology, 2017, 224, 630-638
6.560Citations (PDF)
55Ecological Stoichiometry Meets Ecological Engineering: Using Polycultures to Enhance the Multifunctionality of Algal Biocrude Systems8.624Citations (PDF)
56Influence of process conditions and interventions on metals content in biocrude from hydrothermal liquefaction of microalgae
Algal Research, 2017, 26, 131-134
3.337Citations (PDF)
57Influence of biodiversity, biochemical composition, and species identity on the quality of biomass and biocrude oil produced via hydrothermal liquefaction
Algal Research, 2017, 26, 203-214
3.335Citations (PDF)
58Molecular and Lumped Products from Hydrothermal Liquefaction of Bovine Serum Albumin5.435Citations (PDF)
59“Algae and Environmental Sustainability”0.81Citations (PDF)
60Behavior of Cholesterol and Catalysts in Supercritical Water
Energy & Fuels, 2016, 30, 7937-7946
4.38Citations (PDF)
61Near- and supercritical ethanol treatment of biocrude from hydrothermal liquefaction of microalgae
Bioresource Technology, 2016, 211, 779-782
6.531Citations (PDF)
62Products and Kinetics for Isothermal Hydrothermal Liquefaction of Soy Protein Concentrate5.471Citations (PDF)
63A quantitative kinetic model for the fast and isothermal hydrothermal liquefaction of Nannochloropsis sp.
Bioresource Technology, 2016, 214, 102-111
6.5114Citations (PDF)
64Products, Pathways, and Kinetics for the Fast Hydrothermal Liquefaction of Soy Protein Isolate5.439Citations (PDF)
65Power of Plankton: Effects of Algal Biodiversity on Biocrude Production and Stability8.631Citations (PDF)
66Effects of processing conditions on biocrude yields from fast hydrothermal liquefaction of microalgae
Bioresource Technology, 2016, 206, 290-293
6.553Citations (PDF)
67Hydrocarbon chemicals from hydrothermal processing of renewable oils over HZSM-52.210Citations (PDF)
68Reaction pathways and kinetics of cholesterol in high-temperature water
Chemical Engineering Journal, 2015, 265, 129-137
8.720Citations (PDF)
69Supercritical water gasification of lipid-extracted hydrochar to recover energy and nutrients3.028Citations (PDF)
70Growing Algae for Biodiesel on Direct Sunlight or Sugars: A Comparative Life Cycle Assessment5.443Citations (PDF)
71Catalytic Hydrothermal Liquefaction of Soy Protein Concentrate
Energy & Fuels, 2015, 29, 3208-3214
4.332Citations (PDF)
72Hydrothermal decarboxylation of unsaturated fatty acids over PtSnx/C catalysts
Fuel, 2015, 156, 219-224
5.865Citations (PDF)
73Aromatics from saturated and unsaturated fatty acids via zeolite catalysis in supercritical water3.035Citations (PDF)
74Effect of reaction time and algae loading on water-soluble and insoluble biocrude fractions from hydrothermal liquefaction of algae
Algal Research, 2015, 12, 60-67
3.364Citations (PDF)
75Hydrothermal Reactions of Biomolecules Relevant for Microalgae Liquefaction3.0164Citations (PDF)
76Trash to Treasure: From Harmful Algal Blooms to High-Performance Electrodes for Sodium-Ion Batteries8.6126Citations (PDF)
77Catalytic gasification of indole in supercritical water
Applied Catalysis B: Environmental, 2015, 166-167, 202-210
14.941Citations (PDF)
78Fatty Acids for Nutraceuticals and Biofuels from Hydrothermal Carbonization of Microalgae3.068Citations (PDF)
79Hydrothermal Treatment of Protein, Polysaccharide, and Lipids Alone and in Mixtures
Energy & Fuels, 2014, 28, 7501-7509
4.3226Citations (PDF)
80Kinetic model for reactions of indole under supercritical water gasification conditions
Chemical Engineering Journal, 2014, 241, 327-335
8.743Citations (PDF)
81Hydrothermal Liquefaction of Bacteria and Yeast Monocultures
Energy & Fuels, 2014, 28, 67-75
4.338Citations (PDF)
82Catalytic Hydrothermal Liquefaction of a Microalga in a Two-Chamber Reactor3.031Citations (PDF)
83Characterization of biocrudes recovered with and without solvent after hydrothermal liquefaction of algae
Algal Research, 2014, 6, 1-7
3.3101Citations (PDF)
84Life Cycle Design of an Algal Biorefinery Featuring Hydrothermal Liquefaction: Effect of Reaction Conditions and an Alternative Pathway Including Microbial Regrowth5.453Citations (PDF)
85Hydrothermal Catalytic Cracking of Fatty Acids with HZSM-55.475Citations (PDF)
86Development of NiCu Catalysts for Aqueous-Phase Hydrodeoxygenation
ACS Catalysis, 2014, 4, 2605-2615
10.077Citations (PDF)
87Hydrolytic Cleavage of C–O Linkages in Lignin Model Compounds Catalyzed by Water-Tolerant Lewis Acids3.086Citations (PDF)
88Deactivation of Pt Catalysts during Hydrothermal Decarboxylation of Butyric Acid5.439Citations (PDF)
89Hydrothermal catalytic processing of pretreated algal oil: A catalyst screening study
Fuel, 2014, 120, 141-149
5.8143Citations (PDF)
90A general kinetic model for the hydrothermal liquefaction of microalgae
Bioresource Technology, 2014, 163, 123-127
6.5222Citations (PDF)
91Stability and activity of Pt and Ni catalysts for hydrodeoxygenation in supercritical water
Journal of Molecular Catalysis A, 2014, 388-389, 56-65
4.228Citations (PDF)
92Anisole hydrolysis in high temperature water2.116Citations (PDF)
93A reaction network for the hydrothermal liquefaction of Nannochloropsis sp.
Algal Research, 2013, 2, 416-425
3.3121Citations (PDF)
94Reaction pathways and kinetic modeling for phenol gasification in supercritical water3.086Citations (PDF)
95Process improvements for the supercritical in situ transesterification of carbonized algal biomass
Bioresource Technology, 2013, 136, 556-564
6.547Citations (PDF)
96Fast Hydrothermal Liquefaction ofNannochloropsissp. To Produce Biocrude
Energy & Fuels, 2013, 27, 1391-1398
4.3214Citations (PDF)
97Hydrothermal catalytic production of fuels and chemicals from aquatic biomass2.0174Citations (PDF)
98Feedstocks for fuels and chemicals from algae: Treatment of crude bio-oil over HZSM-5
Algal Research, 2013, 2, 154-163
3.3114Citations (PDF)
99Products, pathways, and kinetics for reactions of indole under supercritical water gasification conditions3.059Citations (PDF)
100The use of hydrothermal carbonization to recycle nutrients in algal biofuel production1.871Citations (PDF)
101A perspective on algae, the environment, and energy1.831Citations (PDF)
102Hydrothermal liquefaction of Nannochloropsis sp.: Systematic study of process variables and analysis of the product fractions
Biomass and Bioenergy, 2012, 46, 317-331
4.8338Citations (PDF)
103Kinetics and pathways for an algal phospholipid (1,2-dioleoyl-sn-glycero-3-phosphocholine) in high-temperature (175–350 °C) water
Green Chemistry, 2012, 14, 2856
7.736Citations (PDF)
104Intermediates and kinetics for phenol gasification in supercritical water2.180Citations (PDF)
105Hydrothermal Gasification of Nannochloropsis sp. with Ru/C
Energy & Fuels, 2012, 26, 4575-4582
4.355Citations (PDF)
106Deoxygenation of benzofuran in supercritical water over a platinum catalyst
Applied Catalysis B: Environmental, 2012, 123-124, 357-366
14.929Citations (PDF)
107Hydrothermal Reaction Kinetics and Pathways of Phenylalanine Alone and in Binary Mixtures
ChemSusChem, 2012, 5, 1743-1757
4.388Citations (PDF)
108Kinetic model for supercritical water gasification of algae2.1117Citations (PDF)
109Reaction kinetics and pathways for phytol in high-temperature water
Chemical Engineering Journal, 2012, 189-190, 336-345
8.748Citations (PDF)
110Triflate-catalyzed (trans)esterification of lipids within carbonized algal biomass
Bioresource Technology, 2012, 111, 222-229
6.531Citations (PDF)
111Gasification of alga Nannochloropsis sp. in supercritical water3.0156Citations (PDF)
112Hydrothermal Liquefaction of a Microalga with Heterogeneous Catalysts3.0565Citations (PDF)
113Modeling Hydrolysis and Esterification Kinetics for Biofuel Processes3.028Citations (PDF)
114Characterization of Product Fractions from Hydrothermal Liquefaction of Nannochloropsis sp. and the Influence of Solvents
Energy & Fuels, 2011, 25, 3235-3243
4.3198Citations (PDF)
115Activated Carbons for Hydrothermal Decarboxylation of Fatty Acids
ACS Catalysis, 2011, 1, 227-231
10.0138Citations (PDF)
116Catalytic treatment of crude algal bio-oil in supercritical water: optimization studies22.6163Citations (PDF)
117Mechanistic Modeling of Hydrolysis and Esterification for Biofuel Processes3.023Citations (PDF)
118Catalytic hydrothermal hydrodenitrogenation of pyridine14.995Citations (PDF)
119Biorefinery sustainability assessment1.843Citations (PDF)
120Hydrothermal Decarboxylation and Hydrogenation of Fatty Acids over Pt/C
ChemSusChem, 2011, 4, 481-486
4.3246Citations (PDF)
121Upgrading of crude algal bio-oil in supercritical water
Bioresource Technology, 2011, 102, 1899-1906
6.5286Citations (PDF)
122Catalytic hydrotreatment of crude algal bio-oil in supercritical water14.9175Citations (PDF)
123Hydration of 1-Phenyl-1-Propyne in High-Temperature Water with Catalysis by Water-Tolerant Lewis Acids3.022Citations (PDF)
124Kinetic model for noncatalytic supercritical water gasification of cellulose and lignin
AICHE Journal, 2010, 56, 2412-2420
3.4126Citations (PDF)
125Kinetics and mechanism of N-substituted amide hydrolysis in high-temperature water3.041Citations (PDF)
126Noncatalytic esterification of oleic acid in ethanol3.063Citations (PDF)
127Hydrothermal Liquefaction and Gasification of Nannochloropsis sp.
Energy & Fuels, 2010, 24, 3639-3646
4.3707Citations (PDF)
128Biodiesel Production from Wet Algal Biomass through in Situ Lipid Hydrolysis and Supercritical Transesterification
Energy & Fuels, 2010, 24, 5235-5243
4.3269Citations (PDF)
129Catalytic hydrothermal deoxygenation of palmitic acid22.6241Citations (PDF)
130Effect of Metals on Supercritical Water Gasification of Cellulose and Lignin3.0110Citations (PDF)
131Terephthalic acid synthesis at higher concentrations in high‐temperature liquid water. 1. Effect of oxygen feed method
AICHE Journal, 2009, 55, 710-716
3.420Citations (PDF)
132Terephthalic acid synthesis at higher concentrations in high‐temperature liquid water. 2. Eliminating undesired byproducts
AICHE Journal, 2009, 55, 1530-1537
3.415Citations (PDF)
133A perspective on catalysis in sub- and supercritical water3.0314Citations (PDF)
134Expanded and Updated Results for Supercritical Water Gasification of Cellulose and Lignin in Metal-Free Reactors
Energy & Fuels, 2009, 23, 6213-6221
4.360Citations (PDF)
135A Rapid Hot-Injection Method for the Improved Hydrothermal Synthesis of CdSe Nanoparticles3.032Citations (PDF)
136Hydrothermal Decarboxylation of Pentafluorobenzoic Acid and Quinolinic Acid3.013Citations (PDF)
137Quantifying rate enhancements for acid catalysis in CO2‐enriched high‐temperature water
AICHE Journal, 2008, 54, 516-528
3.460Citations (PDF)
138Assessment of Noncatalytic Biodiesel Synthesis Using Supercritical Reaction Conditions3.0132Citations (PDF)
139Effect of pH on Ether, Ester, and Carbonate Hydrolysis in High-Temperature Water3.061Citations (PDF)
140Supercritical Water Gasification of Phenol and Glycine as Models for Plant and Protein Biomass
Energy & Fuels, 2008, 22, 871-877
4.373Citations (PDF)
141Noncatalytic Gasification of Lignin in Supercritical Water
Energy & Fuels, 2008, 22, 1328-1334
4.3120Citations (PDF)
142Gasification of Guaiacol and Phenol in Supercritical Water
Energy & Fuels, 2007, 21, 2340-2345
4.397Citations (PDF)
143Noncatalytic Gasification of Cellulose in Supercritical Water
Energy & Fuels, 2007, 21, 3637-3643
4.368Citations (PDF)
144Benzil Rearrangement Kinetics and Pathways in High-Temperature Water3.011Citations (PDF)
145Hydrothermal Synthesis of CdSe Nanoparticles3.046Citations (PDF)
146Kinetics and Mechanism of Tetrahydrofuran Synthesis via 1,4-Butanediol Dehydration in High-Temperature Water
Journal of Organic Chemistry, 2006, 71, 6229-6239
2.3126Citations (PDF)
147Microcontaminants in Pentachlorophenol Synthesis. 3. Effect of Temperature and Chlorine Flow Rate at End of Run3.02Citations (PDF)
148Bisphenol E Decomposition in High-Temperature Water3.07Citations (PDF)
149Microcontaminants in Pentachlorophenol Synthesis. 4. Effect of Nickel and Other Metal Powders3.01Citations (PDF)
150Effect of Water Density on Methanol Oxidation Kinetics in Supercritical Water
Journal of Physical Chemistry A, 2006, 110, 3627-3632
1.931Citations (PDF)
151Microcontaminants in Pentachlorophenol Synthesis. 1. New Bioassay for Microcontaminant Quantification3.07Citations (PDF)
152Microcontaminants in Pentachlorophenol Synthesis. 2. Effects of Catalyst Identity, Concentration, and Addition Strategy3.03Citations (PDF)
153Catalysis during methanol gasification in supercritical water3.068Citations (PDF)
154Supercritical Water Oxidation of Methylamine3.059Citations (PDF)
155Detailed Chemical Kinetic Modeling of Methylamine in Supercritical Water3.039Citations (PDF)
156High-Temperature Liquid Water:  A Viable Medium for Terephthalic Acid Synthesis8.638Citations (PDF)
157The benzil–benzilic acid rearrangement in high-temperature water
Green Chemistry, 2005, 7, 800
7.732Citations (PDF)
158Hydrothermal reactions of methylamine3.038Citations (PDF)
159Recent advances in acid- and base-catalyzed organic synthesis in high-temperature liquid water
Chemical Engineering Science, 2004, 59, 4903-4909
3.9119Citations (PDF)
160Synthesis of p-isopropenylphenol in high-temperature water
Green Chemistry, 2004, 6, 222
7.750Citations (PDF)
161Kinetics and Mechanism of p-Isopropenylphenol Synthesis via Hydrothermal Cleavage of Bisphenol A
Journal of Organic Chemistry, 2004, 69, 4724-4731
2.356Citations (PDF)
162Reaction Pathways in Pentachlorophenol Synthesis. 1. Temperature-Programmed Reaction3.010Citations (PDF)
163Reaction Pathways in Pentachlorophenol Synthesis. 2. Isothermal Reaction3.04Citations (PDF)
164Potential Explanations for the Inhibition and Acceleration of Phenol SCWO by Water3.015Citations (PDF)
165Kinetics of crossed aldol condensations in high-temperature water
Green Chemistry, 2004, 6, 227
7.748Citations (PDF)
166Water-density effects on phenol oxidation in supercritical water
AICHE Journal, 2003, 49, 718-726
3.415Citations (PDF)
167Hydrothermal stability of aromatic carboxylic acids3.078Citations (PDF)
168Inhibition and Acceleration of Phenol Oxidation by Supercritical Water3.035Citations (PDF)
169Economic and environmental assessment of high-temperature water as a medium for terephthalic acid synthesis
Green Chemistry, 2003, 5, 649
7.735Citations (PDF)
170Acid-Catalyzed Reactions in Carbon Dioxide-Enriched High-Temperature Liquid Water3.083Citations (PDF)
171Roles of Water for Chemical Reactions in High-Temperature Water
Chemical Reviews, 2002, 102, 2725-2750
43.11,541Citations (PDF)
172Terephthlic Acid Synthesis in Supercritical Water2.646Citations (PDF)
173Kinetics and Mechanism of Cyclohexanol Dehydration in High-Temperature Water3.083Citations (PDF)
174Pyrolysis Kinetics for Long-Chain n-Alkylcyclohexanes3.015Citations (PDF)
175Catalyst activity, stability, and transformations during oxidation in supercritical water14.976Citations (PDF)
176Heterogeneous catalysis in supercritical water
Catalysis Today, 2000, 62, 167-173
3.981Citations (PDF)
177Oxidation kinetics for methane/methanol mixtures in supercritical water3.067Citations (PDF)
178Mechanisms and kinetics models for hydrocarbon pyrolysis4.8202Citations (PDF)
179Phenol oxidation over CuO/Al2O3 in supercritical water14.970Citations (PDF)
180Effect of Water Density on Hydrogen Peroxide Dissociation in Supercritical Water. 1. Reaction Equilibrium
Journal of Physical Chemistry A, 2000, 104, 4433-4440
1.932Citations (PDF)
181Kinetics of MnO2-Catalyzed Acetic Acid Oxidation in Supercritical Water3.028Citations (PDF)
182Kinetics of Catalytic Supercritical Water Oxidation of Phenol over TiO28.646Citations (PDF)
183Effect of Water Density on Hydrogen Peroxide Dissociation in Supercritical Water. 2. Reaction Kinetics
Journal of Physical Chemistry A, 2000, 104, 4441-4448
1.937Citations (PDF)
184Organic Chemical Reactions in Supercritical Water
Chemical Reviews, 1999, 99, 603-622
43.11,382Citations (PDF)
185Catalytic Oxidation of Phenol over MnO2in Supercritical Water3.048Citations (PDF)
186Oxidation and Thermolysis of Methoxy-, Nitro-, and Hydroxy-Substituted Phenols in Supercritical Water3.035Citations (PDF)
187Total Organic Carbon Disappearance Kinetics for the Supercritical Water Oxidation of Monosubstituted Phenols8.638Citations (PDF)
188Supercritical Water Oxidation Kinetics and Pathways for Ethylphenols, Hydroxyacetophenones, and Other Monosubstituted Phenols3.027Citations (PDF)
189A reduced mechanism for methanol oxidation in supercritical water
Chemical Engineering Science, 1998, 53, 857-867
3.963Citations (PDF)
190Role of water in formic acid decomposition
AICHE Journal, 1998, 44, 405-415
3.4242Citations (PDF)
191Fast catalytic oxidation of phenol in supercritical water
Catalysis Today, 1998, 40, 333-342
3.958Citations (PDF)
192Kinetics and mechanism of methane oxidation in supercritical water3.077Citations (PDF)
193Decomposition of Formic Acid under Hydrothermal Conditions3.0324Citations (PDF)
194Thermal Decomposition of Substituted Phenols in Supercritical Water3.070Citations (PDF)
195Thermal Cleavage of the One-Atom Aryl−Hydroaryl Bridge in 2-(1-Naphthylmethyl)-3,4-dihydronaphthalene
Energy & Fuels, 1997, 11, 1264-1271
4.31Citations (PDF)
196Pyrolysis of Polycyclic Perhydroarenes. 3. 1-n-Decylperhydropyrene and Structure−Reactivity Relations3.04Citations (PDF)
197Pyrolysis of Polycyclic Perhydroarenes. 2. 1-n-Undecylperhydronaphthalene
Energy & Fuels, 1997, 11, 107-115
4.35Citations (PDF)
198Supercritical Water Oxidation Kinetics, Products, and Pathways for CH3- and CHO-Substituted Phenols3.074Citations (PDF)
199Critical point and coexistence curve for a flexible, simple point-charge water model3.010Citations (PDF)
200Fugacity coefficients for free radicals in dense fluids: HO2 in supercritical water
AICHE Journal, 1997, 43, 1287-1299
3.417Citations (PDF)
201Pathways, Kinetics, and Mechanisms for 2-Dodecyl-9,10-dihydrophenanthrene Pyrolysis3.04Citations (PDF)
202Pyrolysis of Polycyclic Perhydroarenes. 1. 9-n-Dodecylperhydroanthracene3.09Citations (PDF)
203Comparison of rigid and flexible simple point charge water models at supercritical conditions2.368Citations (PDF)
204Analysis of non-isothermal heterogeneous autocatalytic reactions
Chemical Engineering Science, 1996, 51, 851-858
3.919Citations (PDF)
205Temperature Dependence of Hydrogen Bonding in Supercritical Water3.1193Citations (PDF)
206Kinetics and Mechanism of Methanol Oxidation in Supercritical Water
The Journal of Physical Chemistry, 1996, 100, 15834-15842
3.1117Citations (PDF)
207Reactions at supercritical conditions: Applications and fundamentals
AICHE Journal, 1995, 41, 1723-1778
3.4912Citations (PDF)
208Detailed chemical kinetics model for supercritical water oxidation of C1 compounds and H2
AICHE Journal, 1995, 41, 1874-1888
3.4108Citations (PDF)
209Hydrogen-Transfer Mechanisms in 1-Dodecylpyrene Pyrolysis
Energy & Fuels, 1995, 9, 590-598
4.326Citations (PDF)
210Kinetics of Acetic Acid Oxidation in Supercritical Water8.665Citations (PDF)
211Kinetics and Products from o-Cresol Oxidation in Supercritical Water3.032Citations (PDF)
212Methane to methanol in supercritical water3.068Citations (PDF)
213Molecular Dynamics of Supercritical Water Using a Flexible SPC Model
The Journal of Physical Chemistry, 1994, 98, 13067-13076
3.197Citations (PDF)
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215Reaction Mechanism for Phenol Oxidation in Supercritical Water
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216Reactions of Polycyclic Alkylaromatics. 7. Hydrogenolysis in Binary Mixtures
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2172-Chlorophenol oxidation in supercritical water: Global kinetics and reaction products
AICHE Journal, 1993, 39, 178-187
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218Reactions of polycyclic alkylaromatics: 5. pyrolysis of methylanthracenes
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219Reactions of polycyclic alkylaromatics. 4. Hydrogenolysis mechanisms in 1-alkylpyrene pyrolysis
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223Kinetics of phenol oxidation in supercritical water
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224Reactions of polycyclic alkylaromatics. 1. Pathways, kinetics, and mechanisms for 1-dodecylpyrene pyrolysis3.020Citations (PDF)
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226Phenol oxidation in supercritical water: formation of dibenzofuran, dibenzo-p-dioxin, and related compounds8.669Citations (PDF)
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236Asphaltene reaction pathways. 3. Effect of reaction environment
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