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 68 checked references that resolve
resolves10.1021/ef970152oA Study of Multilayer Adsorption of Asphaltenes on Glass Surfaces by Photothermal Surface Deformation. Relation of This Adsorption to Aggregate Formation in Solution
resolves10.1021/ef200170aFormation of Archipelago Structures during Thermal Cracking Implicates a Chemical Mechanism for the Formation of Petroleum Asphaltenes
resolves10.2118/2005-016Laboratory Investigation of an Innovative Solvent Based Enhanced Recovery and In Situ Upgrading Technique
resolves10.1038/207290a0Series Approximations to the Equation of Thermogravimetric Data
resolves10.1007/BF01907325The isoconversional method for determination of energy of activation at constant heating rates
resolves10.1016/j.fuel.2012.06.022Kinetic and thermodynamic equilibrium of asphaltenes sorption onto nanoparticles of nickel oxide supported on nanoparticulated alumina
resolves10.1021/ef4018543Adsorption and Subsequent Oxidation of Colombian Asphaltenes onto Nickel and/or Palladium Oxide Supported on Fumed Silica Nanoparticles
resolves10.1021/ef4000825Nanoparticles for Inhibition of Asphaltenes Damage: Adsorption Study and Displacement Test on Porous Media
resolves10.1021/ef502786eInfluence of Asphaltene Aggregation on the Adsorption and Catalytic Behavior of Nanoparticles
resolves10.1021/ef9013407Hydrocracking of Athabasca Bitumen Using Submicronic Multimetallic Catalysts at Near In-Reservoir Conditions
resolves10.1021/ef010243sRole of Chain Reactions and Olefin Formation in Cracking, Hydroconversion, and Coking of Petroleum and Bitumen Fractions
resolves10.1021/ef990225zMolecular Size and Structure of Asphaltenes from Various Sources
resolves10.1021/ef401904qSuppression of Addition Reactions during Thermal Cracking Using Hydrogen and Sulfided Iron Catalyst
resolves10.1021/ef201939fTransport Behavior of Multimetallic Ultradispersed Nanoparticles in an Oil-Sands-Packed Bed Column at a High Temperature and Pressure
resolves10.1021/ef3020537Enhanced Heavy Oil Recovery by in Situ Prepared Ultradispersed Multimetallic Nanoparticles: A Study of Hot Fluid Flooding for Athabasca Bitumen Recovery
resolves10.1021/ef401716h<i>In Situ</i> Upgrading of Athabasca Bitumen Using Multimetallic Ultradispersed Nanocatalysts in an Oil Sands Packed-Bed Column: Part 1. Produced Liquid Quality Enhancement
resolves10.1021/ef401719n<i>In Situ</i> Upgrading of Athabasca Bitumen Using Multimetallic Ultradispersed Nanocatalysts in an Oil Sands Packed-Bed Column: Part 2. Solid Analysis and Gaseous Product Distribution
resolves10.1016/j.apcata.2014.03.017Enhanced pyrolysis and oxidation of asphaltenes adsorbed onto transition metal oxides nanoparticles towards advanced in-situ combustion EOR processes by nanotechnology
resolves10.2118/08-04-12-TBVAPEX, Warm VAPEX and Hybrid VAPEX - The State of Enhanced Oil Recovery for In Situ Heavy Oils in Canada
resolves10.2118/91973-MSIn Situ Upgrading Heavy Oil by Aquathermolytic Treatment Under Steam Injection Conditions
resolves10.2118/129660-MSA Comprehensive Kinetic Theory to Model Thermolysis, Aquathermolysis, Gasification, Combustion, and Oxidation of Athabasca Bitumen
resolves10.2118/149217-MSModeling In-Situ Upgrading of Extraheavy Oils/Tar Sands by Subsurface Pyrolysis
resolves10.1021/ef100230kCatalytic Aquathermolysis Used for Viscosity Reduction of Heavy Crude Oils: A Review
resolves10.1021/ef501020dA Novel Solid–Liquid Equilibrium Model for Describing the Adsorption of Associating Asphaltene Molecules onto Solid Surfaces Based on the “Chemical Theory”
resolves10.1021/ef100458gAsphaltene Adsorption onto Alumina Nanoparticles: Kinetics and Thermodynamic Studies
resolves10.1021/ef2001772Application of Nanotechnology for Heavy Oil Upgrading: Catalytic Steam Gasification/Cracking of Asphaltenes
resolves10.1021/ef2008387Effect of the Particle Size on Asphaltene Adsorption and Catalytic Oxidation onto Alumina Particles
resolves10.1021/ef101230gMetal Oxide Nanoparticles for Asphaltene Adsorption and Oxidation
resolves10.1016/j.fuel.2011.09.022Iron oxide nanoparticles for rapid adsorption and enhanced catalytic oxidation of thermally cracked asphaltenes
resolves10.1007/s10973-011-2045-0Thermogravimetric studies on catalytic effect of metal oxide nanoparticles on asphaltene pyrolysis under inert conditions
resolves10.1016/j.cattod.2012.04.054Kinetics of the catalytic thermo-oxidation of asphaltenes at isothermal conditions on different metal oxide nanoparticle surfaces
resolves10.1016/j.apcata.2014.07.017Comparing kinetics and mechanism of adsorption and thermo-oxidative decomposition of Athabasca asphaltenes onto TiO2, ZrO2, and CeO2 nanoparticles
resolves10.1016/j.fuel.2015.04.031Effect of oxide support on Ni–Pd bimetallic nanocatalysts for steam gasification of n-C 7 asphaltenes
resolves10.1021/acs.iecr.5b02075Development of a Population Balance Model to Describe the Influence of Shear and Nanoparticles on the Aggregation and Fragmentation of Asphaltene Aggregates
resolves10.1016/j.cattod.2009.07.091Thermogravimetric determination of coke from asphaltenes, resins and sediments and coking kinetics of heavy crude asphaltenes
resolves10.1016/j.tca.2011.03.034ICTAC Kinetics Committee recommendations for performing kinetic computations on thermal analysis data
resolves10.2118/30299-MSIn-Situ Upgrading of Heavy Oils by Low-Temperature Oxidation in the Presence of Caustic Additives
The 14 references without a DOI — listed, not checked
no DOI — not checkedCavallaro A, Galliano G, Moore R, et al. In situ upgrading of Llancanelo heavy oil using in situ combustion and a downhole catalyst bed. J Can Pet Technol. 2008;47(9):23–31.
no DOI — not checkedChianelli RR, Siadati M, Mehta A, et al. Self-assembly of asphaltene aggregates: synchrotron, simulation and chemical modeling techniques applied to problems in the structure and reactivity of asphaltenes. In: Mullins OC, Sheu EC, Hammami A, Marshall AG, editors. Asphaltenes, heavy oils, and petroleomics. New York: Springer; 2007.
no DOI — not checkedColombia Energía. Crudos pesados, la gran apuesta del sector. http://www.colombiaenergia.com/featured-article/crudos-pesados-la-gran-apuesta-del-sector (2013). Accessed 10 Aug 2015.
no DOI — not checkedErtl G, Knözinger H, Weitkamp J. Preparation of Solid Catalysts. New York: Wiley; 2008.
no DOI — not checkedFranco CA, Nassar NN, Montoya T, Cortés FB. NiO and PdO supported on fumed silica nanoparticles for adsorption and catalytic steam gasification of Colombian C7 asphaltenes. In: Ambrosio J, editor. Handbook on Oil Production Research. New York: Nova Science Publishers; 2014.
no DOI — not checkedGreaves M, Saghr A, Xia T, et al. THAI-new air injection technology for heavy oil recovery and in situ upgrading. J Can Pet Technol. 2001;40(3):38–47.
no DOI — not checkedIEA. Resources to Reserves 2013.
no DOI — not checkedIEA. World Energy Investment Outlook. 2014.
no DOI — not checkedLuo P, Yang C, Tharanivasan A, et al. In situ upgrading of heavy oil in a solvent-based heavy oil recovery process. J Can Pet Technol. 2007b;46(9):37–43.
no DOI — not checkedMoore R, Laureshen C, Mehta S, et al. A downhole catalytic upgrading process for heavy oil using in situ combustion. J Can Pet Technol. 1999;38(13):1–8.
no DOI — not checkedNasr T, Beaulieu G, Golbeck H, et al. Novel expanding solvent-SAGD process ES-SAGD. J Can Pet Technol. 2003;42(1):13–6.
no DOI — not checkedSestak J. Thermodynamical properties of solids. Prague: Academia; 1984.
no DOI — not checkedTedeschi M., editor. Reserves and production of heavy crude oil and natural bitumen. In: 13th world petroleum congress. World Petroleum Congress; 1991.
no DOI — not checkedYoung DA. Decomposition of solids. Oxford: Pergamon; 1966.
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