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Consideration of reaction mechanisms leading to pyrolytic carbon of different textures

https://doi.org/10.1016/s0008-6223(02)00174-4
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38/38 checkable references clean · checked 2026-07-23

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.

23 without a DOI — not checked. A reference deposited without a DOI is never matched by title or guessed at; it stays outside the checked set, and this line discloses that.

The 38 checked references that resolve
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Chemistry and kinetics of chemical vapor deposition of pyrocarbon—II pyrocarbon deposition from ethylene, acetylene and 1,3-butadiene in the low temperature regime
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Chemistry and kinetics of chemical vapor deposition of pyrocarbon — III pyrocarbon deposition from propylene and benzene in the low temperature regime
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Chemistry and kinetics of chemical vapor deposition of pyrocarbon — IV pyrocarbon deposition from methane in the low temperature regime
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On kinetic and microstructural transitions in the CVD of pyrocarbon from propane
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Chemistry and kinetics of chemical vapor deposition of pyrocarbon
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The Thermal Decomposition of Methane. I. Kinetics of the Primary Decompositionto C<sub>2</sub>H6 + H<sub>2</sub>; Rate Constant for the Homogeneous Unimolecular Dissociation of Methane and its Pressure Dependence
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The thermal decomposition of methane. II. Secondary reactions, autocatalysis and carbon formation; non-Arrhenius behaviour in the reaction of CH<sub>3</sub> with ethane
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Detailed kinetic modeling of autocatalysis in methane pyrolysis
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Forming benzene in flames by chemically activated isomerization
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Chemical Kinetics and Combustion Modeling
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Kinetic and thermodynamic issues in the formation of aromatic compounds in flames of aliphatic fuels
resolves10.1016/S0010-2180(97)00068-0
A detailed kinetic modeling study of aromatics formation in laminar premixed acetylene and ethylene flames
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Modeling of Aromatic and Polycyclic Aromatic Hydrocarbon Formation in Premixed Methane and Ethane Flames
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Rates, products, and mechanisms in the gas-phase hydrogenolysis of phenol between 922 and 1175 K
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The formation of aromatic hydrocarbons at high temperatures. XXIII. The pyrolysis of anthracene
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Reactive Dimerization: A New PAH Growth Mechanism in Flames
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Thermally Induced Cyclodehydrogenation of Biaryls:  A Simple Radical Reaction or a Sequence of Rearrangements?
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Energetics and Site Specificity of the Homolytic C−H Bond Cleavage in Benzenoid Hydrocarbons:  An ab Initio Electronic Structure Study
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Structures, C–H and C–CH3 bond energies at borders of polycyclic aromatic hydrocarbons
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PAH formation in acetylene–benzene pyrolysis
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Fullerenes and Soot Formation— New Pathways to Large Particles in Flames
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Thermochemical kinetics of anthracene pyrolysis
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Pyrocondensation of anthracene
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Pyrolysis of Aromatics and Related Heterocyclics
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Large molecules, ions, radicals and small soot particles in fuel-rich hydrocarbon flames. Part IV. Large polycyclic aromatic hydrocarbons and their radicals in a fuel-rich benzene–oxygen flame
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Large molecules, radicals, ions, and small soot particles in fuel-rich hydrocarbon flames
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Large molecules, ions, radicals, and small soot particles in fuel-rich hydrocarbon flames part V: Positive ions of polycyclic aromatic hydrocarbons (PAH) in low-pressure premixed flames of benzene and oxygen††Part I, ref. 1; Part II, ref. 14 (1998); Part III, ref. 20; Part IV, ref. 2.
resolves10.1016/S0010-2180(97)81776-2
On the relative contribution of acetylene and aromatics to soot particle surface growth
resolves10.1016/S0008-6223(00)00156-1
Formation of polycyclic aromatic hydrocarbons coincident with pyrolytic carbon deposition
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Analysis of the Gas Phase by In Situ FTIR Spectrometry and Mass Spectrometry During the CVD of Pyrocarbon from Propane
resolves10.1016/0008-6223(92)90186-Z
Characterization of tars and coke formed during the pyrolysis of methane in a tubular reactor
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Role of sp3 carbon and 7-membered rings in fullerene annealing and fragmentation
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Role of sp3 defect structures in graphite and carbon nanotubes
resolves10.1002/ange.19740862003
Die Helicene
The 23 references without a DOI — listed, not checked
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no DOI — not checkedAn experimental investigation of premixed fuel-rich low-pressure propene/oxygen/argon flames by laser spectroscopy and molecular-beam mass spectrometry
no DOI — not checkedPAH growth and soot formation in the pyrolysis of acetylene and benzene at high temperatures and pressures: Modeling and Experiment
no DOI — not checkedReaction mechanisms for toluene pyrolysis
no DOI — not checked10.1016/S0008-6223(02)00174-4_BIB26
no DOI — not checkedDetailed kinetic modeling of soot formation in shock-tube pyrolysis of acetylene
no DOI — not checkedThe role PAH and acetylene in soot nucleation and growth
no DOI — not checkedPyrolysis of hydrocarbons
no DOI — not checkedThe role of biaryl reactions in PAH and soot formation
no DOI — not checkedLarge molecules, radicals, ions, and small soot particles in fuel-rich hydrocarbon flames. Part II. Aromatic radicals and intermediate PAHs in a premixed low-pressure naphthalene/oxygen/argon flame
no DOI — not checkedThe chemistry of the pyrolytic conversion of organic compounds to carbon
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no DOI — not checkedNecula A. Automerization and skeleton rearrangements of polycyclic aromatic hydrocarbons. Ph.D. Thesis, Boston College, 1996.
no DOI — not checkedThe pyrolysis of anthracene as a model coal-derived aromatic compound
no DOI — not checkedGräber W-D. Kinetik und Chemie der Methanbildung bei der hydrierenden Vergasung von Modellaromaten. Ph.D. Thesis. Universität Karlsruhe, 1982.
no DOI — not checkedZhang WG, Hu ZJ, Hüttinger KJ. CVI of carbon fiber felt: optimization of densification and carbon microstructure, Carbon, in press.
no DOI — not checkedHu ZJ, Reznik B, Zhang WG, Gerthsen D, Hüttinger KJ. Influence of pressure, temperature and surface area/volume ratio on the texture of pyrolytic carbon deposited from methane. Carbon, to be submitted.
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no DOI — not checkedModel structure of perfectly graphitizable coiled carbon nanotubes
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