Density functional theory study of the concerted pyrolysis mechanism for lignin models
暂无分享,去创建一个
[1] A. C. Buchanan,et al. Computational investigation of the pyrolysis product selectivity for α-hydroxy phenethyl phenyl ether and phenethyl phenyl ether: analysis of substituent effects and reactant conformer selection. , 2013, The journal of physical chemistry. A.
[2] J. Daily,et al. Direct detection of products from the pyrolysis of 2-phenethyl phenyl ether. , 2011, The journal of physical chemistry. A.
[3] V. Menon,et al. Trends in bioconversion of lignocellulose: Biofuels, platform chemicals & biorefinery concept , 2012 .
[4] R. Parthasarathi,et al. Theoretical Study of the Remarkably Diverse Linkages in Lignin , 2011 .
[5] A. C. Buchanan,et al. Flash vacuum pyrolysis of methoxy-substituted lignin model compounds. , 2000, The Journal of organic chemistry.
[6] S. Saka,et al. Thermal reactions of guaiacol and syringol as lignin model aromatic nuclei , 2011 .
[7] A. C. Buchanan,et al. Kinetic analysis of the phenyl-shift reaction in β-O-4 lignin model compounds: a computational study. , 2011, The Journal of organic chemistry.
[8] T. Elder. Bond Dissociation Enthalpies of a Dibenzodioxocin Lignin Model Compound , 2013 .
[9] M. Košík,et al. Low Temperature Thermolysis of Lignins - II. Thermofractography and Thermal Analysis of β—0—4 Model Compounds , 1984 .
[10] T. Foust,et al. Computational Study of Bond Dissociation Enthalpies for a Large Range of Native and Modified Lignins , 2011 .
[11] Thomas H. Lowry,et al. Mechanism and Theory in Organic Chemistry , 1976 .
[12] Chang-Soo Kim,et al. Lignin Depolymerization and Conversion: A Review of Thermochemical Methods , 2011 .
[13] T. Elder. A computational study of pyrolysis reactions of lignin model compounds , 2010 .
[14] S. Saka,et al. Pyrolysis reactions of various lignin model dimers , 2007, Journal of Wood Science.
[15] R. Harrison,et al. Computational prediction of alpha/beta selectivities in the pyrolysis of oxygen-substituted phenethyl phenyl ethers. , 2008, Journal of Physical Chemistry A.
[16] Donald G Truhlar,et al. Density functionals with broad applicability in chemistry. , 2008, Accounts of chemical research.
[17] T. Foust,et al. A Mechanistic Investigation of Acid-Catalyzed Cleavage of Aryl-Ether Linkages: Implications for Lignin Depolymerization in Acidic Environments , 2014 .
[18] M. Klein,et al. Model pathways in lignin thermolysis. 1. Phenethyl phenyl ether , 1983 .
[19] A. C. Buchanan,et al. Kinetic simulation of the thermal degradation of phenethyl phenyl ether, a model compound for the β-O-4 linkage in lignin , 2012 .
[20] R. Harrison,et al. Kinetic Analysis of the Pyrolysis of Phenethyl Phenyl Ether : Computational Prediction of α/β-Selectivities , 2007 .
[21] Alexander B. Pacheco. Introduction to Computational Chemistry , 2011 .
[22] A. C. Buchanan,et al. Computational study of bond dissociation enthalpies for lignin model compounds: β-5 Arylcoumaran , 2012 .
[23] M. Kidder,et al. Oxygen Substituent Effects in the Pyrolysis of Phenethyl Phenyl Ethers , 2007 .
[24] P. Ollero,et al. Potential routes for thermochemical biorefineries , 2013 .
[25] A. C. Buchanan,et al. Computational study of bond dissociation enthalpies for lignin model compounds. Substituent effects in phenethyl phenyl ethers. , 2009, The Journal of organic chemistry.
[26] A. Castellan,et al. Experimental and theoretical studies of the thermal degradation of a phenolic dibenzodioxocin lignin model , 2012, Wood Science and Technology.
[27] Shubin Wu,et al. Chemical structure and pyrolysis response of beta-O-4 lignin model polymer , 2011, BioResources.
[28] M. Klein,et al. Discrimination between Free-Radical and Concerted Pyrolysis Mechanisms , 2014 .
[29] A. C. Buchanan,et al. Substituent Effects on the Reaction Rates of Hydrogen Abstraction in the Pyrolysis of Phenethyl Phenyl Ethers , 2010 .
[30] Chao Liu,et al. Theory studies on pyrolysis mechanism of phenethyl phenyl ether , 2011 .
[31] G. Huber,et al. The pyrolysis chemistry of a β-O-4 type oligomeric lignin model compound , 2013 .
[32] A. C. Buchanan,et al. Computational study of bond dissociation enthalpies for substituted β-O-4 lignin model compounds. , 2011, Chemphyschem : a European journal of chemical physics and physical chemistry.
[33] A. C. Buchanan,et al. Role of carbon-carbon phenyl migration in the pyrolysis mechanism of β-O-4 lignin model compounds: phenethyl phenyl ether and α-hydroxy phenethyl phenyl ether. , 2012, The journal of physical chemistry. A.
[34] V. Kováčik,et al. Low Temperature Thermolysis of Lignins - I. Reactions of ß—O—4 Model Compounds , 1983 .
[35] D. Winzor,et al. Interpretation of the temperature dependence of equilibrium and rate constants , 2006, Journal of molecular recognition : JMR.
[36] T. Barth,et al. Reactivity and reaction pathways in thermochemical treatment of selected lignin-like model compounds under hydrogen rich conditions , 2012 .
[37] S. Saka,et al. Pyrolysis reactions of Japanese cedar and Japanese beech woods in a closed ampoule reactor , 2010, Journal of Wood Science.
[38] S. Saka,et al. Mechanisms for the formation of monomers and oligomers during the pyrolysis of a softwood lignin , 2014 .
[39] T. Elder. Bond dissociation enthalpies of a pinoresinol lignin model compound , 2014 .