Degradation of polyethylene glycol and hemicellulose in the Vasa
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[1] P. Wood,et al. A Mechanism for Production of Hydroxyl Radicals by the Brown-Rot Fungus Coniophora Puteana: Fe(III) Reduction by Cellobiose Dehydrogenase and Fe(II) Oxidation at a Distance from the Hyphae. , 1997, Microbiology.
[2] T. Saito,et al. Evaluation of the quantitativeness of matrix-assisted laser desorption/ionization time-of-flight mass spectrometry using an equimolar mixture of uniform poly(ethylene glycol) oligomers. , 2003, Journal of mass spectrometry : JMS.
[3] Magnus Sandström,et al. Sulfur accumulation in the timbers of King Henry VIII's warship Mary Rose: a pathway in the sulfur cycle of conservation concern. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[4] Roger M. Rowell,et al. Archaeological wood: properties, chemistry, and preservation. , 1989 .
[5] J. Gardette,et al. Phototransformation of water-soluble polymers. I : photo- and thermooxidation of poly(ethylene oxide) in solid state , 2001 .
[6] L. Mazaletskaya,et al. Catalytic Oxidative Deformylation of Polyethylene Glycols with the Participation of Molecular Oxygen , 2001 .
[7] O. Smidsrod,et al. Free-radical degradation of triple-stranded scleroglucan by hydrogen peroxide and ferrous ions , 1998 .
[8] S. Han,et al. Thermal/oxidative degradation and stabilization of polyethylene glycol , 1997 .
[9] Spectrometry Basics,et al. Mass Spectrometry of Polymers and Polymer Surfaces , 2001 .
[10] M. Strlič,et al. Anti- and prooxidative properties of gallic acid in fenton-type systems. , 2002, Journal of agricultural and food chemistry.
[11] R. Frański,et al. Mass Spectrometric Behaviour of Carboxylated Polyethylene Glycols and Carboxylated Octylphenol Ethoxylates , 2003, European journal of mass spectrometry.
[12] Ingmar Persson,et al. Deterioration of the seventeenth-century warship Vasa by internal formation of sulphuric acid , 2002, Nature.
[13] Per Hoffmann,et al. On the stabilization of waterlogged oakwood with PEG: molecular size versus degree of degradation , 1985 .
[14] R. Barbour,et al. The role of the Wasa in the development of the polyethylene glycol preservation method. , 1990 .
[15] Austin Acton,et al. A Simple Preparation of PEG‐Carboxylates by Direct Oxidation , 2004 .
[16] F. Heatley,et al. A study of the products and mechanism of the thermal oxidative degradation of poly(ethylene oxide) using 1H and 13C 1‐D and 2‐D NMR , 2004 .
[17] F. Kawai,et al. Microbial degradation of polyethers , 2001, Applied Microbiology and Biotechnology.
[18] E. L. Springer. Prehydrolysis of hardwoods with dilute sulfuric acid , 1985 .
[19] H. Uchiyama,et al. Chemical change involved in the oxidative reductive depolymerization of hyaluronic acid. , 1990, The Journal of biological chemistry.
[20] V. A. Solé,et al. Determination of the iron oxidation state in earth materials using XANES pre-edge information. , 2001, Journal of synchrotron radiation.
[21] S. Hanton,et al. Mass spectrometry of polymers and polymer surfaces. , 2001, Chemical reviews.
[22] D. Packman. The Acidity of Wood , 1960 .
[23] Geoffrey Daniel,et al. Microbial decay of waterlogged archaeological wood found in Sweden Applicable to archaeology and conservation , 1999 .
[24] H. A. Schroeder,et al. Iron-catalyzed oxidation of wood carbohydrates , 1974, Wood Science and Technology.
[25] E. Roffael,et al. Über die Acidität einheimischer Holzarten , 2002, Holz als Roh- und Werkstoff.
[26] I. Persson,et al. The Vasa’s New Battle : Sulfur, Acid and Iron , 2003 .
[27] Boon K. Teo,et al. EXAFS: Basic Principles and Data Analysis , 1986 .
[28] M. Balaban,et al. Estimation of volatile acids in wood and bark , 2003, Holz als Roh- und Werkstoff.
[29] W. Bao,et al. Rapid polyether cleavage via extracellular one-electron oxidation by a brown-rot basidiomycete. , 1998, Proceedings of the National Academy of Sciences of the United States of America.