D.P. Oxley
University of Leicester
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Featured researches published by D.P. Oxley.
Journal of Adhesion | 1981
J. Comyn; C.C. Horley; D.P. Oxley; R.G. Pritchard; J. L. Tegg
Abstract The theory of inelastic electron tunnelling spectroscopy (IETS) and the suitability of this technique for examining adhesive-aluminium oxide interfaces are discussed. IET spectra are presented of an epoxide resin (the diglycidyl ether of bisphenol A), two aliphatic amine hardeners (di-[1 -aminopropyl-3-ethoxy] ether and triethylene tetramine), and mixtures of resin and hardener before and after subjection to the usual heat curing schedules. These show that the curing reaction does not take place within an IETS junction; a possible reason for this is the epoxide resin is physically adsorbed on to the aluminium oxide surface whilst the hardeners may be chemically adsorbed through the amine groups.
Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy | 1982
S. Reynolds; D.P. Oxley; R.G. Pritchard
Abstract The interfacial properties of an adhesive system, ethyl α-cyanoacrylate/aluminium, are investigated by the adsorption of a thin adhesive layer upon the Al oxide insulator of an AlPb tunnel junction. Such junctions exhibit electrical properties determined in part by the physical and chemical nature of the adsorbed layer. Inelastic electron tunnelling spectra, and resistance and capacitance data are presented which indicate that exposure of the oxide to pure adhesive vapour produces an inhomogeneous adsorbed layer, which increases in overall thickness with increasing vapour exposure time. By retarding vapour polymerization, a more uniform layer is adsorbed, whose thickness is less strongly dependent on exposure time. Tunnelling spectra agree well with those obtained using bulk i.r. spectroscopy (which are also presented here), allowing IET vibrational mode assignments to be inferred. Shifts in CO and CO-stretching frequencies are observed in the tunnelling spectrum of the uniform layer which have been attributed by other workers using a reflectance i.r. technique to adhesive hydrogen bonding at the oxide surface. The absence of CC and CH 2 modes in the tunnelling spectra is indicative of cyanoacrylate polymerization at the monomolecular level. A chemical model of the interface based on this, and on peak intensity data, is presented.
International Journal of Adhesion and Adhesives | 1985
J. Comyn; A.J. Kinloch; C.C. Horley; R.R. Mallik; D.P. Oxley; R.G. Pritchard; S. Reynolds; C.R. Werrett
Abstract Inelastic electron tunnelling spectroscopy is a way of obtaining the vibrational spectra of molecules adsorbed on a metal oxide. Hence it is appropriate to use this technique to examine adhesives and adhesion promoters. Here, the principles and methods of inelastic electron tunnelling spectroscopy are presented, with the results of studies on polyvinylacetate, polymethylmethacrylate and some silane adhesion promoters.
Thin Solid Films | 1984
R.R. Mallik; R.G. Pritchard; D.P. Oxley; C.C. Horley; J. Comyn
Abstract The conductance of inelastic electron tunnelling (IET) junctions, typically Al/aluminium oxide/dopant/Pb (about 3000 A thick), was measured during infusion doping. The measurements, necessarily rapid and accurate, were made by employing a digital multimeter and microcomputer. These measurements indicate an increase in the insulating barrier thickness during doping, which has been confirmed by corresponding changes in the junction capacitance. An experimental technique was also developed, allowing contamination-free infusion-doped IET spectra to be obtained routinely. A model is proposed which to a first approximation predicts the behaviour of junction conductance as a function of time during doping. Thus the dynamics of the infusion doping process have been clarified.
Journal of Adhesion | 1989
J. Comyn; D.P. Oxley; R.G. Pritchard; C.R. Werrett; A.J. Kinloch
Abstract Inelastic electron tunneling spectra have been obtained for some aminosilanes (3-aminopropyltriethoxysilane, 3-aminopropyltrimethoxysilane, the mixed and separated isomers of aminophenyltrimethoxysilane and N-2-aminoethyl-3-aminopropyl trimethoxysilane) adsorbed on aluminium oxide. The silanes have been applied from the vapour and from solutions in either benzene, water or acidic aqueous alcohol. Spectra indicate diferent levels of hydrolysis and condensation for the amines, which depend upon the doping conditions, and that no isotopic exchange occurs when the doping medium is D2O. The mode of attachment to the oxide surface is different for the three isomers of aminophenyltrimethoxysilane.
International Journal of Adhesion and Adhesives | 1990
J. Comyn; D.P. Oxley; R.G. Pritchard; C.R. Werrett; A. J. Kinloch
Abstract Inelastic electron tunnelling spectra were obtained for some silanes with CC bonds doped from solution in acidic aqueous alcohol and from their vapours. Spectra show a high level of hydrolysis of the silanes doped from solution, but only partial hydrolysis from vapour doping. Vinyltrichlorosilane is fully hydrolysed with both methods of doping. A silane containing a methacrylate group is partially saponified.
International Journal of Adhesion and Adhesives | 1989
J. Comyn; D.P. Oxley; R.G. Pritchard; C.R. Werrett; A. J. Kinloch
Abstract Inelastic electron tunnelling spectra of 3-glycidoxypropyltrimethoxysilane show the absence of features due to the epoxide group, which are apprently replaced by C=C and C=O groups. This is supported by infrared by epectroscopy and some chemical tests. Two reaction sequences are proposed to account for the observed changes.
Surface and Interface Analysis | 1984
D. M. Brewis; J. Comyn; D.P. Oxley; R.G. Pritchard; S. Reynolds; C.R. Werrett; A. J. Kinloch
Surface and Interface Analysis | 1980
S. Reynolds; L. D. Gregson; C.C. Horley; D.P. Oxley; R.G. Pritchard
Surface and Interface Analysis | 1982
A. J. Langley; D.P. Oxley; E. G. Smith