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In-beam and matrix-isolation techniques have been used in the mass spectral studies of several categories of biologically significant compounds. These include amino acids, quaternary ammonium salts, vitamins and nucleosides. Molecular ions and/or (M+H)+ions are obtained, together with useful fragmentations, all of which are valuable in structural elucidations. Spectra obtained by this version of the in-beam technique are similar but not identical with those obtained by field desorption and secondary ion mass spectrometry. Ammonium and sodium chlorides, ammonium sulfate, p-toluenesulfonic and hydrochloric acids can all be used as a room temperature matrix. The detection limits for vitamin E and 2′-deoxyguanosine have been determined as 1 ngand 5 μg, respectively. 相似文献
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[chemical reaction: see text]. To study the catalysis of isopentenyl diphosphate (IPP) isomerase type II from Staphylococcus aureus, which is a flavoprotein catalyzing the interconversion of IPP and dimethylallyl diphosphate, we have chemically synthesized (S)- and (R)-[2-2H]IPP and carried out stereochemical analysis of the reaction. Our results show that the C-2 deprotonation of IPP by this enzyme is pro-R stereospecific, suggesting a similar stereochemical course as the type I enzyme. 相似文献
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The uranyl chelate of ferron was investigated polarographically over the pH range 1.98–10.00 and ligand concentration 0.005–0.060.M. A reversible and diffusion controlled reduction wave was obtained, however, when ferron concentration below 0.02M and pH below 5.0, it became irreversible. The chelate species identified were UO2(HA) 2 at pH range 2.5–7.1 and UO2(OH) (A) 2?3 over pH 7.1. The electron-transfer coefficient, rate constant, diffusion coefficient and activation energy of the reduction process were determined. 相似文献
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The complex permitivity of the amorphous semiconductor Si12Ge10As30Te48 has been measured at frequencies from 1 to 4 GHz and at temperatures from 13 to 42°C. The results show that there is resonace absorption at the resonace frequency of 1.6 GHz corresponding to a relaxation time of 2.45 × 10?9 sec at 20°C, and that this resonance frequency increases with increasing temperature. On the basis of the model that the power loss is due to the transitions of dipoles between their equilibrium positions, the computed results are in good agreement with experimental ones. The size and the possible formation of such dipoles are also discussed. 相似文献
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