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881.
A rapid and simple method for the isolation of fatty acid methyl esters and fatty alcohols from the lipid fraction of marine zooplankton is described. Wax esters are the dominant lipid class in most calanoid copepods and trans-esterification results in a high fatty alcohol content in the analytical extract. Current procedures for the separation and purification of lipid classes by preparative thin-layer chromatography are time-consuming and are subject to low recovery of the analytes. In this method, fatty acid methyl esters and fatty alcohols were separated by liquid chromatography using silica or honded amino-silica as the stationary phase. The procedure is equally applicable to the analysis of zooplankton with low wax ester (and hence fatty alcohol) content, for example, a number of species of euphausiid and, generally, for samples of low mass.  相似文献   
882.
This study presents for the first time development of a highly selective and sensitive thulium(III) micro‐sensor. Theoretical calculations were conducted on a S‐N Schiff base [thiophene‐2‐carbaldehyde‐(7‐methyl‐1,3‐benzothiazol‐2‐yl) hydrazone] (TCMH) in order to obtain a clue about the tendency of TCMH to Tm(III) and some other metal ions. Then, TCMH was used as a membrane‐active component to prepare a Tm(III)‐selective polymeric membrane microelectrode. In line with the resulting data, the electrode exhibits a Nernstian response toward Tm(III) ions for a very wide concentration range (1.0×10?11–4.0×10?6 M) with a detection limit of 1.0×10?11 (ca. 1.5 ppt) and a very fast response time in the whole concentration range (<5 s). In addition, the results showed that the certain microelectrode could be applied in the pH range of 4.0–11.0 with a usage of more than one month without any considerable potential divergence.  相似文献   
883.
Summary The relationships between the connectivity indices — easily calculated from the molecular structure of the compounds — and the partial molar free energies of solution are investigated for the methyl esters of 39 saturated (normal and branched) mono- and polyunsaturated higher fatty acids on a nonpolar (SE-30) and polar (SILAR 5CP) phase. The prediction of the ΔG values seems possible for any compound assuming that data for standard compounds are available. The relationship may be generally useful for the thermodynamic evaluation of nonspecific interactions of compounds with the stationary phases.  相似文献   
884.
A hydrophobic porphyrin derivative, tetraphenylporphyrin (TPP), was used as a sensitizer, and an anionic dye, methyl orange (MO), was employed as a substrate of photooxidation. TPP was incorporated into the hydrophobic environment of phosphatidylcholine (PC) bilayer membranes, liposomes. When oxygen was purged out of the liposome suspension by nitrogen bubbling, the degradation of MO was completely inhibited. A specific superoxide scavenger, superoxide dismutase, had no effect on the MO degradation. The replacement of H2O by D2O resulted in a 10 times enhancement in the photodegradation of MO. These results suggested that singlet oxygen was generated by the TPP photosensitization and worked as the mediator of the photoreaction from TPP. Trisulphonated TPP,-phenyl-,, -tri(p-sulphonyl)porphyrin (TPPS), is soluble in aqueous solution. The light irradiation to an aqueous solution of TPPS gave rise to the rapid bleaching (decomposition) of the sensitizer itself. On the other hand, TPP in the hydrophobic environment of liposomes was stable during light irradiation and worked as a sensitizer for the continuous photoreaction. Maximum reactivity was observed at the PC/TPP mole ratio of 50. When TPP molecules were incorporated into liposomes at larger concentrations (PC/TPP<50), a part of the excitation energy of the sensitizer molecules was nonradiatively converted into the lattice energy by the resonance between the closely located TPP molecules. This led to lower efficiency for the photoactivation of oxygen. On the other hand, the increase in liposome concentration resulted in the enhancement of the MO binding to lipid membranes and the retardation of MO degradation. Also, the electrostatic attraction and repulsion between the membrane and the substrate influenced the reaction rate greatly. The oxidative degradations of the substrate by singlet oxygen were considered to be much faster in the polar environment than in the less polar environment. The charge transfer or the polarized transition complex of singulet oxygen and MO are presumed to be stabilized in the polar environment. The distribution of substrate between the less polar membrane surface and the polar bulk aqueous solution was another important factor in the photooxidation.  相似文献   
885.
PMMA-ZrO2等有机无机杂化材料的制备与表征   总被引:3,自引:0,他引:3  
以烯丙基乙酰丙酮作为偶闻剂应秀溶胶凝胶法制备了一系列均匀透明的PMMA-ZrO2等有机无机杂化材料,利用UV,IR对其制备过程进行了研究,并测定了所得杂化玻璃的TGA性质。  相似文献   
886.
The coupling reaction of formaldehyde(FA)and methyl formate(MF)to form methyl glycolate(MG)and methyl methoxy acetate(MMAc),catalyzed by p-toluenesulfonic acid(p-TsOH)as well as assisted by different kinds of solvents or Ni-containing compounds,had been investigated.The results showed that when the reaction was carried out at 140℃,with a molar ratio of FA to MF of 0.65:1, molar fraction of p-TsOH to total feedstock of 11.0%,and reaction time of 3 h,the yield of MG and MMAc was 31.1% and 17.1%,respectively,p-TsOH catalyzed the coupling reaction by means of the synergistic catalysis of protonic acidity and soft basicity.Adding extra solvents to the reaction system was unfavorable for the reaction.The composite catalytic system consisting of p-TsOH and NiX_2(X=Cl,Br,I)exhibited a high catalytic performance for the coupling reaction,and NiX_2 acted as a promoter in the reaction,whose promotion for the catalysis increased in the following order:NiCl_2相似文献   
887.
2,6-Di-tert-butylphenols containing the Pt—SnCl3 and Pt—GeCl3 groups in the para position exert a dual effect on the oxidation of methyl oleate by molecular oxygen. Initially, these compounds act as antioxidants producing the corresponding phenoxyl radicals whose decomposition is accompanied by elimination of SnCl2 and GeCl2, which are oxidation promoters.  相似文献   
888.
A universally significant method,which combines the anionic polymerization with photoinduced charge transfer polymerization,for preparation of soluble star ABC triblock copolymer of ethylene oxide,styrene and methyl methacrylate,was described.The poly(ethylene oxide) (PEO) block was formed by initiation of phenoxy an-ions using p-aminophenol protected by Schiff's base as the parent compound Then the charge transfer system composed of PEO chains with deprotected-amino end groups and benzophenone initiated the polymerization of styrene and methyl metnacrylate sequentially under UV irradiation.The formed star triblock copolymer of styrene,ethylene oxide and methyl methacrylate could be purified by thin-layer chromatography (TLC) and characterized by IR,1H NMR,GPC (gel permeation chromatogrphy) and PGC (pyrolysis gas chromatography).  相似文献   
889.
150×3 mm I.D. columns, packed with 1-μm non-porous spherical silica particles, were used to separate soluble synthetic polymers by hydrodynamic chromatography. The columns exhibited a plate height of about 1.4 μm allowing very fast and efficient separations of polymers in the molecular mass range 103−2·106 g/mol. The migration behaviour of polymers could be well described by a simple theoretical model. The applicability of packed bed HDC for the fast separation of polymers was illustrated with separations of polystyrene and poly(methyl methacrylate) mixtures.  相似文献   
890.
Methyl trifluoropyruvate (1) enters into reductive dimerization during UV irradiation in the presence of isopropyl alcohol or of a sensitizer and during reaction with sodium in the presence of trimethyldichlorosilane, giving dimethyl 2,3-bis(trifluoromethyl)-2,3-dihydroxysuccinate. Unlike hexafluoroacetone, compound 1 does not form the reductive dimerization product after prolonged standing over sodium but is converted into the cyclic dimer 2-methoxycarbonyl-4-methoxy-2,4-bis(trifluoromethyl)-1,3-dioxolan-5-one.A. N. Nesmeyanov Institute of Heteroorganic Compounds, Russian Academy of Sciences, 117813 Moscow. Translated fromIzvestiya Akademii Nauk, Seriya Khimicheskaya, No. 6, pp. 1408–1411, June, 1992.  相似文献   
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