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HJ Lee

Publications and source records attributed to HJ Lee.

At least 19 recordsLinked to original sources

NBS-Promoted reactions of symmetrically hindered methylphenols via p-benzoquinone methide

Symmetrically hindered methylphenols 1 react smoothly with NBS to form transient intermediates, p-benzoquinone methides (BM), which can be further processed to give hydroxybenzaldehydes in the presence of DMSO. This reaction is initiated by the formation of the phenoxy radical, followed by disproportionation to afford BM. None of the side-chain-brominated product is observed. The existence of BM is supported by the following observations: the formation of BM in solution can be monitored by GC and GC-MS; the electrophilic methine part participates in electrophilic aromatic substitution with anisoles to give hydroxybenzylated products 15; and the double bond character of the exocyclic methine plays a role in [4 + 2] cycloaddition with diene to afford Diels-Alder adducts. In contrast, unsymmetrically hindered or simple methylphenol (p-cresol) with NBS gives the nuclear brominated products, as usual. The energies of symmetrically hindered BMs, unsymmetrically hindered BM, and simple BM were calculated using density functional theories. Relative stabilization energies calculated at the B3LYP/6-31G//B3LYP/6-31G level by an isodesmic equation are enhanced 3-6 kcal/mol for symmetrically hindered BMs.

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Single-bond formation and characterization with a scanning tunneling microscope

A scanning tunneling microscope (STM) was used to manipulate the bonding of a carbon monoxide (CO) molecule and to analyze the structure and vibrational properties of individual products. Individual iron (Fe) atoms were evaporated and coadsorbed with CO molecules on a silver (110) surface at 13 kelvin. A CO molecule was transferred from the surface to the STM tip and bonded with an Fe atom to form Fe(CO). A second CO molecule was similarly transferred and bonded with Fe(CO) to form Fe(CO)(2). Controlled bond formation and characterization at the single-bond level probe chemistry at the spatial limit.

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Surfactant Effect on the Stability and Electrorheological Properties of Polyaniline Particle Suspension.

In this paper, the colloidal stability and electrorheological responses of semi-conductive polyaniline particles dispersed in a mineral oil were investigated experimentally. The polyaniline was synthesized by polymerization of aniline monomer. The surfactants used for the colloidal stability were commercially available nonionic Span20, Span80, and Span85, which are distinctly different in their molecular structures. Dynamic yield stress of polyaniline suspension, which possessed the quadratic dependence on electric field strength at low electric field, exhibited the linear dependence at high electric field. In addition, the conductivity of polyaniline particles influenced the electrorheological response and there existed the optimal conductivity for the maximum yield stress. In the presence of nonionic surfactants used here, the yield stress of polyaniline exhibited a local maximum at a certain surfactant concentration. The existence of optimal surfactant concentration was confirmed by the surfactant adsorption isotherm. We hypothesized that below the optimal threshold concentration, the electrorheological activity was enhanced by the increased interfacial polarization induced by the adsorbed surfactant molecules. Above the threshold concentration, however, the electrorheological activity was degraded by the conduction through the field-induced surfactant-rich bridge between adjacent particles. This optimal concentration coincided with the saturation concentration in the adsorption isotherm. The surfactants used in this study showed the improved colloidal stability due mainly to the induced steric hindrance effect. For the colloidal stability, Span80 was the most effective. However, considering that ER activity comes mainly from relatively large particles of O(µm), which are mostly present in our system, Span85 was the best choice for a stabilizing additive in the present ER suspension. In addition, our results showed that the presence of the nonionic surfactants considered here did not cause any sensible degradation at high temperatures. Copyright 1998 Academic Press.

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Correlation of Lipid Peroxidation in Botrytis cinerea Caused by Dicarboximide Fungicides with Their Fungicidal Activity.

Dicarboximide fungicides iprodione, vinclozolin, and procymidone were examined for their capacity to inhibit mycelial growth, to cause cellular leakage, and to cause lipid peroxidation on Botrytis cinerea isolate BC2. All three fungicides effectively inhibited the mycelial growth of the fungi. The IC(50) values were found to be about 2 µM for all three fungicides, indicating that the fungicidal activity of the individual fungicides was almost the same. The fungicides caused significant cellular leakage and lipid peroxidation on the fungi in a concentration-dependent manner. Fungicidal activity of the three individual fungicides on inhibiting mycelial growth of the fungi correlated positively well with both cellular leakage and lipid peroxidation that were caused by the respective fungicides. Positive correlations were also found between the degree of cellular leakage and lipid peroxidation following treatment with the fungicides. Our results support the view that dicarboximide fungicides exert their fungicidal activity mainly through membrane lipid peroxidation and subsequent cellular leakage from the treated fungi.

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Lipid Peroxidation and Membrane Disruption by Vinclozolin in Dicarboximide-Susceptible and -Resistant Isolates of Botrytis cinerea

A dicarboximide-susceptible (DS) isolate and a dicarboximide-resistant (DR) isolate of Botrytis cinerea were compared with regard to spore germination, mycelial growth, cellular leakage, and lipid peroxidation upon treatment with the dicarboximide fungicide vinclozolin. The fungicide inhibited spore germination and mycelial growth of the DS isolate, but not those of the DR isolate. The inhibitory effect of the fungicide was greater on mycelial growth than on spore germination of the DS isolate. Significant cellular leakage from the fungicide-treated DS or DR isolate began to increase after 24 hr incubation, depending on the concentration of the fungicide and the duration of incubation time. However, the magnitude of cellular leakage was much greater from the DS isolate than from the DR isolate. Vinclozolin caused considerable lipid peroxidation in the DS isolate, whereas little or no lipid peroxidation occurred in the DR isolate treated with the fungicide. Lipid peroxidation preceded cellular leakage from the DS isolate following fungicide treatment. The effects of the fungicide on mycelial growth, cellular leakage, and lipid peroxidation of the DS isolate were all reversed by the addition of alpha-tocopherol to the incubation medium. These results demonstrate that vinclozolin causes significant lipid peroxidation and subsequent cellular leakage from a DS isolate, but not from a DR isolate. Furthermore, they suggest that the mechanism of action of dicarboximide fungicides is associated with membrane lipid peroxidation.

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