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Provided are a fluoranthene derivative represented by chemical formula 1 and an organic electroluminescent device comprising the same. In the chemical formula 1, definition of each substituent is as defined in the detailed description of the present invention. The organic electroluminescent device comprises: a first electrode; a second electrode; and one or more organic films disposed between the electrodes, wherein the organic films comprise the fluoranthene derivative.

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Reference:
Metal catalyst and ligand design,
Ligand Template Strategies for Catalyst Encapsulation – NCBI

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Bipyridine N,N?-dioxide is a structural fragment found in many bioactive compounds. Furthermore, chiral analogues secured their place as powerful Lewis base catalysts. The scope of the existing methods for the synthesis of atropisomeric bipyridine N,N?-dioxides is limited. Herein, we present a practical, highly chemo- and stereoselective method for oxidative dimerization of chiral pyridine N-oxides using O2 as a terminal oxidant. A series of 13 axially chiral bipyridine N,N?-dioxides were synthesized in up to 75% yield.

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Reference:
Metal catalyst and ligand design,
Ligand Template Strategies for Catalyst Encapsulation – NCBI

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This application relates to ketone compounds of imidazoles, pharmaceutically acceptable salts, solvents, polymorphs or prodrugs thereof, and further relates to pharmaceutical combinations comprising the foregoing substances and uses for preventing and treating protein kinase related diseases such as cancer, metabolic diseases, and cardiovascular diseases.

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Reference:
Metal catalyst and ligand design,
Ligand Template Strategies for Catalyst Encapsulation – NCBI

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A ruthenium-catalyzed arylation reaction of oxa- and azabicyclic alkenes with (hetero)arenes by C-H bond activation has been discovered. The reaction does not require additives and utilizes dioxygen in realizing the catalytic cycle leading to monosubstituted 7-oxa and 7-azabenzonorbornane derivatives.

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Reference:
Metal catalyst and ligand design,
Ligand Template Strategies for Catalyst Encapsulation – NCBI

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The present invention relates to the field of display technology, in particular to a containing unsaturated nitrogen-containing heterocyclic dihydroanthracene compound, organic electroluminescent device and display device. According to the present invention the compound of formula (I) as shown: Of the present invention compound used in the organic electroluminescent device of the electron-transport layer or an organic light-emitting material of the main body, thereby improving the organic electroluminescent luminous efficiency of the device, reducing the organic electroluminescent driving voltage of the device. (by machine translation)

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Reference:
Metal catalyst and ligand design,
Ligand Template Strategies for Catalyst Encapsulation – NCBI

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The invention discloses an organic host material, a preparation method thereof and an organic electroluminescent device, and belongs to the field of chemical synthesis and photoelectric materials. In the formula, Ar is one of substituted or unsubstituted C1 – C30 alkyl, C2 – C30 alkenyl, C2 – C30 alkynyl, substituted or unsubstituted C3 – C30 heterocycloalkyl, substituted or unsubstituted acurrcurrcurrcurry a membered heteroaryl, substituted or unsubstituted, C3 – C30 aryl, C6 – C30 alkoxy, C6 – C60 aryloxy, a monocyclic or polycyclic C1 – C30 C3 – C30 C6 – C60 aliphatic ring or acurrcurrcurrcurry a aromatic ring formed RMB 3 -30 by linking with adjacent substituents RMB 3 -30 RMB 3 – RMB 10. The organic host material can be used as the light emitting layer material of the organic electroluminescent device. (by machine translation)

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Reference:
Metal catalyst and ligand design,
Ligand Template Strategies for Catalyst Encapsulation – NCBI

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A selective palladium-catalysed arylation of 2,6-dibromopyridine has been developed by employing N-heterocyclic carbene ligands. Selective mono-arylation was performed in water/acetonitrile solvent system at ambient temperature with catalyst loading of 0.1 mol%. This reaction was also found to proceed smoothly in water although at a slightly elevated temperature of 80 C. 2,6-Disubstituted and diversely substituted 2,6-pyridines were also obtained in high yields which will be of importance to organic and medicinal chemists.

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Reference:
Metal catalyst and ligand design,
Ligand Template Strategies for Catalyst Encapsulation – NCBI

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Described herein are 1,4-substituted piperidine compounds according to Formula (I) that have demonstrated activity as fatty acid synthase inhibitors. Also described herein are pharmaceutical compositions containing the described 1,4-substituted piperidine compounds, and methods of treating diseases mediated by fatty acid synthase, by administering one or more of the compounds or pharmaceutical formulations described herein. Also described herein are methods of synthesizing the compounds described, including the described 1,4-substituted piperidine compounds and synthetic intermediates useful in those syntheses.

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Reference:
Metal catalyst and ligand design,
Ligand Template Strategies for Catalyst Encapsulation – NCBI

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The present invention relates to the field of display technology, in particular to a containing unsaturated nitrogen-containing heterocyclic dihydroanthracene compound, organic electroluminescent device and display device. According to the present invention the compound of formula (I) as shown: Of the present invention compound used in the organic electroluminescent device of the electron-transport layer or an organic light-emitting material of the main body, thereby improving the organic electroluminescent luminous efficiency of the device, reducing the organic electroluminescent driving voltage of the device. (by machine translation)

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Reference:
Metal catalyst and ligand design,
Ligand Template Strategies for Catalyst Encapsulation – NCBI

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ORGANOMETALLIC COMPOUND AND ORGANIC LIGHT EMITTING DEVICE COMPRISING SAME

The present specification provides an organic metal compound represented 1 by chemical formula (I) and an organic light-emitting device including the same. (by machine translation)

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Reference:
Metal catalyst and ligand design,
Ligand Template Strategies for Catalyst Encapsulation – NCBI