Patent classifications
C07C235/40
MONOMER AND POLYMER, COMPENSATION FILM, OPTICAL FILM, AND DISPLAY DEVICE
A monomer represented by Chemical Formula 1:
##STR00001##
wherein, in Chemical Formula 1, R.sup.1, R.sup.2, A.sup.1, A.sup.2, L.sup.1, L.sup.2, o, p, q, and r are the same as defined in the detailed description.
Novel Carboxylic Acid Compounds Useful for Inhibiting Microsomal Prostaglandin E2 Synthase-1
The present invention provides compounds of Formula 1, or a pharmaceutically acceptable salts, thereof, where R, X, A, E, and G are as described herein, methods of preparing the compounds, and use of the compounds to treat pain and/or inflammation.
##STR00001##
Novel Carboxylic Acid Compounds Useful for Inhibiting Microsomal Prostaglandin E2 Synthase-1
The present invention provides compounds of Formula 1, or a pharmaceutically acceptable salts, thereof, where R, X, A, E, and G are as described herein, methods of preparing the compounds, and use of the compounds to treat pain and/or inflammation.
##STR00001##
Heterocyclic inhibitors of the sodium channel
The invention relates to compounds useful in treating conditions associated with voltage-gated ion channel function, particularly conditions associated with sodium channel activity. More specifically, the invention concerns heterocyclic compounds (e.g., compounds according to any of Formulas (I)-(III) or Compounds (1)-(65) of Table 1) that are that are useful in treatment of conditions such as epilepsy, cancer, pain, migraine, Parkinson's Disease, mood disorders, schizophrenia, psychosis, tinnitus, amyotropic lateral sclerosis, glaucoma, ischaemia, spasticity disorders, obsessive compulsive disorder, restless leg syndrome and Tourette syndrome.
Heterocyclic inhibitors of the sodium channel
The invention relates to compounds useful in treating conditions associated with voltage-gated ion channel function, particularly conditions associated with sodium channel activity. More specifically, the invention concerns heterocyclic compounds (e.g., compounds according to any of Formulas (I)-(III) or Compounds (1)-(65) of Table 1) that are that are useful in treatment of conditions such as epilepsy, cancer, pain, migraine, Parkinson's Disease, mood disorders, schizophrenia, psychosis, tinnitus, amyotropic lateral sclerosis, glaucoma, ischaemia, spasticity disorders, obsessive compulsive disorder, restless leg syndrome and Tourette syndrome.
Process method for producing pesticide by using carbon dioxide
A process method for producing a pesticide by using carbon dioxide includes: weighing a 1,3-cyclohexanedione substrate 1(a-e), a catalyst and Cs.sub.2CO.sub.3 in a Schlenk bottle, degassing, and continuously introducing 1 atm of carbon dioxide; adding a solvent and reacting for 48 h in an oil bath at 50° C. After the reaction was completed, post-treatment was carried out to obtain a 2-carboxyl-1,3-cyclohexanedione compound 2(a-e). The obtained acid is acylated and then added dropwise to a dichloromethane solution containing aniline to react for 2 h at room temperature. After the reaction, column chromatography was performed to obtain a pesticide compound 3(a-e). Adding the pesticide compound 3(a-e) into 50% concentrated sulfuric acid and refluxing at 80° C. for 8 hours. Through separation, a pesticide product compound 4(a-e) was obtained. The process method is simple, with low requirements on equipment, wide sources of raw materials, low cost, low toxicity and easy industrial scale-up production.
Process method for producing pesticide by using carbon dioxide
A process method for producing a pesticide by using carbon dioxide includes: weighing a 1,3-cyclohexanedione substrate 1(a-e), a catalyst and Cs.sub.2CO.sub.3 in a Schlenk bottle, degassing, and continuously introducing 1 atm of carbon dioxide; adding a solvent and reacting for 48 h in an oil bath at 50° C. After the reaction was completed, post-treatment was carried out to obtain a 2-carboxyl-1,3-cyclohexanedione compound 2(a-e). The obtained acid is acylated and then added dropwise to a dichloromethane solution containing aniline to react for 2 h at room temperature. After the reaction, column chromatography was performed to obtain a pesticide compound 3(a-e). Adding the pesticide compound 3(a-e) into 50% concentrated sulfuric acid and refluxing at 80° C. for 8 hours. Through separation, a pesticide product compound 4(a-e) was obtained. The process method is simple, with low requirements on equipment, wide sources of raw materials, low cost, low toxicity and easy industrial scale-up production.
Compositions comprising functionalized carbon-based nanostructures and related methods
The present invention generally relates to compositions comprising and methods for forming functionalized carbon-based nanostructures.
Compositions comprising functionalized carbon-based nanostructures and related methods
The present invention generally relates to compositions comprising and methods for forming functionalized carbon-based nanostructures.
Indene derivatives and uses thereof
The present invention relates to compounds of formula (I): including any stereochemically isomeric form thereof, or pharmaceutically acceptable salts thereof, for the treatment of, for example, cancer.