The preparation method of 1,4-diallylisoquinoline
A diallyl isoquinoline and cyclohexenyl technology, applied in 1 field, can solve problems such as application limitation, single starting material, etc., and achieve the effects of short reaction time, simple raw materials, and reasonable process selection
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Embodiment 1
[0018] Example 1 1 , 4- diallyl -3- Synthesis of Phenylisoquinoline
[0019] The synthetic route of 1,4-diallyl-3-phenylisoquinoline is shown in the following formula:
[0020]
[0021] At room temperature, 1-(azidomethyl)-2-(phenylethynyl)benzene (11.7mg, 0.05mmol), potassium phosphate (53.1mg, 0.25mmol), Pd(PPh 3 ) 4 (2.9mg, 0.0025mmol) was put into a 5ml reaction kettle with magnetic stirring function. After completion, fill the reactor with argon and cover it with a lid. DMF (1 ml) and allyl methcarbonate (28.4 L, 0.25 mmol) were sequentially injected into the reaction vessel using a syringe. The reaction kettle was stirred at room temperature for ten minutes, then heated to 100°C and continued to stir, and was taken out after 4 hours. After-treatment of the reactant, first pass the solid-liquid mixture through the column to obtain the liquid, then use water and ethyl acetate to extract the obtained liquid, combine the organic layers, dry and spin dry, and ...
Embodiment 2
[0023] Example 2 1 , 4- diallyl -3- Synthesis of p-Methoxyphenylisoquinoline
[0024] The synthetic route of 1,4-diallyl-3-p-methoxyphenylisoquinoline is shown in the following formula:
[0025]
[0026] At room temperature, 1-(azidomethyl)-2-((4-methoxyphenyl)ethynyl)benzene (13.2mg, 0.05mmol), potassium phosphate (53.1mg, 0.25mmol), Pd(PPh 3 ) 4 (3.8mg, 0.0033mmol) was put into a 5ml reaction kettle with magnetic stirring function. After completion, fill the reactor with argon and cover it with a lid. DMF (1 ml) and allyl methcarbonate (28.4 L, 0.25 mmol) were sequentially injected into the reaction vessel using a syringe. The reaction kettle was stirred at room temperature for ten minutes, then heated to 100°C and continued to stir, and was taken out after 4 hours. After-treatment of the reactant, first pass the solid-liquid mixture through the column to obtain the liquid, then use water and ethyl acetate to extract the obtained liquid, combine the organic l...
Embodiment 3
[0028] Example 3 1 , 4- diallyl -7- chlorine -3 Synthesis of Phenylisoquinoline
[0029] The synthetic route of 1,4-diallyl-7-chloro-3-phenylisoquinoline is shown in the following formula:
[0030]
[0031] At room temperature, 2-(azidomethyl)-4-chloro-1-(phenylethynyl)benzene (12.4mg, 0.05mmol), potassium phosphate (53.1mg, 0.25mmol), Pd(PPh 3 ) 4 (2.9mg, 0.0025mmol) was put into a 5ml reaction kettle with magnetic stirring function. After completion, fill the reactor with argon and cover it with a lid. DMF (1 ml) and allyl methcarbonate (28.4 μL, 0.25 mmol) were sequentially injected into the reaction vessel using a syringe. The reaction kettle was stirred at room temperature for ten minutes, then heated to 100°C and continued to stir, and was taken out after 4 hours. After-treatment of the reactant, first pass the solid-liquid mixture through the column to obtain the liquid, then use water and ethyl acetate to extract the obtained liquid, combine the orga...
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