Method for preparing lithium bis (fluorosulfonyl) imide by using organic metal lithium reagent
A technology for lithium bisfluorosulfonimide and fluorosulfonimide acid is applied in the field of preparing lithium bisfluorosulfonimide, which can solve the problems of difficulty in using conventional storage equipment, increase in storage cost and the like, and achieve high yield , The effect of stable product quality
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Embodiment 1
[0031] Take a 100mL solvent storage bottle (bottle A) and transfer 33.2mL of 1mol / L (ethyllithium / benzene) solution for use. Take another 50mL solvent storage bottle (bottle B) and transfer 5g of HFSI and 15g of benzene into it, mix well, and set aside. Prepare a 250mL reaction flask, first add 30ml of benzene and a stirrer into the flask, and cool to -10°C, then slowly drop the solutions in bottle A and bottle B into the reaction bottle through capillary tubes to start the reaction. The reaction temperature was maintained at -10°C. The dropwise addition was completed in about 2 hours, after the dropwise addition was completed. The reaction was continued for 1 hour. After the reaction is complete, stop stirring and return to room temperature. At this time, solids will precipitate at the bottom of the bottle. Pour the reaction solvent benzene into a 1000ml bottle (bottle D). The solid was then washed 5 times with 30 mL of benzene. The washing liquid is also collected in bot...
Embodiment 2
[0033]Take a 100mL solvent storage bottle (bottle A) and transfer 21.6mL of 1.6mol / L (n-butyllithium / n-hexane) solution for use. Take another 50mL solvent storage bottle (bottle B) and transfer 5g of HFSI and 15g of n-hexane, mix well, and set aside. Prepare a 250mL reaction bottle, first add 30ml of n-hexane and a stirrer into the bottle, and cool to -15°C, then slowly drop the solutions of bottle A and bottle B into the reaction bottle through capillary tubes to start the reaction. The reaction temperature was maintained at -15°C. The dropwise addition was completed in about 3 hours, after the dropwise addition was completed. The reaction was continued for 1 hour. After the reaction is complete, stop stirring and return to room temperature. At this time, solids will precipitate at the bottom of the bottle. Pour the reaction solvent n-hexane into a 1000ml bottle (bottle D). The solid was then washed 5 times with 30 mL of n-hexane. The washing liquid is also collected in b...
Embodiment 3
[0035] Take a 100mL solvent storage bottle (bottle A) and transfer 21.6mL of 1.6mol / L (phenyllithium / cyclohexane) solution for use. Take another 50mL solvent storage bottle (bottle B) and transfer 5g of HFSI and 15g of cyclohexane, mix well, and set aside. Prepare a 250mL reaction flask, first add 30ml cyclohexane and a stirrer to the flask, and cool to -20°C, then slowly drop the solutions in bottle A and bottle B into the reaction bottle through capillary tubes to start the reaction. The reaction temperature was maintained at -20°C. The dropwise addition was completed in about 2 hours, after the dropwise addition was completed. The reaction was continued for 2 hours. After the reaction is complete, stop stirring and return to room temperature. At this time, solids will precipitate at the bottom of the bottle. Pour the reaction solvent cyclohexane into a 1000ml bottle (bottle D). The solid was then washed 5 times with 30 mL of cyclohexane. The washing liquid is also colle...
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