Electrolyte and lithium-air battery that promote carbonate decomposition
A lithium-air battery and electrolyte technology, applied in electrical components, secondary batteries, fuel cell-type half-cells and secondary battery-type half-cells, etc., can solve the problem of catalysts being unable to catalyze
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Embodiment 1
[0087] Electrolyte No.1 and Li-air battery No.1
[0088] The method of dispersing the catalyst is as follows: 0.005 mol / L dinuclear cobalt phthalocyanine (biCoPc) and 1 mol / L LiTFSI are dissolved in tetraethylene glycol dimethyl ether (TEGDME) to prepare an electrolyte solution. As a comparison, 0.005 mol / L mononuclear cobalt phthalocyanine (CoPc) and 1 mol / L LiTFSI were dissolved in tetraethylene glycol dimethyl ether (TEGDME) to prepare an electrolyte solution. At the same time, a catalyst-free 1mol / L LiTFSI / TEGDME electrolyte was prepared.
[0089] The method for preparing lithium-lithium carbonate battery is as follows: 0.15g Li 2 CO 3 Add 5mL N-methylpyrrolidone (NMP) with 0.15g KetjenBlack EC600JD high-conductivity carbon black (KB), add 0.026g polyimide (PI) as a binder, obtain electrode material slurry after magnetic stirring for 2 hours, and mix the slurry The material is evenly coated on the surface of the nickel foam, and then the nickel foam coated with the slur...
Embodiment 2
[0093] Electrolyte No.2 and lithium-air battery No.2
[0094] The method of dispersing the catalyst is as follows: 0.005 mol / L dinuclear cobalt phthalocyanine (biCoPc) and 1 mol / L LiTFSI are dissolved in tetraethylene glycol dimethyl ether (TEGDME) to prepare an electrolyte solution. As a comparison, 0.005 mol / L mononuclear cobalt phthalocyanine (CoPc) and 1 mol / L LiTFSI were dissolved in tetraethylene glycol dimethyl ether (TEGDME) to prepare an electrolyte solution. At the same time, a catalyst-free 1mol / L LiTFSI / TEGDME electrolyte was prepared.
[0095] The method for preparing lithium-lithium carbonate battery is as follows: 1.30~1.50mg isotope-labeled Li 2 13 CO 3 Add 1mL of N-methylpyrrolidone (NMP) to KetjenBlack EC600JD high-conductivity carbon black (KB) at a mass ratio of 1:1, add 5mg of polyimide (PI) as a binder, and obtain electrode material slurry after ultrasonic dispersion for 2 hours , apply the slurry evenly on the surface of nickel foam, then move the ni...
Embodiment 3
[0103] Electrolyte No.3 and lithium-air battery No.3
[0104] The method of dispersing the catalyst is as follows: 0.005mol / L biCoPc and 1mol / L LiClO 4 Dissolved in DMSO, prepared as electrolyte. At the same time, prepare 1mol / L LiClO without catalyst 4 / DMSO electrolyte.
[0105] The method for preparing lithium-carbon dioxide / oxygen battery is as follows: take KB 0.15g, add 0.45mL 6wt% polytetrafluoroethylene (PTFE) emulsion as binder, and 5mL deionized water as dispersant, obtain electrode material after magnetic stirring for 2h Slurry, evenly apply the slurry to the surface of nickel foam, then move the nickel foam coated with slurry into an oven, dry it at 80°C and then move it into a vacuum oven, dry it in vacuum at 120°C for 12 hours, and cut it into pieces with a slicer A disc with a diameter of 14mm is used as the positive pole piece of the lithium-air battery, and the KB load is controlled to be 1±0.2mg / cm 2 . Spread the positive electrode sheet on the pre-drill...
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