Electrolytic solution of rechargeable magnesium cell and application method thereof
An electrolyte and magnesium battery technology, applied in secondary batteries, circuits, electrical components, etc., can solve the problems of complex preparation process, and achieve the effects of simple preparation, high magnesium deposition-dissolution efficiency, and cheap raw materials
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Embodiment 1
[0033] Using N-methylaniline and ethylmagnesium chloride as solutes and tetrahydrofuran as solvent, the configuration is 2mol·L -1 N-methylaniline-ethylmagnesium chloride / tetrahydrofuran electrolyte, wherein the molar ratio of N-methylaniline to ethylmagnesium chloride is 1:1.
[0034] In the three-electrode tube, platinum is used as the working electrode, and 3mL of 2mol·L is added -1 N-methylaniline-ethylmagnesium chloride / tetrahydrofuran electrolyte, metal magnesium as counter electrode and reference electrode, assembled into a three-electrode system, cyclic voltammetry test in an argon glove box, scanning speed 50mV·s -1 . Cyclic voltammetry results such as figure 1 As shown, the magnesium deposition-dissolution performance is good, and the anodic oxidation decomposition potential of the electrolyte is 1.65V vs. Mg.
Embodiment 2
[0036] Using N-methylaniline and phenyl magnesium chloride as solutes, and tetrahydrofuran as solvent, the configuration is 2mol·L -1 N-methylaniline-phenylmagnesium chloride / tetrahydrofuran electrolyte, wherein the molar ratio of N-methylaniline to phenylmagnesium chloride is 1:1.
[0037] In the three-electrode tube, platinum is used as the working electrode, and 3mL of 2mol·L is added -1 N-methylaniline-phenylmagnesium chloride / tetrahydrofuran electrolyte, metal magnesium as counter electrode and reference electrode, assembled into a three-electrode system, cyclic voltammetry test in an argon glove box, scanning speed 50mV·s -1 . Cyclic voltammetry results such as figure 2 As shown, the magnesium deposition-dissolution performance is good, and the anodic oxidation decomposition of the electrolyte is 1.65V vs.Mg.
Embodiment 3
[0039] Using N-methylaniline, ethylmagnesium chloride and aluminum trichloride as solutes and tetrahydrofuran as solvent, the configuration is 0.5mol·L -1 N-methylaniline-ethylmagnesium chloride-aluminum trichloride / tetrahydrofuran electrolyte, in which the molar ratio of N-methylaniline to ethylmagnesium chloride is 1:1, and the molar ratio of aluminum trichloride to N-methylaniline It is 1:1.
[0040] In the three-electrode tube, platinum is used as the working electrode, and 3mL of 0.5mol·L is added -1 N-methylaniline-ethylmagnesium chloride-aluminum trichloride / tetrahydrofuran electrolyte, metal magnesium as counter electrode and reference electrode, assembled into a three-electrode system, cyclic voltammetry test in an argon glove box, scanning speed of 50mV ·S -1 . Cyclic voltammetry results such as image 3 As shown, the magnesium deposition-dissolution performance is good, and the anodic oxidation decomposition of the electrolyte is 1.8V vs. Mg.
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