MATERIALS FOR ELECTROLYTES AND METHODS FOR USE
Described herein are materials for use in electrolytes that provide a number of desirable characteristics when implemented within supercapacitors, such as high stability during supercapacitor cycling up to high temperatures high voltages, high discharge capacity, high coulombic efficiency, and excellent retention of discharge capacity and coulombic efficiency over several cycles of charging and discharging. In some embodiments, a high voltage electrolyte includes a base electrolyte and a set of additive compounds, which impart these desirable performance characteristics.
1 . A supercapacitor device, comprising:
a pair of activated carbon electrodes; and
an electrolyte solution comprising a solvent, a salt, and an additive compound;
wherein the additive compound comprises a central organic group and at least one silicon-containing group covalently bonded to the central organic group and wherein the central organic group is a phosphorous-containing group or a carbon-containing group and the silicon-containing group is represented by the formula (I):
where R 1 , R 2 , and R 3 are independently selected from the group consisting of substituted and unsubstituted C 1 -C 20 alkyl groups, substituted and unsubstituted C 1 -C 20 alkenyl groups, substituted and unsubstituted C 1 -C 20 alkynyl groups, and substituted and unsubstituted C 5 -C 20 aryl groups.
2 . The supercapacitor device of claim 1 wherein R 1 , R 2 , and R 3 , are independently selected from the group consisting of substituted and unsubstituted C 1 -C 6 alkyl groups.
3 . The supercapacitor device of claim 1 wherein R 1 , R 2 , and R 3 are each C 1 alkyl groups.
4 . The supercapacitor device of claim 1 wherein the central organic group comprises a phosphate group.
5 . The supercapacitor device of claim 1 wherein the central organic group comprises a phosphite group.
6 . The supercapacitor device of claim 1 wherein the central organic group is a polyphosphate group comprising n phosphate groups where n is an integer in the range of 1 to 100 and for each n there is at least one silicon-containing group covalently bonded to the central organic group.
7 . The supercapacitor device of claim 6 wherein n is less than or equal to 50.
8 . The supercapacitor device of claim 6 wherein n is less than or equal to 20.
9 . The supercapacitor device of claim 6 wherein n is less than or equal to 10.
10 . The supercapacitor device of claim 1 wherein the central organic group comprises a carbon containing group and the additive compound comprises an ester.
11 . The supercapacitor device of claim 10 wherein the additive compound is bis(trimethylsilyl)itaconate.
12 . The supercapacitor device of claim 10 wherein the additive compound is bis(trimethylsilyl)adipate.
13 . A supercapacitor device, comprising:
a pair of activated carbon electrodes; and
an electrolyte solution comprising a solvent, a salt, and an additive compound;
wherein the additive compound is represented by the formula (II):
A M+ B y N− (II)
where A comprises a metal ion, M+ is the oxidation number of the metal ion, B comprises a trimethylsilyl containing anion, N− is the negative charge of the anion, and y is the number of anions.
14 . The supercapacitor device of claim 13 wherein A is selected from the group consisting of a transition metal, a rare earth element, and a main group element.
15 . The supercapacitor device of claim 13 wherein B further comprises a nitrogen containing group.
16 . The supercapacitor device of claim 13 wherein B further comprises an oxygen containing group.
17 . A method of using a supercapacitor device, comprising:
providing a supercapacitor device comprising a pair of activated carbon electrodes and an electrolyte solution, the electrolyte solution comprising a solvent, a salt, and an additive compound;
wherein the additive compound comprises a central organic group and at least one silicon-containing group covalently bonded to the central organic group and wherein the central organic group is a phosphorous-containing group or a carbon-containing group and the silicon-containing group is represented by the formula (I):
where R 1 , R 2 , and R 3 are independently selected from the group consisting of substituted and unsubstituted C 1 -C 20 alkyl groups, substituted and unsubstituted C 1 -C 20 alkenyl groups, substituted and unsubstituted C 1 -C 20 alkynyl groups, and substituted and unsubstituted C 5 -C 20 aryl groups;
operating the supercapacitor device at voltages above 2.5 V.
18 . The method of claim 17 wherein further comprising operating the supercapacitor device at voltages above 2.5 V for multiple charge and discharge cycles without losses in specific capacity.
19 . The method of claim 17 wherein further comprising operating the supercapacitor device at voltages above 2.5 V for multiple charge and discharge cycles without losses in coulombic efficiency.