Polymer network single-ion conductors with flexible linker
The disclosure provides for polymer networks having the general structure: that can effectively serve as a single-ion conducting electrolyte.
1. A conductive three dimensional (3D) polymer network comprising a plurality of cores having a structure of Formula I:
wherein, R 1 -R 12 are independently selected from the group comprising H, D, optionally substituted alkyl, optionally substituted heteroalkyl, optionally substituted alkenyl, optionally substituted heteroalkenyl, optionally substituted alkynyl, optionally substituted heteroalkynyl, optionally substituted cycloalkyl, optionally substituted cycloalkenyl, optionally substituted aryl, optionally substituted heterocycle, optionally substituted mixed ring system, wherein one or more adjacent R groups are optionally linked together to form one or more substituted rings selected from the group comprising cycloalkyl, cycloalkenyl, heterocycle, aryl, and mixed ring system; and n is 0 or more; X 1 -X 3 are each independently O, CH 2 , NH or S.
2. A conductive three dimensional (3D) polymer network comprising a plurality of cores having a structure of Formula I(a):
wherein, R 5 -R 12 are independently selected from the group comprising H, D, optionally substituted alkyl, optionally substituted heteroalkyl, optionally substituted alkenyl, optionally substituted heteroalkenyl, optionally substituted alkynyl, optionally substituted heteroalkynyl, optionally substituted cycloalkyl, optionally substituted cycloalkenyl, optionally substituted aryl, optionally substituted heterocycle, optionally substituted mixed ring system, wherein one or more adjacent R groups are optionally linked together to form one or more optionally substituted rings selected from the group comprising cycloalkyl, cycloalkenyl, heterocycle, aryl, and mixed ring system; wherein n is 0 or more; X 1 -X 3 are each independently O, CH 2 , NH or S.
3. A conductive three dimensional (3D) polymer network comprising a plurality of cores having a structure of Formula I(b):
wherein, R 5 -R 12 are independently selected from the group comprising H, D, optionally substituted alkyl, optionally substituted heteroalkyl, optionally substituted alkenyl, optionally substituted heteroalkenyl, optionally substituted alkynyl, optionally substituted heteroalkynyl, optionally substituted cycloalkyl, optionally substituted cycloalkenyl, optionally substituted aryl, optionally substituted heterocycle, optionally substituted mixed ring system, wherein one or more adjacent R groups are optionally linked together to form one or more optionally substituted rings selected from the group comprising cycloalkyl, cycloalkenyl, heterocycle, aryl, and mixed ring system; wherein n is 0 or more.
4. The conductive 3D polymer network of claim 1 or 2 , wherein X 1 -X 3 are selected from the group consisting of:
(a) X 1 -X 3 are each O;
(b) X 1 and X 3 are each O, S or NH and X 2 is selected from O, S, NH or CH 2 ;
(c) X 1 and X 3 are 0 and X 2 is CH 2 ;
(d) X 1 and X 3 are S and X 2 is CH 2 ; and
(e) X 1 and X 3 are NH and X 2 is CH 2 or O.
5. The conductive 3D polymer network of claim 1 , 2 or 3 , wherein R 5 -R 12 are independently selected from H, D, F, hydroxyl, amino, and alkoxy.
6. The conductive 3D polymer network of claim 5 , wherein R 5 -R 12 are H.
7. The conductive 3D polymer network of claim 6 , wherein the polymer network has a diamondoid connectivity, or an amorphous topology.
8. The conductive 3D polymer network of claim 6 , wherein the polymer network has dense interpenetration of a plurality of individual polymer networks.
9. The conductive 3D polymer network of claim 6 , wherein the polymer network is non-porous.
10. The conductive 3D polymer network of claim 6 , wherein the polymer network was processed by immersing the polymer network in one or more of the following solvent mixtures: deionized water, methanol, 1:1 methanol:tetrahydrofuran, tetrahydrofuran, and dichloromethane.
11. The conductive 3D polymer network of claim 6 , wherein the polymer network was dried by heating to at least 100 to about 120° C. under high vacuum (<0.1 torr) for at least 12 hours.
12. The conductive 3D polymer network of claim 6 , wherein the 3D polymer network is loaded with a plasticizer.
13. The conductive 3D polymer network of claim 6 , wherein the 3D polymer network conducts lithium ions.
14. The conductive 3D polymer network of claim 13 , wherein the 3D polymer network has lithium ion conductivity of at least 3.3×10 −4 S/cm at 100° C.
15. The conductive 3D polymer network of claim 6 , wherein the 3D polymer network cannot be penetrated by lithium dendrites.
16. The conductive 3D polymer network of claim 6 , wherein n is 8 to 21 the linker is flexible.
17. The conductive 3D polymer network of claim 6 , wherein n is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20 or 21.
18. The conductive 3D polymer network of claim 6 , wherein the 3D polymer network comprises a plurality of lithium ions.
19. A battery comprising the conductive 3D polymer network of claim 6 .
20. The battery of claim 19 , wherein the battery is a lithium ion battery.