IP Library Granted Patent US 10,971,723
Granted Patent B2
US 10,971,723 · App. 15/954,088 · Granted Apr 6, 2021

Process for alkali metal-selenium secondary battery containing a cathode of encapsulated selenium particles

Inventors: Aruna Zhamu (Springboro, OH); Bor Z. Jang (Centerville, OH)
Assignee: Global Graphene Group, Inc.
H01M4/366H01M4/0404H01M4/38H01M4/581H01M4/5825H01M4/625H01M4/628H01M10/054H01M10/058H01M10/0525H01M2004/028
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Quick Facts
Patent No.
US 10,971,723
App. No.
15/954,088
Granted
Apr 6, 2021
Kind
B2
Abstract

Provided is a method of manufacturing an alkali metal-selenium cell, comprising: (a) providing a cathode; (b) providing an alkali metal anode; and (c) combining the anode and the cathode and adding an electrolyte in ionic contact with the anode and the cathode to form the cell; wherein the cathode contains multiple particulates of a selenium-containing material selected from selenium, a selenium-carbon hybrid, selenium-graphite hybrid, selenium-graphene hybrid, conducting polymer-selenium hybrid, a metal selenide, a Se alloy or mixture with Sn, Sb, Bi, S, or Te, a selenium compound, or a combination thereof and wherein at least one of the particulates comprises one or a plurality of selenium-containing material particles being embraced or encapsulated by a thin layer of an elastomer having a recoverable tensile strain from 5% to 1000%, a lithium ion conductivity no less than 10 −7 S/cm, and a thickness from 0.5 nm to 10 μm.

Claims (21)

1. A method of manufacturing a rechargeable alkali metal-selenium cell, said method comprising:

(a) providing a cathode and an optional cathode current collector to support said cathode;

(b) providing an alkali metal anode and an optional anode current collector to support said anode; and

(c) combining the anode and the cathode and adding an electrolyte in contact with the anode and the cathode to form said alkali metal-selenium cell;

wherein said cathode contains multiple particulates of a selenium-containing material selected from selenium, a selenium-carbon hybrid, selenium-graphite hybrid, selenium-graphene hybrid, conducting polymer-selenium hybrid, a metal selenide, a Se alloy or mixture with Sn, Sb, Bi, S, or Te, a selenium compound, or a combination thereof and wherein at least one of said particulates comprises one or a plurality of said selenium-containing material particles being embraced or encapsulated by a thin layer of an elastomer having a recoverable tensile strain from 5% to 1000% when measured without an additive or reinforcement being present in said elastomer, a lithium ion conductivity no less than 10 −7 S/cm at room temperature, and a thickness from 0.5 nm to 10 μm.

2. The manufacturing method of claim 1 , wherein a separator is added to electrically separate the anode and the cathode.

3. The manufacturing method of claim 1 , wherein said selenium-containing material is selected from a selenium-carbon hybrid, selenium-graphite hybrid, selenium-graphene hybrid, conducting polymer-selenium hybrid, a metal selenide, a Se alloy or mixture with Sn, Sb, Bi, S, or Te, a selenium compound, or a combination thereof.

4. The manufacturing method of claim 3 , wherein said selenium-carbon hybrid, selenium-graphite hybrid, selenium-graphene hybrid, or conducting polymer-selenium hybrid is a mixture, blend, composite, chemically or physically bonded entity of selenium or selenide with a carbon, graphite, graphene, or conducting polymer material.

5. The manufacturing method of claim 1 , wherein said elastomer contains a material selected from natural polyisoprene, synthetic polyisoprene, polybutadiene, chloroprene rubber, polychloroprene, butyl rubber, styrene-butadiene rubber, nitrile rubber, ethylene propylene rubber, ethylene propylene diene rubber, epichlorohydrin rubber, polyacrylic rubber, silicone rubber, fluorosilicone rubber, perfluoroelastomers, polyether block amides, chlorosulfonated polyethylene, ethylene-vinyl acetate, thermoplastic elastomer, protein resilin, protein elastin, ethylene oxide-epichlorohydrin copolymer, polyurethane, urethane-urea copolymer, or a combination thereof.

6. The manufacturing method of claim 1 , wherein said elastomer has a thickness from 1 nm to 100 nm.

7. The manufacturing method of claim 1 , wherein said elastomer has a lithium ion conductivity or sodium ion conductivity from 1×10 −5 S/cm to 5×10 −2 S/cm.

8. The manufacturing method of claim 1 , wherein said elastomer has a recoverable tensile strain from 10% to 300%.

9. The manufacturing method of claim 1 , wherein said providing multiple particulates includes encapsulating or embracing said one or a plurality of selenium-containing material particles with said thin layer of elastomer using a procedure selected from pan coating, air suspension, centrifugal extrusion, vibrational nozzle, spray-drying, ultrasonic spraying, coacervation-phase separation, interfacial polycondensation, in-situ polymerization, matrix polymerization, or a combination thereof.

10. The manufacturing method of claim 1 , wherein said providing multiple particulates includes encapsulating or embracing said one or a plurality of selenium-containing material particles with a mixture of said elastomer with an electronically conductive polymer, a lithium-ion conducting material, a sodium ion-conducting material, a reinforcement material, or a combination thereof.

11. The manufacturing method of claim 10 , wherein said lithium ion-conducting material is dispersed in said high-elasticity polymer and is selected from Li 2 CO 3 , Li 2 O, Li 2 C 2 O 4 , LiOH, LiX, ROCO 2 Li, HCOLi, ROLi, (ROCO 2 Li) 2 , (CH 2 OCO 2 Li) 2 , Li 2 S, Li x SO y , or a combination thereof, wherein X=F, Cl, I, or Br, R=a hydrocarbon group, 0<x≤1 and 1≤y≤4.

12. The manufacturing method of claim 10 , wherein said lithium ion-conducting material is dispersed in said high-elasticity polymer and is selected from lithium perchlorate (LiClO 4 ), lithium hexafluorophosphate (LiPF 6 ), lithium borofluoride (LiBF 4 ), lithium hexafluoroarsenide (LiAsF 6 ), lithium trifluoro-metasulfonate (LiCF 3 SO 3 ), bis-trifluoromethyl sulfonylimide lithium (LiN(CF 3 SO 2 ) 2 ), lithium bis(oxalato)borate (LiBOB), lithium oxalyldifluoroborate (LiBF 2 C 2 O 4 ), lithium oxalyldifluoroborate (LiBF 2 C 2 O 4 ), lithium nitrate (LiNO 3 ), Li-fluoroalkyl-phosphate (LiPF 3 (CF 2 CF 3 ) 3 ), lithium bisperfluoro-ethysulfonylimide (LiBETI), lithium bis(trifluoromethanesulfonyl)imide, lithium bis(fluorosulfonyl)imide, lithium trifluoromethanesulfonimide (LiTFSI), an ionic liquid-based lithium salt, or a combination thereof.

13. The manufacturing method of claim 10 , wherein said sodium ion-conducting material is dispersed in said high-elasticity polymer and is selected from Na 2 CO 3 , Na 2 O, Na 2 C 2 O 4 , NaOH, NaX, ROCO 2 Na, HCONa, RONa, (ROCO 2 Na) 2 , (CH 2 OCO 2 Na) 2 , Na 2 S, Na x SO y , or a combination thereof, wherein X=F, Cl, I, or Br, R=a hydrocarbon group, 0<x≤1 and 1≤y≤4.

14. The manufacturing method of claim 10 , wherein said sodium ion-conducting material is dispersed in said high-elasticity polymer and is selected from sodium perchlorate (NaClO 4 ), sodium hexafluorophosphate (NaPF 6 ), sodium borofluoride (NaBF 4 ), sodium hexafluoroarsenide (NaAsF 6 ), sodium trifluoro-metasulfonate (NaCF 3 SO 3 ), bis-trifluoromethyl sulfonylimide sodium (NaN(CF 3 SO 2 ) 2 ), sodium bis(oxalato)borate (NaBOB), sodium oxalyldifluoroborate (NaBF 2 C 2 O 4 ), sodium oxalyldifluoroborate (NaBF 2 C 2 O 4 ), sodium nitrate (NaNO 3 ), Na-fluoroalkyl-phosphates (NaPF 3 (CF 2 CF 3 ) 3 ), sodium bisperfluoro-ethysulfonylimide (NaBETI), sodium bis(trifluoromethanesulfonyl)imide, sodium bis(fluorosulfonyl)imide, sodium trifluoromethanesulfonimide (NaTFSI), an ionic liquid-based sodium salt, or a combination thereof.

15. The manufacturing method of claim 1 , wherein said elastomer contains from 0.1% to 50% by weight of a lithium ion-conducting additive or sodium ion-conducting additive dispersed therein, or contains therein from 0.1% by weight to 10% by weight of a reinforcement nanofilament selected from carbon nanotube, carbon nanofiber, graphene, or a combination thereof.

16. The manufacturing method of claim 1 , wherein said metal selenide contains M x Se y , wherein x is an integer from 1 to 3 and y is an integer from 1 to 10, and M is a metal element selected from an alkali metal, an alkaline metal selected from Mg or Ca, a transition metal, a metal from groups 13 to 17 of the periodic table, or a combination thereof.

17. The manufacturing method of claim 16 , wherein said metal element M is selected from Li, Na, K, Mg, Zn, Cu, Ti, Ni, Co, Fe, or Al.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 28, 2024
From: GLOBAL GRAPHENE GROUP, INC.
To: HONEYCOMB BATTERY COMPANY
Reel/Frame 066957/0745 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 17, 2019
From: NANOTEK INSTRUMENTS, INC.
To: GLOBAL GRAPHENE GROUP, INC.
Reel/Frame 049784/0650 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 1, 2018
From: ZHAMU, ARUNA; JANG, BOR Z
To: NANOTEK INSTRUMENTS, INC.
Reel/Frame 045677/0763 →
Continuity (1)
Related Publication 20190319264A1 · Oct 17, 2019