IP Library Granted Patent US 12,562,400
Granted Patent B2
US 12,562,400 · App. 16/492,380 · Granted Feb 24, 2026

Aqueous hydrogel electrolyte systems with wide electrochemical stability window

Inventors: Chunsheng Wang (Silver Spring, MD); Chongyin Yang (College Park, MD)
Assignee: University of Maryland, College Park
H01M10/0569H01M4/131H01M4/134H01M4/136H01M4/505H01M4/525H01M4/5825H01M2300/0022
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,562,400
App. No.
16/492,380
Granted
Feb 24, 2026
Kind
B2
Abstract

The present invention is directed to aqueous electrolytes that comprise at least one metal salt and at least one polymer. The present invention is also directed to methods of making the electrolyte materials and methods of using the electrolyte materials in batteries and other electrochemical technologies.

Claims (25)

1 . An electrochemical cell comprising:

(a) an anode comprising sulfur;

(b) a cathode; and

(c) an aqueous hydrogel electrolyte comprising between about 25 m and about 50 m of at least one metal salt, at least one solvent comprising between about 1% and about 100% water by weight, and at least one hydrophilic polymer so as to form a hydrogel having a hydrophilic polymer matrix, wherein the anode is capable of forming decomposition products, wherein the decomposition products comprise one or more metal polysulfides, wherein the decomposition products are phase-separated from the electrolyte, and wherein the aqueous hydrogel electrolyte floods the cell so as to define an internal pressure and a capacity retention of the cell of at least 62% over 200 cycles at 1 C.

2 . The electrochemical cell of claim 1 , wherein the at least one metal salt comprises a metal ion selected from the group consisting of Li + , Na + , K + , Mg 2+ , and Al 3+ .

3 . The electrochemical cell of claim 1 , wherein the at least one metal salt comprises an anion selected from the group consisting of bis(trifluoromethane sulfonyl)imide (TFSI), trifluoromethane sulfonate (OTf), bis(fluorosulfonyl)imide (FSI), tetrafluorophosphate (BF 4 ), hexafluorophosphate (PF 6 ), bis(pentafluoroethane sulfonyl) imide (BETI), 4,5-dicyano-2-trifluoromethanoimidazole (DCMI), imide (FNF), perchlorate (ClO 4 ), sulfate (SO 4 ), and nitrate (NO 3 ).

4 . The electrochemical cell of claim 1 , wherein the at least one metal salt is selected from the group consisting of lithium bis (trifluoromethane sulfonyl)imide, lithium trifluoromethane sulfonate, lithium bis(fluorosulfonyl)imide, lithium bis(pentafluoroethane sulfonyl)imide, lithium 4,5-dicyano-2-trifluoromethanoimidazole, lithium [fluoro(nonafluorobutane) sulfonyl)]imide, lithium perchlorate, lithium sulfate, lithium nitrate, sodium bis(trifluoromethane sulfonyl)imide, sodium trifluoromethane sulfonate, sodium bis(fluorosulfonyl)imide, sodium bis(pentafluoroethane sulfonyl)imide, sodium 4,5-dicyano-2-trifluoromethanoimidazole, sodium [fluoro(nonafluorobutane) sulfonyl)]imide, sodium perchlorate, sodium sulfate, sodium nitrate, potassium bis(trifluoromethane sulfonyl)imide, potassium trifluoromethane sulfonate, potassium bis(fluorosulfonyl)imide, potassium bis(pentafluoroethane sulfonyl)imide, potassium 4,5-dicyano-2-trifluoromethanoimidazole, potassium [fluoro(nonafluorobutane) sulfonyl)]imide, potassium perchlorate, potassium sulfate, potassium nitrate, magnesium bis(trifluoromethane sulfonyl)imide, magnesium trifluoromethane sulfonate, magnesium bis(fluorosulfonyl)imide, magnesium bis(pentafluoroethane sulfonyl)imide, magnesium 4,5-dicyano-2-trifluoromethanoimidazole, magnesium [fluoro(nonafluorobutane) sulfonyl)]imide, magnesium perchlorate, magnesium sulfate, magnesium nitrate, aluminum bis(trifluoromethane sulfonyl)imide, aluminum trifluoromethane sulfonate, aluminum bis(fluorosulfonyl)imide, aluminum bis(pentafluoroethane sulfonyl)imide, aluminum 4,5-dicyano-2-trifluoromethanoimidazole, aluminum [fluoro(nonafluorobutane) sulfonyl)]imide, lithium perchlorate, aluminum sulfate, and aluminum nitrate.

5 . The electrochemical cell of claim 1 , wherein the at least one hydrophilic polymer is selected from the group consisting of a poly(N-isopropylacrylamide), a polyacrylamide, a poly(2-oxazoline), a polyethyleneimine, a poly(acrylic acid), a polymethacrylate, a poly(ethylene glycol), a poly(ethylene oxide), a poly(vinyl alcohol), and a poly(vinylpyrrolidine).

6 . The electrochemical cell of claim 1 , wherein the cathode is a lithium metal oxide or a lithium metal phosphate.

7 . The electrochemical cell of claim 1 , wherein the cathode is selected from the group consisting of LiFePO 4 , LiMn 2 O 4 , LiCoO 2 , LiNi 0.33 Mn 0.33 Co 0.33 O 2 , LiNi 0.6 Mn 0.2 Co 0.2 O 2 , LiNi 0.8 Mn 0.1 Co 0.1 O 2 , LiNi 0.5 Mn 1.5 O 4 , LiNi 0.8 Co 0.15 Al 0.05 O 2 , LiVPO 4 F, and LiMnPO 4 .

8 . The electrochemical cell of claim 1 , wherein the at least one hydrophilic polymer comprises poly(vinyl alcohol), the cathode comprises LiMn 2 O 4 or LiCoO 2 , the anode comprises sulfur-Ketjenblack, and the at least one solvent comprises the metal salts LiTFSI and LiOTf.

9 . The electrochemical cell of claim 1 , wherein the capacity decay rate (mAh/g) at a C-rate of about 2.5 C is between about 0.005% and about 0.1% per cycle.

10 . The electrochemical cell of claim 1 , wherein the energy density at a C-rate of about 0.5 C is between about 20 Wh/kg and about 200 Wh/kg.

11 . The electrochemical cell of claim 1 , wherein the at least one metal salt comprises a metal ion comprising Li + , Na + , K + , Mg 2+ , or Al 3+ .

12 . The electrochemical cell of claim 1 , wherein the at least one metal salt comprises an anion comprising bis(trifluoromethane sulfonyl)imide (TFSI), trifluoromethane sulfonate (OTf), bis(fluorosulfonyl)imide (FSI), tetrafluorophosphate (BF4), hexafluorophosphate (PF 6 ), bis(pentafluoroethane sulfonyl) imide (BETI), 4,5-dicyano-2-trifluoromethanoimidazole (DCMI), imide (FNF), perchlorate (ClO 4 ), sulfate (SO 4 ), or nitrate (NO 3 ).

13 . The electrochemical cell of claim 1 , wherein the at least one metal salt comprises LiTFSI, LiOTf, LiFSI, LiBETI, LiDCMI, LiFNF, LiClO 4 , LiSO 4 , LiNO 3 , NaTF SI, NaOTf, NaFSI, NaBETI, NaDCMI, NaFNF, NaClO 4 , NaSO 4 , NaNO 3 , KTFSI, KOTf, KFSI, KBETI, KDCMI, KFNF, KClO 4 , KSO 4 , KNO 3 , Mg(TFSI) 2 , Mg(OTf) 2 , Mg(FSI) 2 , Mg(BETI) 2 , Mg(DCMI) 2 , Mg(FNF) 2 , Mg(ClO 4 ) 2 , Mg(SO 4 ) 2 , Mg(NO 3 ) 2 , Al(TFSI) 3 , Al(OTf) 3 , Al(FSI) 3 , Al(BETI) 3 , Al(DCMI) 3 , Al(FNF) 3 , Al(ClO 4 ) 3 , Al(SO 4 ) 3 , or Al(NO 3 ) 3 .

14 . The electrochemical cell of claim 1 , wherein the at least one hydrophilic polymer comprises a poly(N-isopropylacrylamide), a polyacrylamide, a poly(2-oxazoline), a polyethyleneimine, a poly(acrylic acid), a polymethacrylate, a poly(ethylene glycol), a poly(ethylene oxide), a poly(vinyl alcohol), or a poly(vinylpyrrolidine).

15 . The electrochemical cell of claim 1 , wherein the cathode comprises LiFePO 4 , LiMn 2 O 4 , LiCoO 2 , LiNi 0.33 Mn 0.33 Co 0.33 O 2 , LiNi 0.6 Mn 0.2 Co 0.2 O 2 , LiNi 0.8 Mn 0.1 Co 0.1 O 2 , LiNi 0.5 Mn 1.5 O 4 , LiNi 0.8 Co 0.15 Al 0.05 O 2 , LiVPO 4 F, or LiMnPO 4 .

16 . The electrochemical cell of claim 1 , wherein the anode comprises sulfur-Ketjenblack.

17 . The electrochemical cell of claim 1 , wherein the anode comprises sulfur-Ketjenblack and the decomposition products comprise lithium polysulfides.

18 . The electrochemical cell of claim 1 , wherein the aqueous hydrogel electrolyte comprises two metal salts.

19 . The electrochemical cell of claim 1 , wherein the aqueous hydrogel electrolyte comprises water-in-bisalt electrolyte and wherein the polymer matrix comprises polyvinyl alcohol mixed within the water-in-bisalt electrolyte;

the anode is sulfur-Ketjenblack;

the cathode is LiMn 2 O 4 or LiCoO 2 ; and

the cell has an energy density ranging from 135 Wh/kg to 195 Wh/kg.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 21, 2026
From: WANG, CHUNSHENG; YANG, CHONGYIN
To: UNIVERSITY OF MARYLAND, COLLEGE PARK
Reel/Frame 073530/0927 →
CONFIRMATORY LICENSE Recorded Jun 9, 2022
From: UNIV OF MARYLAND, COLLEGE PARK
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 060316/0920 →
Continuity (2)
Provisional Application 62469923 · Mar 10, 2017
Related Publication 20210066755A1 · Mar 4, 2021
References Cited (42)
US 20140306665A1 · Kim · 2014 [cited by examiner]
US 20160351968A1 · Wang et al. · 2016 [cited by applicant]
US 20170098856A1 · Zhamu · 2017 [cited by examiner]
US 20170254818A1 · Haskins · 2017 [cited by examiner]
US 20170256818A1 · Eitouni · 2017 [cited by examiner]
US 20170279159A1 · Suyama · 2017 [cited by examiner]
CN 104600357 · 2015 [cited by examiner]
EP 0821368A2 · 1998 [cited by applicant]
Machine translation of CN 104600357, retrived from <www.espacenet.com> on Nov. 5, 2021. [cited by examiner]
Suo, Advanced high-voltage aqueous lithium battery enabled by “water-in-bisalt” electrolyte, Angewandte Chemie, 2016, 55, 7136-7141. [cited by examiner]
Bruce, P.G., et al., “Li—O [cited by applicant]
Busche, M.R., et al., “Systematical Electrochemical Study on the Parasitic Shuttle-effect in Lithium-sulfur-cells at Different Temperatures and Different Rates,” [cited by applicant]
Chen, Z., and Dahn, J.R., “Methods to Obtain Excellent Capacity Retention in LiCoO [cited by applicant]
Demir-Cakan, R., et al., “An Aqueous Electrolyte Rechargeable Li-ion/Polysulfide Battery,” [cited by applicant]
International Search Report and Written Opinion for International Application No. PCT/US2018/021805, ISA/US, Alexandria, Virginia, United States, mailed on Aug. 13, 2018, 7 pages. [cited by applicant]
Janz, G.J., et al., “Raman Studies of Sulfur-containing Anions in Inorganic Polysulfides. Potassium Polysulfides,” [cited by applicant]
Jayaprakash, N., et al., “Porous Hollow Carbon@sulfur Composites for High-power Lithium-sulfur Batteries,” [cited by applicant]
Ji, X., et al., “A Highly Ordered Nanostructured Carbon-sulphur Cathode for Lithium-sulphur Batteries,” [cited by applicant]
Ji, X., and Nazar, L.F., “Advances in Li—S Batteries,” Journal of Material Chemistry 20(44):9821-9826, Royal Society of Chemistry, United Kingdom (Nov. 2010). [cited by applicant]
Larcher, D, and Tarascon, J.M., “Towards Greener and More Sustainable Batteries for Electrical Energy Storage,” [cited by applicant]
Li, N., et al., “An Aqueous Dissolved Polysulfide Cathode for Lithium-sulfur Batteries,” [cited by applicant]
Liang, X., et al., “A Highly Efficient Polysulfide Mediator for Lithium-sulfur Batteries,” [cited by applicant]
Licht, S., “Aqueous Solubilities, Solubility Products and Standard Oxidation-reduction Potentials of the Metal Sulfides,” [cited by applicant]
Mikhaylik Y.V., and Akridge, J.R., “Polysulfide Shuttle Study in the Li/s Battery System,” [cited by applicant]
Pang, Q., et al., “Surface-enhanced Redox Chemistry of Polysulphides on a Metallic and Polar Host for Lithium-sulphur Batteries,” [cited by applicant]
Park, J.W., et al., “Solvent Effect of Room Temperature Ionic Liquids on Electrochemical Reactions in Lithium-sulfur Batteries,” [cited by applicant]
Peng, X., et al., “A Zwitterionic Gel Electrolyte for Efficient Solid-state Supercapacitors,” [cited by applicant]
Qie, L., et al., “A High Energy Lithium-sulfur Battery With Ultrahigh-loading Lithium Polysulfi De Cathode and Its Failure Mechanism,” [cited by applicant]
Smith, L.C., et al., “Sol-gel Encapsulated Lithium Polysulfide Catholyte and Its Application in Lithium-sulfur Batteries,” [cited by applicant]
Su, Y.S., et al., “A Strategic Approach to Recharging Lithium-sulphur Batteries for Long Cycle Life,” [cited by applicant]
Suo, L., et al., “‘Water-in-salt’ Electrolytes Enable Green and Safe Li-ion Batteries for Large Scale Electric Energy Storage Applications,” [cited by applicant]
Tarascon, J.M., and Armand, M., “Issues and Challenges Facing Rechargeable Lithium Batteries,” Nature 414(6861):359-367, Nature Publishing Group, United Kingdom (Nov. 2001). [cited by applicant]
Wessells, C., et al., “Investigations of the Electrochemical Stability of Aqueous Electroly les for Lithium Battery Applications,” [cited by applicant]
Wu, C., et al., “Two-dimensional Vanadyl Phosphate Ultrathin Nanosheets for High Energy Density and Flexible Pseudocapacitors,” [cited by applicant]
Wu, H.L., et al., “In Situ Raman Spectroscopy of Sulfur Speciation in Lithium-sulfur Batteries,” [cited by applicant]
Yamin, H., et al., “Lithium Sulfur Battery: Oxidation/reduction Mechanisms of Polysulfides in THF Solutions,” [cited by applicant]
Yang, C., et al., “Unique Aqueous Li-ion/sulfur Chemistry With High Energy Density and Reversibility,” [cited by applicant]
Yeon, J.T., et al., “Raman Spectroscopic and X-ray Diffraction Studies of Sulfur Composite Electrodes During Discharge and Charge,” Journal of The Electrochemical Society 159(8): A1308-A1314, Electrochemical Society, In… [cited by applicant]
Zhang, S., et al., “Recent Advances in Electrolytes for Lithium-sulfur Batteries,” [cited by applicant]
Wang, X., et al., “An Aqueous Rechargeable Lithium Battery Using Coated Li Metal as Anode,” [cited by applicant]
Stephan, A.M., “Review on gel polymer electrolytes for lithium batteries,” European Polymer Journal 42:21-42, Elsevier, Netherlands (Jan. 2006). [cited by applicant]
Lagadec, M.F., et al., “Characterization and performance evaluation of lithium-ion battery separators,” Nature Energy 4:16-25, Springer, Germany (Jan. 2019). [cited by applicant]