IP Library Patent Application 17923214
Patent Application
App. No. 17/923,214

METAL SULFATE SYSTEMS FOR LEAD-ACID BATTERIES

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Quick Facts
Patent No.
US None
App. No.
17/923,214
Abstract

A lead acid battery is disclosed comprising a positive electrode; a negative electrode; a separator; and an electrolyte comprising a metal sulfate; wherein lead sulfate crystals formed during cycling of the lead acid battery have an average diameter in one dimension of less than 1.1 microns, less than 1.0 microns, less than 0.95 microns, or less than 0.9 microns.

Claims (55)

1 - 43 . (canceled)

44 . A lead acid battery comprising:

a positive electrode;

a negative electrode;

a separator; and

an electrolyte comprising a metal sulfate;

wherein lead sulfate crystals formed after 150 rounds of cycling of the lead acid battery have an average diameter in one dimension of less than 1.1 microns, less than 1.0 microns, less than 0.95 microns, or less than 0.9 microns.

45 . The lead acid battery of claim 44 , wherein the metal sulfate consists essentially of at least one selected from the group consisting of aluminum sulfate, zinc sulfate, potassium sulfate, sodium sulfate, lithium sulfate, magnesium sulfate, barium sulfate, nickel sulfate, or combinations thereof.

46 . The lead acid battery of claim 1 , wherein lead sulfate crystals formed during cycling of the lead acid battery have an average diameter in one dimension of 0.4 microns to 0.9 microns.

47 . The lead acid battery of claim 44 , wherein peak current density is at least 20% lower than a lead acid battery having an electrolyte without a metal sulfate present.

48 . The lead acid battery of claim 44 , wherein hydrogen gassing current at −1.4V is at least 70% lower than a lead acid battery having an electrolyte without a metal sulfate present.

49 . The lead acid battery of claim 44 , wherein at least one of the separator, a glass mat, a woven, a nonwoven, a gauntlet, a pasting paper, the positive electrode, the negative electrode, or combinations thereof comprises metal sulfate.

50 . The lead acid battery of claim 44 , wherein metal sulfate is coated on at least one of the separator, a glass mat, a woven, a nonwoven, a gauntlet, a pasting paper, the positive electrode, and the negative electrode, or combinations thereof.

51 . The lead acid battery of claim 50 , wherein the metal sulfate is present in an amount of 1 g/sqm to 4.0 g/sqm.

52 . The lead acid battery of claim 50 , wherein the metal sulfate is roller coated, immersion coated, or spray coated.

53 . The lead acid battery of claim 44 , wherein the separator is made of a microporous material.

54 . The lead acid battery of claim 44 , wherein the metal sulfate is present in the electrolyte in a concentration of 1% or less.

55 . The lead acid battery of claim 45 , wherein the metal sulfate comprises zinc sulfate.

56 . The lead acid battery of claim 45 , wherein the metal sulfate comprises aluminum sulfate and no or less than five tree-branch-like or dendrite-like structures grow during cycling.

57 . The lead acid battery of claim 45 , herein the metal sulfate comprises potassium sulfate.

58 . A vehicle comprising a battery according to claim 1 .

59 . A method of reducing the size of lead sulfate crystals in a lead acid battery during cycling, comprising:

adding a metal sulfate to and/or releasing a metal sulfate into an electrolyte solution in the lead acid battery, wherein lead sulfate crystals formed after 150 rounds of cycling of the lead acid battery have an average diameter in one dimension less than 1.1 microns, less than 1.0 microns, less than 0.95 microns, or less than 0.9 microns.

60 . The method of claim 59 , wherein the metal sulfate consists essentially of aluminum sulfate, zinc sulfate, potassium sulfate, sodium sulfate, lithium sulfate, magnesium sulfate, barium sulfate, nickel sulfate, or combinations thereof.

61 . The method of claim 59 , wherein lead sulfate crystals formed during cycling of the lead acid battery have an average diameter in one dimension that is at least 60% smaller than lead sulfate crystals formed during cycling of a lead acid battery without a metal sulfate present.

62 . The method of claim 59 , wherein the electrolyte solution comprises a concentration of 1% or less of metal sulfate.

63 . The method of claim 60 , wherein the metal sulfate comprises zinc sulfate.

64 . The method of claim 60 , wherein the metal sulfate comprises aluminum sulfate and no or less than five tree-branch-like or dendrite-like structures form during cycling.

65 . The method of claim 60 , wherein the metal sulfate comprises potassium sulfate.

66 . A method of reducing the size of lead sulfate crystals in a lead acid battery during cycling, comprising:

placing a battery separator comprising a metal sulfate into a lead acid battery, wherein the lead sulfate crystals formed after 150 rounds of cycling of the lead acid battery have an average diameter in one dimension less than 1.1 microns, less than 1.0 microns, less than 0.95 microns, or less than 0.9 microns.

67 . The method of claim 66 , wherein the metal sulfate is coated within pores on a surface of the separator, on a surface of the separator, or both; or the metal sulfate is on an exposed or internal surface of a pasting paper, a woven, a nonwoven, a gauntlet, an electrode, or a glass mat; or the metal sulfate is present within the matrix of the battery separator, e.g., it was included in the mixture extruded to form the battery separator.

68 . The method of claim 67 , wherein coating the metal sulfate comprises roller coating, immersion coating, curtain coating, or spray coating of a solution or slurry comprising the metal sulfate on the separator, the woven, the nonwoven, the gauntlet, the glass mat, the electrode, or the pasting paper.

69 . The method of claim 66 , wherein the metal sulfate consists essentially of aluminum sulfate, zinc sulfate, potassium sulfate, sodium sulfate, lithium sulfate, magnesium sulfate, barium sulfate, nickel sulfate, or combinations thereof.

70 . The method of claim 66 , wherein lead sulfate crystals formed during cycling of the lead acid battery have an average diameter in one dimension that is at least 60% smaller than lead sulfate crystals formed during cycling of a lead acid battery without a metal sulfate present.

71 . The method of claim 69 , wherein the metal sulfate comprises zinc sulfate.

72 . The method of claim 69 , wherein the metal sulfate comprises aluminum sulfate and no or less than five tree-branch-like or dendrite-like structures form during cycling.

73 . The method of claim 69 , wherein the metal sulfate comprises potassium sulfate.

74 . A battery separator, glass mat, woven nonwoven, gauntlet, pasting paper, or electrode comprising a metal sulfate.

75 . The battery separator, glass mat, woven, nonwoven, gauntlet, pasting paper, or electrode of claim 74 , wherein the metal sulfate is present in an amount of 1 g/sqm to 4.0 g/sqm or in an amount sufficient to release an appropriate amount of metal sulfate into the electrolyte when the battery separator, glass mat, woven, nonwoven, gauntlet, pasting paper, electrode, or combinations thereof are used in a battery.

76 . The battery separator, glass mat, woven, nonwoven, gauntlet, pasting paper, or electrode of claim 75 , wherein a solution or slurry comprising the metal sulfate is roller coated, immersion coated, curtain coated, or spray coated onto the battery separator, glass mat, woven, nonwoven, gauntlet, pasting paper, or electrode.

77 . The battery separator, glass mat, woven, nonwoven, gauntlet, pasting paper, or electrode of claim 74 , wherein the metal sulfate is at least one selected from aluminum sulfate, zinc sulfate, potassium sulfate, sodium sulfate, lithium sulfate, magnesium sulfate, barium sulfate, nickel sulfate, or combinations thereof.

78 . The battery of claim 44 , wherein the separator comprises an acid-mixing rib profile.

79 . The battery separator of claim 74 , comprising an acid-mixing rib profile.

80 . The method of claim 66 , wherein the separator comprise an acid-mixing rib profile.

81 . A battery separator comprising coating comprising aluminum sulfate in an amount of greater than about 1 gram per square meter (gsm) and less than about 12 gsm.

82 . The battery separator of claim 81 , wherein the coating weight is greater than about 3 gsm and less than about 10 gsm.

83 . The battery separator of claim 81 , wherein the coating weight is greater than about 5 gsm and less than about 8 gsm.

84 . The battery separator of claim 81 , wherein the coating weight is 6 gsm.

85 . The battery separator of claim 81 , wherein the battery separator exhibits improved charge acceptance (60% SOC) over time.

86 . The battery separator of claim 83 , wherein the improvement is at least 5% compared to a control separator without aluminum sulfate.

87 . The battery separator of claim 84 , wherein the improvement is at least 10%.

88 . The battery separator, glass mat, woven, nonwoven, gauntlet, pasting paper, or electrode of claim 75 , wherein the battery separator comprises a metal sulfate in the matrix, e.g., the metal sulfate was added to a mixture extruded to form the battery separator.

89 . A vehicle comprising a battery according to claim 45 .

90 . A vehicle comprising a battery according to claim 50 .

Assignments (3)
ASSIGNMENT OF SECURITY INTERESTS IN PATENT COLLATERAL Recorded Apr 22, 2026
From: ENCINA PRIVATE CREDIT SPV 2, LLC, AS RESIGNING AGENT
To: ACF FINCO I LP, AS SUCCESSOR AGENT
Reel/Frame 075435/0811 →
SHORT-FORM PATENTS SECURITY AGREEMENT Recorded Jan 12, 2026
From: DARAMIC, LLC
To: ENCINA PRIVATE CREDIT SPV 2, LLC, AS COLLATERAL AGENT
Reel/Frame 074315/0795 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 13, 2025
From: MANICKAM, KUMAR; WHEAR, J. KEVIN; ROBERTS, MARGARET R.
To: DARAMIC, LLC
Reel/Frame 071100/0316 →