IP Library Granted Patent US 12,525,599
Granted Patent B2
US 12,525,599 · App. 18/083,056 · Granted Jan 13, 2026

Manufacturing battery electrodes

Inventor: Najah George (Farmington Hills, MI)
Assignee: Our Next Energy, Inc.
H01M4/0404H01M2004/027H01M2004/028H01M4/505H01M4/5825H01M4/587H01M4/622
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Quick Facts
Patent No.
US 12,525,599
App. No.
18/083,056
Granted
Jan 13, 2026
Kind
B2
Abstract

Producing an electrode by providing a solvent-free powder that includes an electrode active material and a binder, determining a temperature to be produced at a location of application of a laser beam, selecting a scan frequency at which to control oscillation of the laser beam, producing the electrode by feeding, via a powder feeder, the solvent-free powder onto a current collector and concurrently applying the laser beam to the solvent-free powder to melt the binder of the solvent-free powder at the temperature to produce a coating on the current collector.

Claims (71)

1 . A method comprising:

providing a solvent-free powder comprising at least an electrode active material and a binder;

determining a desired temperature to be produced at a location of application of a laser beam;

selecting a scan frequency at which to control oscillation of the laser beam; and

producing an electrode by feeding, via a powder feeder, the solvent-free powder onto a current collector and concurrently applying the laser beam to the solvent-free powder to melt the binder of the solvent-free powder at said desired temperature to produce a coating on the current collector;

wherein the laser beam is operated as a continuous wave emission laser beam; and

wherein the powder feeder applies the solvent-free powder in a direction perpendicular to a profile of the laser beam.

2 . The method of claim 1 , further comprising:

determining a desired thickness of the coating and the desired temperature to be produced at the location of application of the laser beam to melt the binder.

3 . The method of claim 2 , wherein the desired thickness is based on a feed rate of the solvent-free powder and on a coating speed of the solvent-free powder.

4 . The method of claim 2 , wherein the desired temperature is based on a power or power density of the laser beam, a scan width of the laser, the selected scan frequency of the laser, and a coating speed of the solvent-free powder.

5 . The method of claim 1 , wherein the laser beam oscillates at the selected scan frequency to produce a coating width of up 10 mm in one pass of the laser beam, wherein the scan frequency ranges from 10 Hz to 200 Hz.

6 . The method of claim 1 , wherein the coating has a flat or ribbon shaped profile.

7 . The method of claim 1 , wherein one or more other laser beams are disposed adjacent to the laser beam to produce in a given duration a coating width that is wider than another coating width produced by the laser beam during said given duration.

8 . The method of claim 1 , wherein the powder feeder feeds the solvent-free powder in a coaxial powder feeding manner by applying the solvent-free powder coaxially to a profile of the laser beam.

9 . The method of claim 1 , wherein the electrode is a cathode.

10 . The method of claim 1 , wherein the electrode is an anode.

11 . The method of claim 1 , wherein current collector is disposed on a stationary base and the laser beam and powder feeder move in unison at the coating speed relative to a stationary base.

12 . The method of claim 1 , wherein the current collector is disposed on a moving base moving at the coating speed and the laser beam and powder feeder are stationary relative to the moving base.

13 . The method of claim 1 , wherein the electrode is produced in a vacuum-less environment.

14 . The method of claim 1 , wherein the binder is selected from the list consisting of polyvinylidene fluoride (PVDF), Polyacrylic acid (PAA), Polytetrafluoroethylene (PTFE), Polyurethane (PU), and Styrene-butadiene (SBR).

15 . The method of claim 1 , wherein the electrode is a cathode, and the active material comprises Lithium Iron Phosphate (LFP) or Lithium Manganese Oxide (LMO).

16 . The method of claim 1 , wherein the electrode is a cathode and the solvent-free powder further comprises a conductive additive.

17 . The method of claim 1 , wherein the electrode is an anode, and the active material comprises graphite.

18 . The method of claim 1 , wherein the desired temperature is a melting temperature of the binder.

19 . The method of claim 1 , wherein providing the solvent-free powder is responsive to mixing at least the electrode active material and the binder using a mixer.

20 . The method of claim 1 , wherein said feeding is responsive to preheating the current collector and/or solvent-free powder.

21 . The method of claim 1 , further comprising:

measuring a thickness of the coating at a selected surface of the coating; and

responsive to said measured thickness exceeding a defined threshold, automatically controlling one or more parameters of the laser beam and the powder feeder to maintain the desired thickness such that a new measured thickness of a newly created portion of the coating does not exceed the defined threshold.

22 . An apparatus comprising:

a laser system comprising a laser welding head configured to deliver a laser beam, and a laser beam positioning device configured to control the laser beam to oscillate at a selected scan frequency; and

a powder feeder configured to feed a solvent-free powder comprising at least an electrode active material and a binder through a nozzle onto a current collector disposed on a base;

wherein the powder feeder feeds the solvent-free powder on the current collector, concurrently to oscillation of the laser beam such that application of the laser beam to the solvent-free powder at a defined temperature melts the binder of the solvent-free powder to produce a coating on the current collector,

wherein the laser beam is a continuous wave emission laser beam; and

wherein the powder feeder is configured to apply the solvent-free powder in a direction perpendicular to a profile of the laser beam.

23 . The apparatus of claim 22 , wherein the apparatus is configured as an off-axis powder feeding electrode manufacturing system.

24 . The apparatus of claim 23 , wherein the nozzle is a flat nozzle.

25 . The apparatus of claim 22 , wherein the apparatus is configured as a coaxial powder feeding electrode manufacturing system.

26 . The apparatus of claim 22 , wherein the laser welding head is coupled to the powder feeder and moves in unison with the powder feeder.

27 . The apparatus of claim 22 , wherein the current collector is disposed on a moving base that is configured to move relative to the laser beam and powder feeder.

28 . The apparatus of claim 22 , wherein the laser beam has a laser with wavelength of about 1070 nm; and the laser beam is further configured to oscillate at a selected scan width.

29 . The apparatus of claim 22 , wherein the current collector is a cathode current collector.

30 . The apparatus of claim 29 , wherein the solvent-free powder further comprises a conductive additive.

31 . The apparatus of claim 22 , wherein the current collector is an anode current collector.

32 . The apparatus of claim 22 , wherein the apparatus further comprises a housing in which the current collector and base are disposed.

33 . The apparatus of claim 22 , wherein the laser beam positioning device is a galvo mirror.

34 . The apparatus of claim 22 , wherein the laser beam is configured to have a defined scan width and laser power density.

35 . The apparatus of claim 22 , wherein the laser beam is produced using a laser device selected from the list consisting of a fiber laser, a disk laser, a diode laser and a CO 2 laser.

36 . A computer system comprising:

a processor; and

a memory storing instructions that, when executed by the processor, configure the system to:

determine a desired temperature to be produced at a location of application of a laser beam;

control the laser beam to oscillate at a selected scan frequency;

produce an electrode by feeding, via a powder feeder, a solvent-free powder onto a current collector and concurrently applying the laser beam to the solvent-free powder to melt the binder of the solvent-free powder at said desired temperature to produce a coating on the current collector;

wherein the laser beam is operated as a continuous wave emission laser beam; and

wherein the powder feeder is configured to apply the solvent-free powder in a direction perpendicular to a profile of the laser beam.

37 . The computer system of claim 36 , wherein the laser beam is further configured to have a defined scan width and laser power density.

38 . A non-transitory computer-readable storage medium storing instructions that when executed by a computer, cause the computer to:

determine a desired temperature to be produced at a location of application of a laser beam;

control a laser beam to oscillate at a selected scan frequency;

produce an electrode by feeding, via a powder feeder, a solvent-free powder onto a current collector and concurrently applying the laser beam to the solvent-free powder to melt the binder of the solvent-free powder at said desired temperature to produce a coating on the current collector; and

control the powder feeder to apply the solvent-free powder in a direction perpendicular to a profile of the laser beam;

wherein the laser beam is operated as a continuous wave emission laser beam.

39 . The non-transitory computer-readable storage medium of claim 38 , wherein the laser beam is further configured to have a defined scan width and laser power density.

40 . An apparatus comprising:

a laser system comprising a laser welding head configured to deliver a laser beam, a laser beam shaping device configured to produce a line/rectangular beam and a laser beam positioning device configured to move and apply the laser beam; and

a powder feeder configured to feed a solvent-free powder comprising at least an electrode active material and a binder through a nozzle onto a current collector disposed on a base;

wherein the powder feeder feeds the solvent-free powder on the current collector, concurrently to application of the laser beam to the solvent-free powder at a defined temperature such that said application melts the binder of the solvent-free powder to produce a coating on the current collector,

wherein the powder feeder is configured to apply the solvent-free powder in a direction perpendicular to a profile of the laser beam, and

wherein the laser beam is a continuous wave emission laser beam.

Assignments (2)
SECURITY INTEREST Recorded May 31, 2024
From: OUR NEXT ENERGY INC.
To: AVENUE VENTURE OPPORTUNITIES FUND, L.P., AS AGENT
Reel/Frame 067587/0425 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 17, 2022
From: GEORGE, NAJAH
To: OUR NEXT ENERGY, INC.
Reel/Frame 062132/0961 →
Continuity (2)
Provisional Application 63265829 · Dec 21, 2021
Related Publication 20230197920A1 · Jun 22, 2023
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