IP Library Granted Patent US 11,128,020
Granted Patent B2
US 11,128,020 · App. 16/763,078 · Granted Sep 21, 2021

Electrode assembly, secondary battery, and method of manufacture

Inventors: Robert S. Busacca (San Francisco, CA); Ashok Lahiri (Cupertino, CA); Murali Ramasubramanian (Fremont, CA); Bruno A. Valdes (Sunnyvale, CA); Gardner Cameron Dales (Los Gatos, CA); Christopher J. Spindt (Menlo Park, CA); Geoffrey Matthew Ho (San Ramon, CA); Harrold J. Rust, III (Alamo, CA); James D. Wilcox (Pleasanton, CA); John F. Varni (Los Gatos, CA); Kim Han Lee (Pleasanton, CA); Nirav S. Shah (Pleasanton, CA); Richard J. Contreras (Campbell, CA); Lynn Van Erden (Pollock Pines, CA); Ken S. Matsubayashi (Fremont, CA); Jeremie J. Dalton (San Jose, CA); Jason Newton Howard (Alpharetta, CA); Robert Keith Rosen (Rocklin, CA); Jonathan C. Doan (Pleasanton, CA); Michael J. Armstrong (Danville, CA); Anthony Calcaterra (Milpitas, CA); Benjamin L. Cardozo (Palo Alto, CA); Joshua David Winans (Mountain View, CA); Neelam Singh (Fremont, CA); Jeffrey Glenn Buck (Salinas, CA); Thomas John Schuerlein (Pleasanton, CA); Kim Lester Fortunati (Pleasanton, CA); Neal Sarswat (Pleasanton, CA)
Assignee: Enovix Corporation
H01M50/54H01M4/134H01M4/386H01M4/483H01M4/525H01M4/661H01M4/669H01M10/0436H01M10/054H01M10/0525H01M10/0565H01M10/0585H01M50/103H01M50/46H01M2004/027H01M2004/028
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Quick Facts
Patent No.
US 11,128,020
App. No.
16/763,078
Granted
Sep 21, 2021
Kind
B2
Abstract

Secondary batteries and methods of manufacture thereof are provided. A secondary battery can comprise an offset between electrode and counter-electrode layers in a unit cell. Secondary batteries can be prepared by removing a population of negative electrode subunits from a negative electrode sheet, the negative electrode sheet comprising a negative electrode sheet edge margin and at least one negative electrode sheet weakened region that is internal to the negative electrode sheet edge margin, removing a population of separator layer subunits from a separator sheet, and removing a population of positive electrode subunits from a positive electrode sheet, the positive electrode sheet comprising a positive electrode edge margin and at least one positive electrode sheet weakened region that is internal to the positive electrode sheet edge margin, and stacking members of the negative electrode subunit population, the separator layer subunit population and the positive electrode subunit population.

Claims (7)

1. A method for the preparation of an electrode assembly, the method comprising:

removing a population of negative electrode subunits from a negative electrode sheet, the negative electrode sheet comprising a negative electrode sheet edge margin and at least one negative electrode sheet weakened region that is internal to the negative electrode sheet edge margin, the at least one negative electrode sheet weakened region at least partially defining a boundary of the negative electrode subunit population within the negative electrode sheet, the negative electrode subunit of each member of the negative electrode subunit population having a negative electrode subunit centroid,

removing a population of separator layer subunits from a separator sheet, the separator sheet comprising a separator sheet edge margin and at least one separator sheet weakened region that is internal to the separator sheet edge margin, the at least one separator sheet weakened region at least partially defining a boundary of the separator layer subunit population, each member of the separator layer subunit population having opposing surfaces,

removing a population of positive electrode subunits from a positive electrode sheet, the positive electrode sheet comprising a positive electrode edge margin and at least one positive electrode sheet weakened region that is internal to the positive electrode sheet edge margin, the at last one positive electrode sheet weakened region at least partially defining a boundary of the positive electrode subunit population within the positive electrode sheet, the positive electrode subunit of each member of the positive electrode subunit population having a positive electrode subunit centroid, and

stacking members of the negative electrode subunit population, the separator layer subunit population and the positive electrode subunit population in a stacking direction to form a stacked population of unit cells, each unit cell in the stacked population comprising at least a unit cell portion of the negative electrode subunit, the separator layer of a stacked member of the separator layer subunit population, and a unit cell portion of the positive electrode subunit, wherein (i) the negative electrode subunit and positive electrode subunit face opposing surfaces of the separator layer comprised by such stacked unit cell population member, and (ii) the separator layer comprised by such stacked unit cell population member is adapted to electrically isolate the portion of the negative electrode subunit and the portion of the positive electrode subunit comprised by such stacked unit cell while permitting an exchange of carrier ions between the negative electrode subunit and the positive electrode subunit comprised by such stacked unit cell.

2. The method of claim 1 , wherein the removed members of the negative electrode subunit population each comprise a multi-layer negative electrode subunit having a negative electrode active material layer on at least one side of a negative electrode current collector layer.

3. The method of claim 1 , wherein the removed members of the positive electrode subunit population each comprise a multi-layer positive electrode subunit comprising a positive electrode active material layer on at least one side of a positive-electrode current collector layer.

Assignments (4)
MERGER AND CHANGE OF NAME Recorded Jan 19, 2023
From: ENOVIX OPERATIONS INC.; ENOVIX CORPORATION
To: ENOVIX CORPORATION
Reel/Frame 062434/0809 →
MERGER AND CHANGE OF NAME Recorded Jan 5, 2022
From: RSVAC MERGER SUB INC.; ENOVIX CORPORATION; ENOVIX OPERATIONS INC.
To: ENOVIX OPERATIONS INC.
Reel/Frame 058646/0894 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 11, 2020
From: BUSACCA, ROBERT S.; LAHIRI, ASHOK; RAMASUBRAMANIAN, MURALI; VALDES, BRUNO A.; DALES, GARDNER CAMERON; SPINDT, CHRISTOPHER J.; HO, GEOFFREY MATTHEW; RUST, HARROLD J., III; WILCOX, JAMES D.; VARNI, JOHN F.; LEE, KIM HAN; SHAH, NIRAV S.; CONTRERAS, RICHARD J.; DALTON, JEREMIE J.; VAN ERDEN, LYNN; MATSUBAYASHI, KEN S.; HOWARD, JASON NEWTON; ROSEN, ROBERT KEITH
To: ENOVIX CORPORATION
Reel/Frame 052625/0186 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 11, 2020
From: BUSACCA, ROBERT S.; LAHIRI, ASHOK; RAMASUBRAMANIAN, MURALI; VALDES, BURNO A.; DALES, GARDNER CAMERON; RUST, HARROLD J., III; VARNI, JOHN F.; LEE, KIM HAN; SHAH, NIRAV S.; CONTRERAS, RICHARD J.; DALTON, JEREMIE J.; DOAN, JONATHAN C.; ARMSTRONG, MICHAEL J.; CALCATERRA, ANTHONY; CARDOZO, BENJAMIN L.; WINANS, JOSHUA DAVID; SINGH, NEELAM; BUCK, JEFFREY GLENN; SCHUERLEIN, THOMAS JOHN; FORTUNATI, KIM LESTER; SARSWAT, NEAL
To: ENOVIX CORPORATION
Reel/Frame 052625/0747 →
Continuity (3)
Provisional Application 62586737 · Nov 15, 2017
Provisional Application 62715233 · Aug 6, 2018
Related Publication 20200350633A1 · Nov 5, 2020
Cited By (8)
US 12,206,106 US 12,244,036 US 12,255,353 US 12,327,833 US 12,347,821 US 12,418,050 US 12,451,561 US 12,500,274