IP Library Granted Patent US 12,609,316
Granted Patent B2
US 12,609,316 · App. 18/112,668 · Granted Apr 21, 2026

Ordered mixture of sulfurized-carbon with ionically conductive particles

Inventors: Abdul-Rahman Olabode Raji (Houston, TX); Rodrigo Villegas Salvatierra (Houston, TX); Tuo Wang (Houston, TX)
Assignee: Zeta Energy LLC
H01M4/587H01M4/0404H01M10/0525H01M2004/028
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Quick Facts
Patent No.
US 12,609,316
App. No.
18/112,668
Granted
Apr 21, 2026
Kind
B2
Abstract

Described are active materials for storing metal cations, such as lithium ions, in a cathode of an electrochemical cell. The active materials comprise an ordered mixture of sulfurized carbon (SC) particles, smaller ionically conductive particles, and still smaller electrically conductive particles. In comparison with a random mixture, where SC particles are mixed with particles of another material, the ordered mixture creates discrete, solid composition of more than one type of guest particles on the perimeter of SC host particles for ionic and electronic conduction to and from the SC host particles.

Claims (30)

1 . An electrode to store metal cations, the electrode comprising:

sulfurized-carbon particles with an average sulfurized-carbon-particle surface area, the sulfurized-carbon particles to store the metal cations;

each sulfurized-carbon particle including a conductive envelope comprising:

electrically conductive domains in contact with the sulfurized-carbon-particle surface, the electrically conductive domains to conduct electrons to and from the sulfurized-carbon particle; and

close packed ionically conductive particles in contact with the sulfurized-carbon-particle surface forming a continuous envelope around the sulfurized-carbon particle with gaps between adjacent ionically conductive particles sized to permit cation transport to the surface of the sulfurized-carbon particle, wherein the electrically conductive domains are predominantly located in valleys and interstices between the close-packed ionically conductive particles while remaining in contact with the sulfurized-carbon-particle surface, and wherein a median particle size of the ionically conductive particles is at least ten times a median particle size of the electrically conductive domains, the ionically conductive particles to conduct the metal cations to and from the sulfurized-carbon particle.

2 . The electrode of claim 1 , wherein the electrically conductive domains exhibit an electrical conductivity of at least 0.1 S/cm.

3 . The electrode of claim 1 , wherein the ionically conductive particles exhibit an ionic conductivity for the metal cations of at least 10E-5 S/cm.

4 . The electrode of claim 1 , wherein the ionically conductive particles exhibit an ionic conductivity for the metal cations of at least 10E-4 S/cm.

5 . The electrode of claim 1 , wherein the conductive envelope includes gaps between the ionically conductive particles.

6 . The electrode of claim 1 , wherein at least one of the electrically conductive domains and the ionically conductive particles are conductive particles.

7 . The electrode of claim 6 , wherein the conductive particles are spherical.

8 . The electrode of claim 1 , further comprising a current collector, wherein the ionically conductive particles connect into an ionically conductive network encompassing the sulfurized-carbon particles and in contact with the current collector.

9 . The electrode of claim 8 , wherein the electrically conductive domains connect into an electrically conductive network encompassing the sulfurized-carbon particles and in contact with the current collector.

10 . The electrode of claim 1 , further comprising a current collector, wherein the ionically conductive particles are of a concentration gradient that increases away from the current collector.

11 . The electrode of claim 10 , wherein the electrically conductive domains are of a second concentration gradient that increases toward the current collector.

12 . The electrode of claim 1 , wherein the sulfurized-carbon particles comprise agglomerations of smaller sulfurized-carbon particles.

13 . The electrode of claim 1 , wherein the electrically conductive domains are collectively smaller than the ionically conductive particles in dimensions tangential to the sulfurized-carbon-particle surface.

14 . The electrode of claim 13 , wherein the electrically conductive domains are on average smaller than the ionically conductive particles in a dimension normal to the sulfurized-carbon-particle surface.

15 . The electrode of claim 1 , the conductive envelope further comprising a liquid electrolyte.

16 . The electrode of claim 15 , wherein the liquid electrolyte is between and in contact with the ionically conductive particles.

17 . The electrode of claim 1 , wherein the cations are of lithium.

18 . An electrochemical cell comprising:

an anode to store a metal;

an electrolyte in contact with the anode to conduct ions of the metal; and

a cathode in contact with the electrolyte to store the ions of the metal, the cathode including:

sulfurized-carbon particles with an average sulfurized-carbon-particle surface area, the sulfurized-carbon particles to store the ions, each sulfurized-carbon particle including a conductive envelope comprising:

electrically conductive domains in contact with the sulfurized-carbon-particle surface, the electrically conductive domains to conduct electrons to and from the sulfurized-carbon particle; and

close packed ionically conductive particles forming a continuous envelop around and in contact with the sulfurized-carbon-particle surface with gaps between adjacent ionically conductive particles sized to permit cation transport to the surface of the sulfurized-carbon particle, wherein the electrically conductive domains are predominantly located in valleys and interstices between the close-packed ionically conductive particles while remaining in contact with the sulfurized-carbon-particle surface and a median particle size of the ionically conductive particles is at least ten times a median particle size of the electrically conductive domains, the ionically conductive particles to conduct the ions of the metal to and from the sulfurized-carbon particle.

19 . The electrochemical cell of claim 18 , the cathode further comprising a current collector, wherein the ionically conductive particles connect into an ionically conductive network encompassing the sulfurized-carbon particles and in contact with the current collector.

20 . The electrochemical cell of claim 19 , wherein the electrically conductive domains connect into an electrically conductive network encompassing the sulfurized-carbon particles and in contact with the current collector.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 22, 2023
From: RAJI, ABDUL-RAHMAN OLABODE; SALVATIERRA, RODRIGO VILLEGAS; WANG, TUO
To: ZETA ENERGY CORP.
Reel/Frame 064034/0600 →
Continuity (2)
Provisional Application 63318669 · Mar 10, 2022
Related Publication 20230290947A1 · Sep 14, 2023
References Cited (15)
US 6908706B2 · Choi et al. · 2005 [cited by applicant]
US 8936874B2 · Shi et al. · 2015 [cited by applicant]
US 10629894B2 · Fanous et al. · 2020 [cited by applicant]
US 20160329559A1 · Cairns et al. · 2016 [cited by applicant]
US 20200365902A1 · Jang · 2020 [cited by applicant]
US 20210126258A1 · Bell · 2021 [cited by examiner]
US 20220190381A1 · Jung · 2022 [cited by examiner]
WO WO2020226322A1 · 2020 [cited by examiner]
Jung et al. WO 2020226322 A1 (Year: 2020). [cited by examiner]
Malvern, “A basic guide to particle characterization,” 2015 Malvern Instruments Limited, 24 pages. [cited by applicant]
Isizercomadmin “What is Particle Size Distribution D50, D50, Particle Size Distribution 201”, www.isizer.com, Mar. 25, 2021, 7 pages. [cited by applicant]
Saharan, V. A. et al. “Ordered Mixing: mechanism, process and applications in pharmaceutical formulations.”, Asian Journal of Pharmaceutical Sciences, 2008, vol. 3, No. 6, pp. 240-259, 21 pages. [cited by applicant]
Tececo, “The Importance of Particle Packing for Strength (Tec-Cements) or Carbonation (Eco-Cements)”, TecEco Pty. Ltd., 9 pages. [cited by applicant]
Wikipedia, “Solid-state electrolyte”, retrieved from https://en.wikipedia.org, last edited Aug. 2021, 13 pages. [cited by applicant]
Zhang, Y. et al. “High Capacity All-Solid-State Lithium Battery Using Cathodes with Three-Dimensional Li+ Conductive Network”, Journal of The Electrochemical Society, 2017, vo.164, No. 7, pp. A1695-A1702, 9 pages. [cited by applicant]