IP Library Granted Patent US 9,705,124
Granted Patent B2
US 9,705,124 · App. 13/588,082 · Granted Jul 11, 2017

High energy density Li-ion battery electrode materials and cells

Inventors: Jeremy D. Walker (Washington, DC); Jeffrey P. Maranchi (Clarksburg, MD); Edward D. Russell (Columbia, MD); Jennifer L. Sample (Bethesda, MD); Marcia W. Patchan (Columbia, MD); Lance M. Baird (Baltimore, MD); Rengaswamy Srinivasan (Ellicott City, MD)
Assignee: The Johns Hopkins University
H01M4/0402H01M4/0452H01M4/523H01M4/58H01M10/0525
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Quick Facts
Patent No.
US 9,705,124
App. No.
13/588,082
Granted
Jul 11, 2017
Kind
B2
Abstract

A method of preparing a high capacity nanocomposite cathode of FeF 3 in carbon pores may include preparing a nanoporous carbon precursor, employing electrochemistry or solution chemistry deposition to deposit Fe particles in the carbon pores, reacting nano Fe with liquid hydrofluoric acid to form nano FeF 3 in carbon, and milling to achieve a desired particle size.

Claims (13)

1. A method of providing electrode materials for a battery cell, the method comprising:

(i) preparing a high capacity nanocomposite cathode, the high capacity nanocomposite cathode comprising nanoporous carbon comprising a plurality of nano-sized pores and nano-sized FeF 3 particles located within the nano-sized pores; wherein preparing the high capacity nanocomposite cathode comprises:

(a) providing the nanoporous carbon comprising the plurality of nano-sized pores;

(b) impregnating the nano-sized pores with a liquid iron nitrate nonahydrate precursor solution to deposit iron nitrate nonahydrate within the nano-sized pores;

(c) heating or evaporating the liquid iron nitrate nonahydrate precursor solution within the nano-sized pores of the nanoporous carbon in an inert environment to provide solid iron nitrate nonahydrate within the nano-sized pores;

(d) reacting the solid iron nitrate nonahydrate located within the nano-sized pores from step (c) with liquid hydrofluoric acid to yield hydrated iron fluoride located within the nano-sized pores; and

(e) heating the hydrated iron fluoride in argon to generate nano-sized FeF 3 particles within the nano-sized pores of the nanoporous carbon;

(ii) preparing a high capacity nanocomposite anode of copper and silicon by:

(a) electrolysis plating of copper on silicon nanopowder to produce Cu/Si nanopowder;

(b) annealing the Cu/Si nanopowder; and

(c) etching excess copper from a surface of the Cu/Si nanopowder; and

(iii) combining the high capacity nanocomposite cathode with the high capacity nanocomposite anode for a high energy density Lithium-ion battery cell.

2. The method of claim 1 , wherein the nanoporous carbon comprises a carbon aerogel.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 2, 2012
From: WALKER, JEREMY D.; MARANCHI, JEFFREY P.; RUSSELL, EDWARD D.; SAMPLE, JENNIFER L.; PATCHAN, MARCIA W.; BAIRD, LANCE M.; SRINIVASAN, RENGASWAMY
To: THE JOHNS HOPKINS UNIVERSITY
Reel/Frame 029233/0978 →
Continuity (2)
Provisional Application 61603506 · Feb 27, 2012
Related Publication 20130220817A1 · Aug 29, 2013