IP Library Patent Application 13947914
Patent Application
App. No. 13/947,914

Electrodes for Magnesium Energy Storage Devices

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Patent No.
US None
App. No.
13/947,914
Abstract

Nanostructured bismuth materials can be utilized as an insertion material in electrodes for magnesium energy storage devices to take advantage of short diffusion lengths for Mg 2+ . The result can be a significantly increased charge/discharge rates and/or improved cycling stabilities. In one example, an energy storage device has magnesium as an electroactive species, an electrolyte salt containing magnesium, and an anode having bismuth nanostructures. The bismuth nanostructures have at least one dimension that is less than or equal to 25 nm. At least a portion of the magnesium is reversibly inserted into, and extracted from, the anode during discharging and charging states, respectively.

Claims (25)

1 . An energy storage device having an electroactive species comprising magnesium, an electrolyte salt comprising magnesium, and an anode comprising bismuth nanostructures having at least one dimension that is less than or equal to 25 nm, wherein at least a portion of the magnesium is reversibly inserted into and extracted from the anode during discharging and charging processes, respectively.

2 . The energy storage device of claim 1 , wherein the anode comprises a composite having bismuth nanostructures and an electrically conductive material.

3 . The energy storage device of claim 2 , wherein the electrically conductive material comprises carbon.

4 . The energy storage device of claim 1 , wherein the bismuth nanostructures comprise bismuth nanotubes.

5 . The energy storage device of claim 1 , wherein the bismuth nanostructures comprise a structure selected from the group consisting of nanoparticles, nanowires, nanorods, nanoplates, and combinations thereof.

6 . The energy storage device of claim 1 , wherein the bismuth nanostructures comprise bismuth nanotubes, bismuth nanowires, bismuth nanorods, or combinations thereof having an average diameter less than or equal to 15 nm.

7 . The energy storage device of claim 1 , wherein the anode is separated from a cathode by a glass fiber separator.

8 . The energy storage device of claim 1 , having an anode specific capacity greater than 260 mAh/g based on complete anode weight.

9 . The energy storage device of claim 1 , further having a cathode comprising a transition metal oxide.

10 . The energy storage device of claim 1 , further having a cathode comprising a transition metal sulfide.

11 . The energy storage device of claim 1 , further having a cathode comprising a conjugated polymer.

12 . An energy storage device having a capacity greater than 260 mAh/g based on complete anode weight, an electroactive species comprising magnesium, an electrolyte comprising a magnesium salt, and an anode comprising bismuth nanotubes having an average diameter less than or equal to 15 nm, wherein magnesium is reversibly inserted into and extracted from the bismuth nanotubes during discharging and charging processes, respectively.

13 . A method for preparing an electrode comprising the steps of

configuring an electrochemical cell having an anode comprising magnesium metal, a cathode comprising bismuth nanostructures having at least one dimension that is less than or equal to 25 nm, and an electrolyte solution comprising a magnesium salt; and

electrochemically stripping magnesium from the anode and inserting magnesium into the cathode, thereby yielding an insertion-material electrode comprising Mg x Bi y .

14 . The method of claim 13 , wherein the bismuth nanostructures comprise bismuth nanotubes.

15 . The method of claim 13 , wherein the bismuth nanostructures comprise a structure selected from the group consisting of nanoparticles, nanowires, nanorods, nanoplates, and combinations thereof.

16 . The method of claim 15 , wherein the bismuth nanostructures comprise bismuth nanotubes, bismuth nanowires, bismuth nanorods, or combinations thereof having an average diameter less than or equal to 15 nm.

17 . The method of claim 13 , wherein the electrolyte solution comprises:

an organic solvent selected from the group consisting of diglyme, triglyme, tetraglyme, and combinations thereof;

a first salt substantially dissolved in the organic solvent and comprising a magnesium cation; and

a second salt substantially dissolved in the organic solvent and comprising a magnesium cation or a lithium cation;

the first salt, the second salt, or both comprise a BH 4 anion.

18 . The method of claim 13 , further comprising the steps of configuring an energy storage device having the insertion-material electrode as a negative electrode during a charged state of the energy storage device.

19 . The method of claim 18 , further comprising configuring the energy storage device to have a positive electrode comprising Mo 6 S 8 during a charged state of the energy storage device.

Assignments (2)
CONFIRMATORY LICENSE Recorded Aug 28, 2013
From: BATTELLE MEMORIAL INSTITUTE, PACIFIC NORTHWEST DIVISION
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 031106/0103 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2013
From: SHAO, YUAN; LIU, JUN
To: BATTELLE MEMORIAL INSTITUTE
Reel/Frame 030952/0171 →