ATMOSPHERIC PLASMA SYNTHESIS OF TRANSITION METAL OXIDE CATHODES
An atmospheric microplasma process is used to synthesize cathode particles in less than approximately one second. A hollow-tube reactor may be used to create cathode particles that are in the range of approximately 0.1 μm to approximately 3 μm in diameter, are at least partially crystalline, and show redox behavior expected of a transition metal oxide cathode material.
1 . A method of creating a plurality of NMC-type cathode particles, the method comprising:
preparing a precursor solution;
positioning an anode and a cathode in a reactor vessel;
applying a current to the anode and the cathode; and
supplying the precursor solution to the reactor vessel; wherein:
the supplying results in the plurality of NMC-type cathode particles.
2 . The method of claim 1 , wherein:
the preparing comprises:
combining a carrier gas with a liquid precursor to form an initial precursor solution;
vaporizing the initial precursor solution to form the precursor solution; and
ionizing the precursor solution.
3 . The method of claim 2 , wherein:
the carrier gas comprises at least one of argon, oxygen, helium, or nitrogen,
the liquid precursor comprises a colloidal solution, a chelating agent, and a lithium source,
the colloidal solution comprises a mixture of nickel, cobalt, and manganese acetate hydrates,
the chelating agent comprises at least one of citric acid, acetic acid, oxalic acid, or ethylenediaminetetraacetic acid (EDTA), and
the lithium source comprises at least one of lithium hydroxide hydrate or lithium carbonate.
4 . The method of claim 2 , wherein:
the vaporizing comprises using at least one of a sonicator, nebulizer, or vibrating transducer.
5 . The method of claim 1 , wherein:
the positioning comprises placing the anode and the cathode in a hollow tube reactor; and
the positioning results in the anode and the cathode being separated by a distance in the range of about 0.1 mm to about 5 mm.
6 . The method of claim 1 , wherein:
the current comprises an alternating current.
7 . The method of claim 6 , wherein:
the alternating current comprises approximately 250 W and approximately 25 kHz.
8 . The method of claim 6 , wherein:
the alternating current results in a potential of approximately 3 kV between the anode and cathode.
9 . The method of claim 1 , wherein:
the supplying comprises a flow rate in the range of about 1 to about 200 sccm.
10 . A system for creating NMC-type cathode particles, the device comprising:
a chamber configured to contain an initial precursor solution;
a nebulizer configured to vaporize the initial precursor solution to form a precursor solution;
an anode and a cathode positioned within a reactor vessel; and
a power source configured to apply a current to the anode and cathode; wherein:
the reactor vessel comprises a hollow tube reactor, and
the precursor solution is directed into the reactor vessel.
11 . The system of claim 10 , wherein:
the initial precursor solution comprises a carrier gas and a liquid precursor.
12 . The system of claim 11 , wherein:
the carrier gas comprises at least one of argon, oxygen, helium, or nitrogen, and
the liquid precursor comprises a colloidal solution, a chelating agent, and a lithium source.
13 . The system of claim 11 , wherein:
the colloidal solution comprises a mixture of nickel, cobalt, and manganese acetate hydrates,
the chelating agent comprises at least one of citric acid, acetic acid, oxalic acid, or ethylenediaminetetraacetic acid (EDTA), and
the lithium source comprises at least one of lithium hydroxide hydrate or lithium carbonate.
14 . The system of claim 10 , wherein:
the nebulizer comprises a sonicator or vibrating transducer.
15 . The system of claim 10 , wherein:
the anode and the cathode are separated by a distance in the range of about 0.1 mm to about 5 mm.
16 . The system of claim 10 , wherein:
the hollow tube reactor comprises a quartz tube.
17 . The system of claim 10 , wherein:
the anode and the cathode comprise at least one of stainless steel, nickel, or cobalt.
18 . The system of claim 10 , wherein:
the cathode has an inner diameter in the range of 0.01 mm to about 3 mm, and
the anode has an inner diameter in the range of about 0.001 mm to about 5 mm.
19 . The system of claim 10 , wherein:
the current comprises an alternating current.
20 . The system of claim 19 , further comprising:
a potential of approximately 3 kV between the anode and cathode; wherein:
the alternating current comprises approximately 250 W and approximately 25 kHz.