LASER ABLATED HYBRID MICROSTRUCTURE ON ELECTRODES FOR DUAL OPTIMIZATION AND ABLATION MATERIAL RECYCLING
Described herein is a hybrid pattern ablated onto the surface of anodes and cathodes used for batteries (e.g., Li-ion batteries) using an ultrafast laser. The hybrid pattern incorporated channels and a hexagonally tessellated pore network. The former is used to enhance electrode wetting during cell fabrication while the latter dramatically enhances the fast-charge capabilities of the battery. The ideal pattern was determined by a genetic algorithm and a multi-physics model was used to refine the pattern dimensions to optimize electrochemical performance.
1 . A device comprising:
an anode and a cathode;
wherein the anode, the cathode or both have a secondary pore network (SPN) or a tertiary pore network (TPN); and
wherein the SPN improves the fast charging properties or the TPN improves the wettability of the anode, the cathode or both.
2 . A device comprising:
an anode and a cathode;
wherein the anode, the cathode or both have a secondary pore network (SPN) and a tertiary pore network (TPN); and
wherein the SPN improves fast charging properties and the TPN improves wettability of the anode, the cathode or both.
3 . The device of claim 1 , wherein the SPN, the TPN, or both are defined by a genetic algorithm.
4 . The device of claim 1 , wherein the SPN, the TPN, or both are generated via laser ablation.
5 . The device of claim 1 , wherein the SPN is a periodic hexagonal pattern.
6 . The device of claim 5 , wherein pores of the SPN are separated by a center to center distance selected from the range of about 50 μm to 150 μm.
7 . The device of claim 5 , wherein the anode channel volume ratio is selected from the range of 0.025 to 0.1 and the cathode channel volume ratio is selected from the range of 0.025 to 0.1.
8 . The device of claim 1 , wherein a volume reduction of the anode, the cathode or both due to the SPN is less than or equal to 10% of the initial volume of the anode, the cathode or both.
9 . The device of claim 1 , wherein the TPN is a branch pattern having a primary channel and a plurality of branching secondary channels.
10 . The device of claim 9 , wherein the primary channel touches the edge of the anode, the cathode or both.
11 . The device of claim 1 , wherein a volume reduction of the anode, the cathode or both due to the TPN is less than or equal to 3% of the initial volume of the anode, the cathode or both.
12 . The device of claim 1 , wherein the fast charging property is increased capacity of an electrochemical cell after fast charging cycles.
13 . The device of claim 1 , wherein the anode is graphite or sulfur.
14 . The device of claim 1 , wherein the cathode is Li, a Li-ion cathode or a Na-ion cathode.
15 . The device of claim 2 , wherein the SPN is a periodic hexagonal pattern and pores of the SPN are separated by a center to center distance selected from the range of about 50 μm to 150 μm.
16 . The device of claim 2 , wherein the TPN is a branch pattern having a primary channel and a plurality of branching secondary channels.
17 . A method comprising:
recovering ablated material from a graphite anode; and
reforming the ablated material into a new graphite anode with no processing additional processing steps between the recovering step and the reforming step.
18 . The method of claim 17 , further comprising:
ablating the graphite anode with a laser, thereby generating the ablated material.
19 . The method of claim 18 , wherein the laser is an ultrafast laser with a pulse duration less than or equal to 100 picoseconds.
20 . The method of claim 17 , wherein the new graphite anode comprises greater than or equal to 10% ablated material.