SILICON-DOMINANT BATTERY ELECTRODES
Methods of forming a composite material film can include providing a mixture comprising a carbon precursor and silicon particles. The methods can also include pyrolysing the carbon precursor to convert the precursor into one or more types of carbon phases to form the composite material film such that the precursor has a char yield of greater than about 0% to about 60% and the composite material film comprises the silicon particles at about 90% to about 99% by weight.
1 - 43 . (canceled)
44 . A method of forming a composite material film, the method comprising:
making a slurry comprising a carbon precursor and silicon particles, wherein the carbon precursor comprises lignin, dextran, biphenyl tetracarboxylic acid dianhydride-p-phenylene diamine (BPDA-PDA), pyromellitic dianhydride-p-phenylene diamine (PMDA-PDA), or a combination thereof;
performing a stabilization/oxidation step at a temperature of between 150-300° C.; and
pyrolysing the carbon precursor to convert the precursor into one or more types of carbon phases to form the composite material film such that the precursor has a char yield of greater than about 0% to about 60% and the composite material film comprises the silicon particles at about 90% to about 99% by weight.
45 . The method of claim 44 , wherein said carbon precursor is solubilized using a solvent.
46 . The method of claim 45 , wherein the mixture further comprises an aprotic solvent.
47 . The method of claim 46 , wherein the aprotic solvent comprises of any one or mixture of dimethylformamide (DMF), dimethoxymethamphetamine (DMMA), dimethylacetamide (DMAc), dimethyl sulfoxide (DMSO), sulfolane, ethylene carbonate, or a combination thereof.
48 . The method of claim 46 , wherein the aprotic solvent comprises of any one or mixture of dimethylformamide (DMF), dimethoxymethamphetamine (DMMA), dimethylacetamide (DMAc), dimethyl sulfoxide (DMSO), sulfolane, ethylene carbonate, or a combination thereof.
49 . The method of claim 45 , wherein said solvent comprises N-Methylpyrrolidone (NMP).
50 . The method of claim 44 , wherein the mixture further comprises an inorganic salt.
51 . The method of claim 50 , wherein the inorganic salt comprises lithium bromide, sodium thiocyanate, zinc chloride, or a combination thereof.
52 . The method of claim 44 , wherein the mixture further comprises sulfuric acid, nitric acid, or a combination thereof.
53 . The method of claim 44 , further comprising coating the mixture on a substrate to form a green film.
54 . The method of claim 53 , further comprising removing the green film from the substrate prior to pyrolysing the carbon precursor.
55 . The method of claim 54 , wherein the substrate comprises polyethylene terephthalate (PET), cyclic olefin copolymer (COC), or a combination thereof.
56 . The method of claim 53 , wherein pyrolysing comprises pyrolysing the green film on the substrate.
57 . The method of claim 56 , wherein the substrate comprises a polymer having about 0% to about 5% char yield.
58 . The method of claim 57 , wherein the substrate comprises acetal, polypropylene, polyethylene, polystyrene, or a combination thereof.
59 . The method of claim 44 , wherein pyrolysing comprises heating the mixture at a temperature in a range of about 350° C. to about 1350° C.
60 . The method of claim 44 , wherein pyrolysing forms the composite material film as a self-supported structure.
61 . The method of claim 44 , wherein said stabilization/oxidation step is carried out in air alone.
62 . The method of claim 44 , wherein said stabilization/oxidation step is carried out prior to said pyrolyzing step.