Polyimide bead materials and methods of manufacture thereof
Nanoporous carbon-based scaffolds or structures, and specifically carbon aerogels and their manufacture and use thereof are provided. Embodiments include a silicon-doped anode material for a lithium-ion battery, where the anode material includes beads of a polyimide-derived carbon aerogel. The carbon aerogel may further include silicon particles and accommodates expansion of the silicon particles during lithiation. The anode material provides optimal properties for use within the lithium-ion battery.
1 . A porous carbon composition in the form of beads, the porous carbon composition comprising a composite material comprising a carbonized polyimide xerogel, the carbonized polyimide xerogel comprising a pore structure comprising a fibrillar morphology and an array of pores, the composite material further comprising silicon in an amount greater than about 10% by weight, based on the total weight of the composition, wherein the silicon is present at least partially within the pore structure, and wherein the porous carbon composition has a BET surface area in a range from about 0 to about 110 m 2 /g.
2 . The porous carbon composition of claim 1 , wherein the beads have a diameter in a range of about 1 μm to about 15 μm and a tap density in a range of about 0.3 g/cm 3 to about 1.3 g/cm 3 .
3 . The porous carbon composition of claim 1 , wherein the composite material comprises from about 25% to about 65% by weight of silicon, based on the total weight of the composition.
4 . The porous carbon composition of claim 1 , wherein the silicon has a particle size less than about 150 nm.
5 . The porous carbon composition of claim 1 , wherein the silicon has a particle size in a range of about 150 nm to about 500 nm.
6 . The porous carbon composition of claim 1 , wherein the silicon has a particle size greater than about 500 nm.
7 . The porous carbon composition of claim 1 , wherein the silicon has a particle size in a range from about 30 nm to about 800 nm.
8 . The porous carbon composition of claim 1 , wherein the silicon is present as a conformal coating within the porous carbon composition.
9 . The porous carbon composition of claim 1 , wherein the beads have:
a tap density in a range of about 0.2 g/cm 3 to about 1.5 g/cm 3 ;
a diameter in a range of about 1 μm to about 15 μm; and
an average pore diameter in a range from about 10 nm to about 50 nm.
10 . The porous carbon composition of claim 1 , having a pre-lithiation porosity between about 10% and about 80%.
11 . The porous carbon composition of claim 1 , wherein the carbonized polyimide xerogel has a residual nitrogen content of at least about 4 wt %.
12 . The porous carbon composition of claim 1 , wherein the fibrillar morphology includes struts having an average strut width of about 2 to about 10 nm.
13 . The porous carbon composition of claim 12 , wherein the average strut width is from about 2 to about 5 nm.
14 . The porous carbon composition of claim 1 , having a Young's modulus from about 0.2 GPa to about 8 GPa.
15 . The porous carbon composition of claim 1 , having a full width at half max pore size distribution of 50 nm or less.
16 . The porous carbon composition of claim 1 , having a pore size at max peak from distribution of 150 nm or less.
17 . The porous carbon composition of claim 1 , having a half-cell capacity of at least about 800 mAh/g.
18 . An energy storage device comprising the porous carbon composition of claim 1 .
19 . The energy storage device of claim 18 , which is a lithium-ion battery.