SILICON-CARBON COMPOSITE FIBER
A composite fiber includes a porous silicon phase including elemental silicon and a porous carbon phase including elemental carbon. The silicon phase and the carbon phase form an intertwined network structure in the composite fiber such that each of the silicon phase and the carbon phase is interconnected and continuous throughout the composite fiber. The silicon phase and the carbon phase together constitute at least 50 wt % of the composite fiber.
1 . A composite fiber comprising:
a porous silicon phase comprising elemental silicon;
a porous carbon phase comprising elemental carbon;
wherein the silicon phase and the carbon phase form an intertwined network structure in the composite fiber such that each of the silicon phase and the carbon phase is interconnected and continuous throughout the composite fiber;
wherein the silicon phase and the carbon phase together constitute at least 50 wt % of the composite fiber;
wherein the elemental carbon constitutes at least 29 wt % of the composite fiber based on a total weight of the composite fiber; and
wherein, based on a total weight of the composite fiber, a wt % of the elemental carbon in the composite fiber is represented by Xc and a wt % of the elemental silicon in the composite fiber is represented by Xsi, and the following formulae are met:
Xsi/(100-Xc)≥0.62
0.3025*Xc+3.70*Xsi/(100-Xc)+57.97≥70.3.
2 . The composite fiber of claim 1 , wherein elemental carbon constitutes at least 37 wt % of the composite fiber and (0.3025*Xc+3.70*Xsi/(100-Xc)+57.97) is at least 72.7.
3 . The composite fiber of claim 1 , wherein elemental carbon constitutes at least 46 wt % of the composite fiber and (0.3025*Xc+3.70*Xsi/(100-Xc)+57.97) is at least 75.
4 . The composite fiber of claim 1 , wherein the silicon phase comprises silicon crystallites having a size of 6 to 25 nm; and
wherein the silicon phase comprises at least 50 wt % of crystalline silicon based on a total weight of the silicon phase.
5 . The composite fiber of claim 1 , wherein the composite fiber has a pore volume of greater than 0 to 0.3 cm 3 /g.
6 . The composite fiber of claim 1 , wherein the composite fiber has a median pore size of from 5 to 30 nm.
7 . The composite fiber of claim 1 , wherein the composite fiber has an average diameter of from 0.1 to 10 microns and an aspect ratio of fiber length to diameter of at least 3.
8 . The composite fiber of claim 1 , wherein the carbon phase comprises crystallites ranging in size from 1 to 100 nm.
9 . The composite fiber of claim 8 , wherein the carbon phase comprises at least 50 wt % of crystalline carbon based on a total weight of the carbon phase.
10 . The composite fiber of claim 1 , further comprising lithium, wherein the lithium and at least a portion of the silicon from the silicon phase form an Li x Si alloy where x is from greater than 0 to 4.
11 . A method comprising:
forming a porous fiber template comprising one of elemental carbon or elemental silicon; and
infiltrating the porous fiber template with an infiltrating phase comprising the other of elemental carbon or elemental silicon to form a composite fiber;
wherein the porous fiber template phase and the infiltrating phase form an intertwined network structure in the composite fiber such that each of the porous fiber template and the infiltrating phase is interconnected and continuous throughout the composite fiber;
wherein the elemental silicon and the elemental carbon together constitute at least 50 wt % of the composite fiber;
wherein the elemental carbon constitutes at least 29 wt % of the composite fiber based on a total weight of the composite fiber; and
wherein, based on a total weight of the composite fiber, a wt % of the elemental carbon in the composite fiber is represented by Xc and a wt % of the elemental silicon in the composite fiber is represented by Xsi, and the following formulae are met:
Xsi/(100-Xc)≥0.62
0.3025*Xc+3.70*Xsi/(100-Xc)+57.97≥70.3.
12 . The method of claim 11 , wherein the porous fiber template comprises elemental carbon.
13 . The method of claim 11 , wherein the porous fiber template comprises elemental silicon.
14 . The method of claim 11 , wherein a median pore diameter of the infiltrating phase is from 0.1 to 5 nm less than a median pore diameter of the porous fiber template.
15 . The method of claim 11 , wherein infiltrating the porous fiber template comprises chemical vapor deposition, physical vapor deposition, sputtering, atomic layer deposition, or pyrolysis.
16 . The method of claim 11 , wherein the porous fiber template comprises 50 to 95 wt % of crystalline silicon or crystalline carbon, wherein the crystalline silicon or crystalline carbon has a crystallite size of from 6 to 25 nm.
17 . The method of claim 11 , wherein the porous fiber template has a BET specific surface area of 150 to 400 m 2 /g, a median pore diameter of from 8 to 30 nm, and a pore volume of from 0.5 to 0.9 cm 3 /g.
18 . The method of claim 11 , further comprising:
reacting the composite fiber with a lithium source to form a Li x Si alloy; or
wherein the porous fiber template comprises elemental silicon, reacting the porous fiber template with a lithium source to form a Li x Si alloy prior to infiltrating.
19 . An electrode active material comprising the composite fiber of claim 1 .
20 . An electrode comprising the electrode active material of claim 19 .