Silicon carbide-free graphene growth on silicon for lithium-ion battery with high volumetric energy density

Рост графена на кремнии без образования карбида кремния для литий-ионного аккумулятора с высокой объёмной плотностью энергии
In Hyuk Son, Jong Hwan Park, Soonchul Kwon, Seongyong Park, Mark H. Rümmeli, Alicja Bachmatiuk, Hyun Jae Song, Junhwan Ku, Jang Wook Choi, Jae‐Man Choi, Jae-man Choi, Seok‐Gwang Doo, Hyuk Chang
2015-06-25

lithium-ion battery anodessilicon carbide-free graphene growthsilicon nanoparticlessilicon volume expansionvolumetric energy density
Silicon is receiving discernable attention as an active material for next generation lithium-ion battery anodes because of its unparalleled gravimetric capacity. However, the large volume change of silicon over charge-discharge cycles weakens its competitiveness in the volumetric energy density and cycle life. Here we report direct graphene growth over silicon nanoparticles without silicon carbide formation. The graphene layers anchored onto the silicon surface accommodate the volume expansion of silicon via a sliding process between adjacent graphene layers. When paired with a commercial lithium cobalt oxide cathode, the silicon carbide-free graphene coating allows the full cell to reach volumetric energy densities of 972 and 700 Wh l(-1) at first and 200th cycle, respectively, 1.8 and 1.5 times higher than those of current commercial lithium-ion batteries. This observation suggests that two-dimensional layered structure of graphene and its silicon carbide-free integration with silicon can serve as a prototype in advancing silicon anodes to commercially viable technology.
1
A silicon carbide-free graphene coating enabled a full cell with a commercial lithium cobalt oxide cathode to reach volumetric energy densities of 972 Wh l⁻¹ initially and 700 Wh l⁻¹ after 200 cycles.
2
Direct graphene growth on silicon nanoparticles was achieved without forming silicon carbide.
3
Graphene layers anchored to silicon accommodate silicon’s charge–discharge volume expansion through sliding between adjacent layers.
4
The graphene–silicon architecture is presented as a potential route toward commercially viable high-energy silicon anodes.
5
These energy densities were 1.8 and 1.5 times higher, respectively, than those of current commercial lithium-ion batteries.

graphene-coated silicon nanoparticles used as lithium-ion battery anodes

the accommodation of silicon volume expansion by silicon carbide-free, surface-anchored graphene layers and its effect on volumetric energy density and cycle life

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2015-06-25
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In Hyuk Son
Jong Hwan Park
Soonchul Kwon
Seongyong Park
Mark H. Rümmeli
Alicja Bachmatiuk
Hyun Jae Song
Junhwan Ku
Jang Wook Choi
Jae‐Man Choi
Jae-man Choi
Seok‐Gwang Doo
Hyuk Chang
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